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WO1993025157A1 - Template for treatment tools and method for the treatment of osseous structures - Google Patents

Template for treatment tools and method for the treatment of osseous structures
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Publication number
WO1993025157A1
WO1993025157A1PCT/EP1993/001540EP9301540WWO9325157A1WO 1993025157 A1WO1993025157 A1WO 1993025157A1EP 9301540 WEP9301540 WEP 9301540WWO 9325157 A1WO9325157 A1WO 9325157A1
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WO
WIPO (PCT)
Prior art keywords
treatment
template
osseous
osseous structure
treatment tool
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Application number
PCT/EP1993/001540
Other languages
French (fr)
Inventor
Klaus Radermacher
Günter RAU
Hans-Walter Staudte
Original Assignee
Klaus Radermacher
Rau Guenter
Staudte Hans Walter
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Klaus Radermacher, Rau Guenter, Staudte Hans WalterfiledCriticalKlaus Radermacher
Priority to EP93914666ApriorityCriticalpatent/EP0645984A1/en
Publication of WO1993025157A1publicationCriticalpatent/WO1993025157A1/en

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Abstract

Of an osseous structure to be treated, a reconstruction is produced. On the basis of the contact points of this reconstruction, abutment points are defined for a template for guidance, alignment and positioning of a treatment tool. The contact points are defined in such a manner that the template can be mounted on the osseous structure in form-closed manner in exactly one spatially uniquely defined position. On such a template, the treatment tool is fastened and guided in such a manner that the treatment of the osseous structure can be performed corresponding to the previous planning of the surgical intervention.

Description

Template for treatment tools and method for the treatment of osseous structures
The invention is directed to a template for treat¬ ment tools for the treatment of osseous structures and a method for the definition and reproduction of the positional relationship of a treatment tool rel¬ ative to an osseous structure.
Using image producing methods such as computertomo- graphy and computer-based image-processing systems, it is possible to record osseous structures of the living organism in slices by a non-invasive tech¬ nique, to reconstruct them three-dimensionally and to visualize them through an output medium. Further, such systems frequently permit already a three-di¬ mensional planning of surgical interventions with regard to incisions, drilling, puncture, positioning of individual implants or other surgical interven¬ tions. Intraoperatively, i.e. during the actual sur- gical procedure, there often occur orientation prob¬ lems because no adequate technical means exist for a consequent, exact three-dimensional transfer of the steps of the intervention which have been planned with a waste of technical support. Therefore, the accuracy of execution depends exclusively on the experience, the three-dimensional perceptivity and the technical skill of the surgeon, which, depending on the type and the anatomical site of the interven¬ tion can involve extreme risks even with experienced surgeons. Generally, only freehand-guided instru¬ ments, two-dimensional tomographic images and pre- or intraoperative X-ray images are available.
For some interventions, standard tool guides have been provided. These are mostly cutting, boring or sinking templates for preparing and/or fixing the seat of a knee or hip joint prosthesis (as e.g. US 4,567,885, US 4,703,751, US 4,822,362, US 4,721,104, DE-33 39 259, EP 380 451, EP 415 837, EP 231 885, EP 228 339, DE 39 25 488, DE 79 14 280) or for reposi¬ tioning osteotomies in the region of the proximal head of the femur or tibia (e.g. US 4,565,191, DE 38 42 645, DE 32 11 153). The intraoperative posi¬ tioning of these templates relative to the bone is performed free-handed and even in case of special solutions allowing limited adaptation to the anatom¬ ical conditions, as e.g. in US 4,846,161, DE 34 47 163 or DE 40 16 704, can generally not be car¬ ried out exactly and clearly according to the plan¬ ning of the intervention. In some approaches, intra¬ operative measurement and positioning under X-ray control are provided. This causes an increased expo- sure to radiation for the patient and the medical staff, prolongs the duration of the surgical inter¬ vention and again is just an indirect and not clear¬ ly defined transfer of the treatment strategy de¬ fined in the surgical planning.
There also exist devices for stereotactical inter¬ ventions. Principally, these devices can be divided into two categories. The first category comprises devices which, designed as rigid frames, are attach¬ ed directly (e.g. by screws) on/in the bone and are adapted for rigid mechanical coupling a posi¬ tioning or coordinate measuring syste; , with the reference points of said devices being τ&. roduced in a tomographic image (e.g. stereotaxic apparatuses as described in Riechert et al.: Beschrexbung und An- wendung eines Zielgerates fur stereotaktische Hirn- operationen, Acta neurochir., Vienna, Austria, Suppl. Ill (1955), 308; and in DE 37 17 871, DE 39 02 249 and EP 312 568). The second category com¬ prises methods wherein individual reference bodies (marking elements, at least three of them) are fixed in or on the bone or the overlying skin surface al¬ ready prior to tomographic scanning of the respec¬ tive part of the body and subsequently are imaged in the tomographic pictures. These reference bodies und markers are then detected, as to their position and orientation, through a mechanically rigid construc¬ tion or 3D coordinate measurement and evaluation for detection of the transformation relation between the coordinate systems of the bone structure, the tomo¬ graphic images and the environment (Adams et al.: A navigation support for surgery. In: Hohne et al.: 3D-Imaging in Medicine. Nato ASI Series F.; Computer and System Science Vol. 60, Springer, 1990; Kosugi et al.: An articulated neurosurgical navigation sys¬ tem using MRI and CT images. IEEE Transactions on Biomedical Engineering, Vol. 35, No. 2, Feb.1988).
Since the relative position of the reference bodies or points relative to the osseous structures is known or can be obtained from the tomographic imag¬ es, it is possible to use a 3D coordinate measuring or adjusting device, coupled to these reference bod¬ ies (or points) fixedly or through defined transfor¬ mation relationships, for the positioning of coordi¬ nate measurement pins or guide devices for punctur¬ ing cannulae and drills.
Generally, these methods suffer from the following disadvantages:
- The reference bodies (markings, frames, other devices) can be fixed on the skin surface only in special cases (in the skull region or in the region of palpable sites on osseous structures), and even there only with restricted accuracy.
- A fixing directly on or in the osseous tissue requires that the patient has to undergo an ad¬ ditional surgical intervention.
The reference bodies (and possibly the whole rigid device) must remain fixed to the patient in an unchanged position from the time of image pick-up to the surgical intervention. In case of a non-rigid or non-physical connection, time- consuming (and again failure-prone) intraopera¬ tive measuring and aligning work has to be per¬ formed.
Generally, application is restricted to inter¬ ventions in the region of easily accessible os¬ seous structures and thus is normally unsuited for orthopedic surgery.
In the skull region, the systems described by Adams et al. and Kosugi et al. are suitable only with lim¬ ited accuracy as freehand-guided intraoperative 3D position measuring devices for navigational purpos¬ es. These systems rely or. artificial reference mark¬ ers on the skin surface. (Natural landmarks normally cannot be unambiguously identified as reference points, neither in the tomographic image nor in the site of the operation) No possibilities exist for the planning and storing of orthopedic interventions and, further, only freehand-guided measurement probes are available). Thus, these systems cannot be employed as suitable devices in orthopedic bone sur¬ gery.
To sum up, it is to be noted that, presently, only relatively primitive intraoperative devices are available for a consequent transfer of an individually planned orthopedic-surgical interven¬ tion in osseous structures. Consequently, an indi¬ vidually adapted hip-joint endoprosthesis, to be implanted without cement, is rendered absurd by a freehand-guided cutting in the intraoperative prepa- ration of the seat of the prosthesis. The technology of bone treatment has been lagging behind the tech¬ nology of implant manufacture. This has resulted in imprecise preparations of the seat of prostheses with point-shaped force transmission and movement between bone and prosthesis. The same applies to individually planned repositioning osteotomies (being nonetheless relatively uncritical in the region of tibia and femur) . For some considerably more complicated and critical interventions, e.g. in the region of the spinal column and the pelvis), there are no orientation and positioning devices available at all.
Further, efforts are being made to make use of robot technology for thus obtaining improved devices for faster, more accurate and less burdensome interven¬ tions also in the region of osseous structures.
Most of the known methods work after the above out¬ lined reference body principle with preoperative image acquisition and are principally impaired by the above mentioned disadvantages. The endeffector is moved and positioned by a robot or manipulator (cf. e.g. Kwoh et al.: A robot with improved abso¬ lute positioning accuracy for CT-guided stereotactic brain surgery. IEEE Transactions on Biomedical Engi¬ neering, Vol. 35, No. 2, Feb. 1988; Taylor et al.: Robot total hip replacement surgery in dogs. IEEE Engineering in Medicine & Biology Society 11th annu¬ al international conference 1989, pp. 887-889; Rein- hardt et al. : Robotik fur Hirnoperationen, Polyscope plus No. 6, pp. 1, 5-6). Some methods are executed with intraoperative image acquisition (particularly biplanar X-ray projection images) and suitable targeting and calibrating de¬ vices which appear in the image. By use of the known relationship between the targeting device and the robot (the targeting device being fixed e.g. in the robot gripper) and the relationship - defined by intraoperative X-ray images - between the targeting device and the X-rayed part of the body (the "ob¬ ject", as e.g. an osseous structure), it becomes possible to transform positioning processes or move¬ ments, having been defined in the coordinate system fixed to the object, into movements or positional vectors in the basic coordinate system of the robot (cf. e.g. Lavallee: A new system for computer as¬ sisted neurosurgery. IEEE Engineering in Medicine & Biology Society 11th annual international conference 1989, pp. 887-889; Jakobi et al. : Diagnosegesteuerte Therapierobotertechnik - medizinische und biomedi- zinische Aspekte, Z. Klin. Med. 45 Vol. 6, 1990, pp. 515-519) .
In the region of soft tissues, the principal system- atics of a fixedly defined spatial relationship be¬ tween the image acquisition device and the position¬ ing device for the endeffector has already become established in two cases (extracorporal shock wave lithotripsy, i.e. ultrasonic tomographic imaging or bipolar X-ray imaging with selection of the intra- corporal target point in the image and semiautomatic positioning of the shock wave focus; mammabiopsy, i.e. bipolar X-ray imaging with identification of the target point in the image and semiautomatic po- sitioning of the biopsy cannula). No comparable techniques are known in the field of orthopedic sur¬ gery of osseous structures.
In a further approach, it is tried to accomplish the identification and positional detection of osseous structures in orthopedic interventions by optical pattern detection and then, using a robot, to dis¬ play cutting paths by a laser beam, to position tool guiding devices, to perform work on the bone direct¬ ly etc. (Prasch: Computergestϋtzte Planung von chir- urgischen Eingriffen in der Orthopadie, Springer Verlag 1990). To this purpose, contours of the re¬ spective osseous structure which have been detected with the aid of a computer in biplanar intraopera¬ tive X-ray projection images, are compared to and, as far as possible, made congruent with 3D-CAD mod¬ els of this structure which have been reconstructed from tomographic images and stored in the computer. If the orientation of the basic coordinate system of the robot and that of the X-ray device relative to each other are known, the robot can be moved accord¬ ing to its programming made corresponding to the 3D model in the CAD system. In the above mentioned pub¬ lication, repositioning osteotomy is mentioned as an exemplary application. This system has not been re¬ alized yet.
In conclusion, it is to be stated that none of the above mentioned robot systems is suited for routine use in the field of orthopedic surgery of osseous structures. Systems which demand intraoperative X- ray images are disadvantageous for the above rea- sons. Due to the inherent technical (including also safety measures), organizational and economic neces¬ sities, the use of robots has to be limited to sur¬ gical interventions which require spatially complex treatment movements which can be carried out only via narrow access openings, or to interventions which for some other medical or surgical reasons cannot or not efficiently be performed without the aid of manipulators and robots. (The much-quoted repositioning osteotomy in the femur or tibia region does not count among these).
It is an object of the invention to allow a treat¬ ment of osseous structures for any desired orthope¬ dic interventions (i.e. also complex and possible novel interventions) which is safe, fast, exact and is defined according to the surgical planning. The term "treatment" is understood to comprise not only the treatment of an osseous structure by suitable tools (cutting, boring, milling device) but also other forms of treatment such as e.g. invasive mea¬ suring and scanning of osseous structures by corre¬ sponding measuring devices.
For solving the above object, there are proposed, in accordance with the invention, a method according to claim 1 and a template according to claim 3 which is preferably produced according to claim 5.
By the invention, intraoperative measuring and posi¬ tioning periods shall be minimized by shifting them into the preoperative planning phase and working steps requiring X-ray imaging shall generally be rendered unnecessary. For complex surgical interven¬ tions, quick and easy intraoperative access to a ma¬ nipulator or robot as a tool for assistance in the surgical intervention shall be made possible.
According to the invention, the central functional element is a so-called individual template by which parts of the surface of an arbitrary osseous struc¬ ture which is to be treated and is intraoperatively accessible to the surgeon, are copied as a negative image without undercut and in a mechanically rigid manner, so that the individual template can be set onto the osseous structure in a clearly defined po¬ sition and with mating-engagement.
According to the inventive method, there is used a split-field device (e.g. a computer or a nuclear spin tomograph) by which split images are produced of the layers extending through the body of the liv¬ ing organism and containing the osseous structure, and from these split images, data regarding the three-dimensional shape of the osseous structure and the surface thereof are obtained. In the preopera¬ tive planning phase, these data are used as a basis for defining, within the coordinate system fixedly positioned relative to the osseous structure, a rig¬ id individual template which, completely or by seg¬ ments (but at least by three intraoperatively clear¬ ly identifiable abutting points) , copies the surface of the osseous structure in such a manner that the individual template can be intraoperatively set onto these - then freely exposed - contact faces or points in exclusively one clearly defined position in form-closed manner. Thus, when mounting the indi¬ vidual template, an individual abutting behavior is observed in all six spatial degrees of freedom. Therefore, quick and reliable identification and detection of position is possible intraoperatively. In the invention, the inter- and intra-individual variants of the shape of osseous structures, which pose a problem in other systems, guarantee a safe and clear intraoperative identification and detec¬ tion of position.
Further, the invention is characterized in that the cutting, boring, milling and other treatment steps which in the preoperative surgical planning phase are three-dimensionally charted in said coordinate system fixed relative to the osseous structure, can be clearly defined in or on the individual template in form of guide means or reference or flange en¬ gagement points for standardized tool guides, which can be performed directly in or on the template body relative to the bone. Intraoperatively, this situa¬ tion, which in surgical planning is precisely de¬ fined in three dimensions and simulated, is realized by simply setting the individual template onto the exposed surface of the bone. Time-consuming measur¬ ing and aligning work is thus shifted into the pre¬ operative phase. Working steps which involve intra¬ operative X-ray control can be omitted.
Using the template of the invention allows a treat¬ ment of osseous structures for any orthopedic inter¬ vention (i.e. also complex and possible novel inter¬ ventions) which is carried out in a safe, fast and precise manner and is defined according to the sur¬ gical planning while it is not necessary anymore to intraoperatively check the orientation of the treat¬ ment tool. Intraoperative measuring and positioning periods are minimized by being shifted into the pre¬ operative planning phase and working steps requiring X-ray imaging have become unnecessary. For complex surgical interventions, a possibility is created for quick and easy intraoperative access to a manipula¬ tor or robot employed as an auxiliary tool in the surgical intervention.
The invention comprises the following features and characteristics:
1. By 3D reconstruction of a tomographically imaged object, particularly of the osseous structures of a living human, and by visualizing this re¬ construction on an output medium, particularly a computer monitor, and particularly by using a computer system or a computer-based display and construction system, there is generated a three- dimensional negative mold of parts of the indi¬ vidual natural (i.e. not pre-treated) surface of the osseous structure intraoperatively accessed by the surgeon.
2. The above negative mold can reproduce a cohesive region or a plurality of geometrically non-abut¬ ting partial segments of a bone surface and is constructed in a cohesive, mechanically rigid basic body (the individual template) . The over¬ all geometry of the basic body is also adapted to the spatial conditions of the surgical access so that it will not overlap with any structure.
By use of the computer-based representation of the three-dimensional reconstruction of the os¬ seous structure, the treatment of the bone can be planned. For this treatment, any suitable tool guides, particularly drill sleeves, paral¬ lel guides, saw templates, 2D- and 3D-profiling milling devices can be provided. These tool guides, connecting elements, surfaces or points can be provided in/on the basic body of the in¬ dividual template, which relative to the 3D re¬ construction of the osseous structure are ori¬ ented or constructed in such a manner that the tool guides, which here can be coupled (releasably or non-releasably) in a mechanically rigid manner, will effect a three-dimensional guiding of the treatment tools or measuring de¬ vices exactly as provided by the surgical plan¬ ning.
According to the course of procedure described above under item 3, also the basic body of the individual template can have connecting ele¬ ments, surfaces or points arranged thereon, which can be releasably coupled in mechanically rigid manner to the gripper piece of a manipula¬ tor and thus preoperatively define the position of the gripper piece of the manipulator relative to the three-dimensional reconstruction of the osseous structure. 5. Prior to the intervention and starting from the home position described above under item 4, a spatial treatment or moving program for the gripper piece of the manipulator can be defined in the gripper piece coordinate system in a spa¬ tially determined relation to the three-dimen¬ sional reconstruction of the osseous structure and be programmed in a computer-based procedure.
6. Further, prior to the intervention and starting from the home position described above under item 4 and also in a spatially determined rela¬ tion to the three-dimensional reconstruction of the osseous structure, it is possible that, for the gripper piece of the manipulator, a desired spatial and chronological dependence on the 3D position and the mechanical 6D impedance can be defined in the gripper piece coordinate system and be programmed in a computer-based procedure.
7. The basic body of the individual template men¬ tioned above under item 2., comprising the nega¬ tive mold, the connecting elements, surfaces or points is produced preoperatively by use of a computer-based manufacturing device (particular¬ ly by NC milling and/or stereolithography) . Dur¬ ing the preparation of the surgical procedure, the tool guides provided in the surgical plan¬ ning are preoperatively mounted on the basic body of the individual template.
8. During the surgical intervention, the above treatment steps defined in the phase of surgical planning can be exactly transferred since, rela¬ tive to the osseous structure, the tool guides can be brought exactly into the positions de¬ fined during the surgical planning phase (i.e. the manipulator gripper piece can be brought into the home position defined in the surgical planning phase). To this purpose, the individual template with the faces of the negative mold is set under mating engagement onto the then ex¬ posed bone surface, which is done without any further intraoperative devices (particularly without measuring devices such as 3D measuring arms or the like) and without intraoperative measuring and positioning work.
When optionally using a manipulator, the moving program defined during the preoperative planning phase in the computer system through gripper and workpiece coordinates, or, respectively, the 6D impedance variation space defined in the same manner, is converted after the intraoperative mounting of the individual template coupled to the gripper piece, and then will be available during the surgical intervention.
10. As outlined under item 9 above, the treatment and moving program defined under item 5 can be automatically reproduced in an exactly defined manner relative to the osseous structure or be manually released by pieces. The moving and treatment space defined according to items 6 and 9 is intraoperatively reproduced in an exactly defined manner relative to the bone through the spatial and chronological dependence on the var¬ iation of the mechanical 6D impedance of the manipulator guided by the surgeon on its gripper piece.
11. The guide means of the template for limiting the movement of a treatment device during the treat¬ ment of an osseous structure as provided by the surgical planning allows e.g. vertebral osteo¬ tomy using a vertebral-osteotomy template with a rear contour analogous limitation for the cut¬ ting depth. This limitation for the cutting depth, which requires a guide path for the guide means which corresponds to that limiting edge of the cut through the osseous structure which fac¬ es away from the template, can guarantee suffi¬ cient accuracy by exact positioning and guidance of the tool simply by employment of an (individ¬ ual) template conforming with the osseous struc¬ ture in mating engagement.
12. The consideration of the spatially diametrical bone surface with respect to the "rear contour analogous limitation for the cutting depth" by which, when guiding the cutting, the rear bound¬ ary of the bone is considered corresponding to the projected cutting curve and the rear side of the bone, and is not exceeded by the saw blade. What is again of functional importance here is the use of an individual-template basic body so as to exactly and clearly position the cutting depth limitation during the surgical interven¬ tion. 13. 3D copying milling device for the cleansing of medullary space or for the milling of predeter¬ mined shapes in osseous structures, character¬ ized in that the geometrical data provided for the 3D copying milling device reproduce individ¬ ual geometrical conditions of the thre~.-dimen¬ sional reconstruction of the tomographically imaged osseous structure. Also here, it is func¬ tionally important to use an individual-template basic body so as to exactly and clearly position the 3D copying milling device during the surgi¬ cal intervention.
Embodiments of the invention will be explained in greater detail hereunder with reference to the draw¬ ings. Throughout the Figures, identical reference numbers are used for identical parts in the differ¬ ent embodiments. The Figures show some exemplary embodiments which are merely provided for explaining the invention but, due to the various possible ap¬ plications of the invention, cannot depict the in¬ vention in an all-inclusive manner.
Figs. 1 to 5
show a first embodiment of the invention with an individual template, adapted to a vertebra, for guiding a tool, which in this case is a drill for application of bores for pedicle" screws into the vertebra,
Figs. 6 to 8 show a further embodiment of an individual template and its intraoperative handling and use,
Fig. 9 shows an individual template which is an al¬ ternative to the embodiment according to Figs. 6 to 8,
Figs. 10a to lOd
show a further embodiment of an individual template for hip-joint individual endopros- theses,
Fig. lOe
shows an alternative to the individual tem¬ plate according to Figs. 10a to 10d,
Figs. 11a to lid
show a further possible application of an individual template for use in scoliosis correction by repositioning osteotomy in the region of individual vertebrae,
Fig. lie
shows a further possibility for using an individual template for scoliosis correction by repositioning osteotomy in the region of individual vertebrae, Fig. 12 shows the use of an individual template for osteotomy in the region of the thoracic limb,
Figs. 13a to 13d
show a further individual template for prep¬ aration of a prosthesis seat of a knee-joint head prosthesis.
Figs. 14a to 14c
show an individual template provided with a copying milling device,
Fign. 15 and 15b
show an example of the use of an individual template for robot-assisted treatment of osseous structures,
Figs. 16a to 16e
show a further example of the use of an in¬ dividual template for robot-assisted treat¬ ment of osseous structures,
Fig. 17 shows a further example of robot-assisted treatment,
Fig. 18 is a flow chart for illustrating the method of computer-aided and computer-integrated alignment of treatment tools for the treat- ment of osseous structures in orthopedic surgery, and
Fig. 19 is a flow chart for illustrating the method for alignment of treatment tools for the robot-assisted treatment of osseous struc¬ tures in orthopedic surgery.
Figs, la, lb, 2a, 2b, 2c, 3a, 3b, 4, 5a, 5b, 5c show an individual template 4 for application of two bores in a vertebra. Each of the bores serves for the mounting of a pedicle screw which shall be screwed trough the (left or right) pedicle into the body of the vertebra, -as it is usually done for the anchoring of a fixateur-intern within a scoliosis operation. For reasons of stability, the screw shall be secured in the cortical substance (i.e. the out¬ er, more compact osseous layer). On the other hand, the bore and the screw shall injure neither the spi¬ nal cord extending in the adjacent spinal canal nor the spinal nerves issuing from the intervertebral canal, and penetrate through the cortical substance of the ventral side of the vertebra only so far that it does not yet ventrally issue from the boy of the vertebra. According to these requirements, the bores are preoperatively clearly defined in space by the entrance and end points and the diameter, and the screw is defined by the diameter and the length, which is done e.g. using CT images.
The method of the invention will be described here- under by way of an example which also stands for other, comparable interventions: The vertebra and the regions of the structure rele¬ vant for the surgical planning (the osseous struc¬ ture 17 in general) are scanned by a tomographic method as already described, are reconstructed in three dimensions, and the thus obtained 1:1 model is visualized by a suitable medium (e.g. CAD system). Also a model of the osseous structure 17 made from any mechanically rigid model material, which has been produced in the master mold technique by machining or any other desired production method (from UV curable polymer material, e.g. by means of stereolithography), can serve as a basis for the further method steps described hereunder. Methods for the construction of an individual template e.g. by means of a physically rigid model of the osseous structure (e.g. of plastics, wax or metal) and by a plastically deformable, curable material which is machinable in the cured condition, can be used for modelling and producing an individual template.
Particularly the method based on a computer-assisted CAD model will be described hereunder:
The osseous structure 17 (i.e. the vertebra) is re¬ produced in a CAD system as a computerized model. For example in the region of the transverse process¬ es and the vertebral arc (Fig. 2) (or also of the transverse process and the processus spinosus) (Fig. 5) or of the processus spinosus and the vertebral arc or ... ) parts of the bone surface which are intraoperatively accessible to the surgeon are de¬ fined in the model as contact faces 1 for the indi¬ vidual template 4. After reversal of the normal line of the surface (Fig. 3: 2 and 3), the defined con¬ tact faces 1 are used (as a negative, a "cast", "re¬ production") for a basis for the individual template 4 to be constructed in the coordinate system fixed relative to the model. To this effect, the contact faces 1 are first connected to a mechanically rigid construction adapted to the environment and the de¬ sired overall function, i.e. to the individual tem¬ plate body, so that the individual template 4, via the conventional surgical access (Fig. 4: sketch of a dorsal surgical access in an intervention for sco¬ liosis correction), can be set directly onto the exposed bone surface in a clearly defined manner as provided by the invention, without colliding with other structures in the surgical region. To achieve this, the individual template 4 is of such a config¬ uration that e.g. the contact faces 1 are defined without undercut and that, possibly, recesses 5 (cf. Fig. 5) are provided for structures in the vicinity of the contact faces 1. Thus, the individual tem¬ plate as a whole is adapted to the surgical site. Further, in this individual template, the tool guide, i.e. the drill guide, is mounted directly on the template body 6. To this purpose, two bores 7 are provided in the body of the individual template, on whose bore axes 8 there are arranged the entrance and end points 9,10 of the bores defined in the bone model according to the surgical planning, and which are provided with drill sleeves 11 which are each unambiguously positionable in the bores. With a known drill length 12, these drill sleeves define drill depths and diameters which, in length and in¬ ner diameter, are exactly adapted to the surgical planning. Further, in or on the individual template body, there are provided bores, threaded bores or other receiving portions for connecting elements, allowing fixation of a universal gripper 14, which can also be reusable, or e.g. of a holding arm 15 which is fixed to the operation table and can be freely positioned and locked. Additionally, clamping devices or screw connections (e.g. 19) can be pro¬ vided for intraoperative fixation of the individual template 4 onto or to the osseous structure 17.
After generation of a corresponding machine program, the individual template 4 is produced by machining on a NC milling machine, favorably from plastics, e.g. plexiglass (PMMA) or also other materials, e.g. metal, or by a master mold technique, e.g. by ste- eolithography (or a similar procedure as de¬ scribed e.g. in Eusemann, Schnell zum Modell durch Rapid Prototyping, VDI nachrichten No. 17, April 26, 1991, p. 26 and in DE 39 33 142) from UV curable polymer. When machining is provided, e.g. in case of the pedicle-screw individual template 4, use can be made of a largely prefabricated semi-finished prod¬ uct which in NC treatment simply has to be provided with the contact faces 1 and the bores 7 each of which are individually defined. During the surgical intervention, the drill sleeves 11 are brought quickly and in a precisely defined manner into that position relative to the bone 17 which before has been determined in the surgical planning; according to the invention, this is accomplished by setting the individual template 4 onto the vertebra (i.e. onto the contact faces in the region of the trans- verse processes and the vertebral arc). As provided by the invention, the bores 7 can be generated di¬ rectly by insertion of the drilling tool into the drill sleeves 11, wherein the diameter 16 and the entrance and end points 9,10 of the bores in the osseous structure of the vertebra 17 are defined by the preoperative planning and can be clearly repro¬ duced intraoperatively.
The usefulness of semi-finished products has to be examined depending on the respective surgical inter¬ vention. Semifinished products specifically suited for the intervention can be stored, in the CAD sys¬ tem, as a Macro (also parametrically) in libraries together with standard tool guides, standard tools, surgical fixing elements such as screws, fixateur- intern or -extern, other osteosynthesis instruments, grippers and holding arms up to robot and manipula¬ tor libraries. Also the storage of libraries with physiological or pathological osseous structures as well as standard surgical accesses in the CAD com¬ puter system can be of advantage. Then, in the phase of surgical planning, the mentioned individual com¬ ponents can be combined with each other, adapted to each other and positioned relative to each other in any desired manner in the coordinate system fixed relative to the computerized model of the osseous structure. By a clearly defined mechanical connec¬ tion and positioning of the individual components relative to each other and to the basic body of the individual template, which relative to the osseous structure has a clearly defined spatial position because of the contact faces, also the spatial posi- tion and orientation of the individual components relative to the bone is known and can be clearly reproduced intraoperatively by mounting the individ¬ ual template.
Figs. 6a, 6b, 7a, 7b and 8 illustrate an embodiment of the method exemplified by the use of the princi¬ ple of the individual template in a repositioning osteotomy in the region of the trochanter minor. The contact faces 1 of the mechanically rigid template body 6 of the individual template 4 clearly define the position of the template relative to the osseous structure 17. Thereby, also the position of the cut¬ ting planes according to the surgical planning (Fig. 7) can be intraoperatively reproduced by mounting the individual template 4. The individual template 4 can optionally be provided with a universal gripper 14. Also a fixation (nails, screws and the like) 19 on the bone 17 can be optionally performed. Further, through a drill sleeve 11 and a bore 7, the bore defined in the surgical planning (Fig. 7) and having the bore axis 8 and the entrance and end points 9,10, can be intraoperatively reproduced for fixing a fixateur-intern 21 as shown in Fig. 8. Fig. 9 shows an alternative simple individual template 4 (only saw template) for repositioning osteotomy.
Also the cutting plane which forms basis of the con¬ struction of e.g. hip-joint individual endopros- theses can be exactly reproduced by means of the in¬ dividual template. Figs. 10a to lOd show an embodi¬ ment for a corresponding individual template 4. (Fig. 10 again shows a simplified alternative). As will be described hereunder with reference to this embodiment and as shown in Figs. 10a to lOd, the in¬ dividual template 4 can also be the basis for fur¬ ther, additional individual templates 27 which need not have contact faces 1 to the osseous structure 17 but are (rigidly) connected to the basic individual template 4 by defined flange engagement points 28. By use of such flange engagement points 28, also other additional devices, e.g. a parallel guide 26, can be coupled. Also a rear contour analogous limi¬ tation 24 of the cutting depth can be provided in/on the individual template 4 or/and the addition¬ al individual template 27. To this purpose, the cut¬ ting contour of the rear side of the osseous struc¬ ture 17 with the respective cutting plane 20 is re¬ produced in such a manner in the individual template 4 (or, respectively, in the additional individual template 27) in the form of the rear contour analo¬ gous limitation for the cutting depth that the saw 25, guided in parallel, whose housing is rigidly connected to a guide pin (or guide cam) which slides along the rear contour analogous limitation for the cutting depth, cannot move beyond the boundary of the osseous structure in rearward direction. When mounting a fixateur-intern 21, the bores 19 applied for the fixation of the individual template can be utilized, if desired (Fig. lOd) .
Figs. 11a to lie illustrate, by way of example, the method of a scoliosis correction by a repositioning osteotomy in the region of individual bodies of the vertebrae. Further, the method of the rear contour analogous limitation 24 of the cutting depth, an alternative option of a parallel guide 26 for the sawing tool 25 and the method for mounting a fixateur-extern through a ventral access (Fig. He), are explained in greater detail. In the method of the scoliosis correction by a repositioning osteotomy in the region of individual vertebrae, it is provided according to the invention that, in the surgical planning phase, clearly defined bone wedges are cut from also defined bodies of the vertebrae, the spinal column as a whole is aligned and is temporarily fixed by known methods of osteosynthesis (from ventral and/or dorsal, Fig. He). Thus, completely new possibilities for operation and therapy are opened for scoliosis therapy, since, in the above manner, a scoliosis correction can be effected up to an angle of about 45° (according to Cobb) (Fig. lid) without a lasting stiffening of the spinal column (and without destruction of the inter- vertebral discs due to the therapy) .
In addition to the contact face 1 between the indi¬ vidual template 4 and the body 17 of the vertebra, a rear contour analogous limitation 24 for the cutting depth and a saw 25, being guided exactly parallel in the respective cutting plane, are required. The whole design and the manufacture are performed, as already described, on the basis of tomographic imag¬ es of the spinal column and assisted by a computer, in the CAD system, and manufacture is carried out by one of the above mentioned manufacturing methods. Two guide pins 23, rigidly connected to the housing of the sawing tool 25, are moved along two guides, i.e. the rear contour analogous limitations 24 for the cutting depth. These will image the form of the rear side of the body 29 of the vertebra in such a manner that, when cutting is executed with a saw blade guided in parallel according to Fig. 11a, the tip of the saw blade exactly follows the rear sur¬ face of the body of the vertebra and linearly cuts through the cortical substance. To this effect, the geometry of the sawing tool 25 along with the guide pins 23 and the geometry of the saw blade must be known in the phase of surgical planning. Further, a cutting plane 20 must be defined, and a correspond¬ ing parallel guide 26 of the saw tool 25 has to be provided intraoperatively. A parallel guidance can be safeguarded e.g. in' the manner shown in Figs. 11a to lie.
The individual template 4 can be optionally fixed, as shown at 19, on the body of the vertebra and be provided with a universal gripper 14. If a universal parallel guide (as shown e.g. in Fig. 10b) is to be employed, corresponding flange engagement points 28 have to be defined in the surgical planning phase. In this case, a sole rear contour analogous limita¬ tion 24 for the cutting depth, accordingly having a sole guide pin 23, will be sufficient.
Fig. He shows a method by which a fixateur-extern for alignment and temporary fixation of the spinal column after a ventral repositioning osteotomy in the region of individual bodies of the vertebrae, can be fixed solely through the ventral access and can be mounted in a non-invasive manner from dorsal. To this effect, bores 7 are formed from ventral through the body of the vertebra and the pedicles by use of an individual template 4 and drill sleeves 11. Then, a surgical threaded bar 30 is screwed into each of these bores until the head 32 of the threaded bar is flush with the ventral surface of the body of the vertebra. The threaded bars 30 are characterized in that each of them comprises a mandrel-like tip 31 which, when the threaded bars 30 are screwed into place, penetrate the layers of tissue dorsally abutting the vertebra, and in the screwed condition project so far beyond the dorsal surface 33 of the body that a fixateur-extern 22 adapted to them can be fixed to them and, thus, alignment and fixation of the spinal column can be performed from dorsal. Further, the threaded bar 30 is characterized in that a screwing tool can be applied in the region of the head 32 of the threaded bar (e.g. an internal hexagon), while, however, the head 32 of the threaded bar has a smaller diameter or the same diameter as the inner diameter of the thread. Thus, the threaded bar can be removed from dorsal. Additional ventral fixations of the bodies of the vertebrae to the purpose of osteosynthesis can be performed by use of fixateur-intern (clamps, plates and so on; possibly also by absorbable material) as commonly used to that purpose.
As a further example, Figs. 12a and 12b schematical¬ ly illustrate an application of the method using the individual template with alignment and definition of the cutting planes 20 and rear contour analogous limitation 24 for the cutting depth as performed in osteotomy in the region of the thoracic limb. The line 24 of the body 6 of the individual template corresponds to that edge of the cutting plane through the osseous structure 17 of the thoracic limb which is facing away from template 4.
Figs. 13a to 13c schematically show an individual template 4 for the preparation of the seat for the knee-joint head prosthesis illustrated by way of example in Fig. 13d. The intraoperative procedure is as follows: The individual template 4 is set onto the bone 17 in a defined manner, abutting the con¬ tact faces 1. The drill sleeve 11 is inserted, and the bore with the bore axis 8 is formed in the bone. Subsequently, the drill sleeve is removed again. Then, the cut is formed along the cutting plane 20a. Then, the cut 20b can be performed free-handed at a right angle to cut 20a. (To this effect, also an additional template 27 can be provided). Thereafter, the groove (cut 20c) is milled or sawed (according to the geometry of the prosthesis), and then, cut 20d is formed along the lower edge of the individual template 4.
Using an individual template, almost any random de¬ vices can be brought into a clearly defined position relative to the osseous structure as provided by the surgical planning. Milling operations can be exactly planned and realized by a copying milling device which is set onto the osseous structure through a suitable individual template (and which can also reproduce geometries of osseous structures or re¬ flect them in some other manner). Figs. 14a to 14c schematically show the cleansing of the space of the femural marrow from bone cement. The individual template 4 is intraoperatively set with the contact faces 1 onto the prepared bone. (Also for preparatory treatment, individual tem¬ plates can be provided) . The individual template 4 together with the additional device 41 coupled thereto by defined flange engagement points 28 de¬ fines the spatial orientation of the axis 42 of the milling device relative to the bone 17. The plan- parallel guide 36 of the additional device 41 limits the movements of the milling tool (or the milling head) in a plane perpendicular to the axis 42 of the milling device, and, further, the linear guide 37 of the additional device 41 limits the movements in the direction of the axis 42 of the milling device. The individual template 4 also comprises a cavity which, in the manner illustrated in Fig. 14a, is a copy 39 of the medullary space 40 but, as compared thereto, is enlarged in radial direction (relative to the axis of the milling device) by the factor of the difference of diameters (DGUI0E CAH - DMILLING HEAD) . When the guide cam 23 is guided within this copy 39 of the medullary space, the medullary space is milled by the milling head 35 on the corresponding loca¬ tions. In the surgical planning phase, the overall individual template 4 along with the flange engage¬ ment points 28 for the additional device 41 - with the geometry of the milling tool 38 and the addi¬ tional device 31 being known, and on the basis of tomographic images of the osseous structure 17 and the medullary space 40 - is constructed and manu¬ factured in such a manner that, during the operation and in the above described manner which is illus¬ trated in Fig. 14a, the whole medullary space 40 can be milled and the bone cement can be removed without injuring the compact outer structure of the bone. This method allows three-dimensional milling and cleansing of the medullary space in one working phase and in a clearly defined manner in accordance with the surgical planning.
Further applications are e.g. the triple reposi¬ tioning osteotomy of the pelvic bone, fixations in the region of the lumbosacral joint, and limited resections- of tumorous bone tissue.
The use of a robot or manipulator can be advan¬ tageous in case of very small access openings or spatially complex treatment processes (e.g. in tri¬ ple repositioning osteotomy of the pelvic bone or complex milling treatment) . Fig. 19 describes the principal method in diagrammatic form.
Figs. 15a and 15b show a first embodiment for the use of an individual template for robot-assisted treatment of osseous structures in orthopedic sur¬ gery. In the surgical planning phase, on the CAD system, the gripper 48 of a robot mechanics 49 stored in the macro library of the CAD system can be connected, with the contact faces 1, to the comput¬ erized model of the osseous structure 17 by a non- positive and torque-coupling connection to the in¬ dividual template 4. In doing so, the simulated po¬ sition of the robot gripper 48 in the coordinate system 43 fixed relative to the osseous structure 17 (or, respectively, the transformation relationship between the coordinate system fixed 44 relative to the robot gripper and fixed 43 relative to the osse¬ ous structure, when the individual template 4 is mounted on the bone 17 and is connected to robot gripper 48 in a defined rigid manner) is computed and stored as a starting position for simulation and program generation of the whole treatment procedure which, if desired, is performed with different treatment tools 47. The transformation relationship, changeable over time during the treatment procedure, between the robotic end effector 47 or the robot gripper coordinate system 44 and the coordinate sys¬ tem 43 fixed relative- to the osseous structure 17, is respectively planned, computed, simulated and stored or documented in the CAD system. This in¬ cludes the possibility of a positioning of laser pointers, tool guides, measuring probes, and of a direct treatment of the osseous structure by drills, milling devices, saws, lasers, ultrasonic applica¬ tors and others. Under the safety aspect, it would also be reasonable to define and program allowed and prohibited moving regions.
Using the individual template 4, fixed to the grip¬ per 48 of robot 49 according to the surgical plan¬ ning, the robot, during the surgical intervention, can quickly and reliably detect the spatial position of the osseous structure by the teach-in method (Fig. 15a). In the mounted condition of the individ¬ ual template 4, the parameters of the joint or the positional measuring data of the e.g. six axes of the robot 49 can be used for determining the trans- formation relationship between the basic coordinate system 45 of the robot and the coordinate system 43 fixed relative to the osseous structure 17. On the basis of this transformation relationship, the treatment steps, defined during the surgical plan¬ ning phase in the coordinate system 43 fixed rela¬ tive to the osseous structure 17 (i.e. the transfor¬ mation relationship, changeable over time during the treatment procedure, between the robotic end effec¬ tor 47 or the robot gripper coordinate system 44 and the coordinate system 43 fixed relative to the os¬ seous structure 17), can the be computed after spa¬ tial fixation 46 (holding arm, other fixateurs- extern) of the bone in the basic coordinate system 45 of the robot. To this purpose, the transformation relationship, changeable over time, between the ro¬ bot gripper coordinate system 44 and the basic coor¬ dinate system 45 of the robot, and thus the movement of the endeffector 47 (or gripper 48, respectively) is computed in the basic coordinate system 45 of the robot. The intraoperative transfer of the treatment procedure can be carried out e.g. by robot-assisted positioning of tool guides, marking of cutting planes by laser beam, or also automatic treatment by robot-guided endeffectors, e.g. saws/drills/milling devices and so on. Further, the position of the treatment tool 47 relative to the osseous structure 17 can be intraoperatively displayed in the picture of the model on a computer monitor 57 and can be visually controlled by the surgeon.
Figs. 15a and 15b schematically show the described method. The description of the geometry of the treatment tool 47 in the coordinate system of the robot gripper 44 has to be known and has to be iden¬ tical with the one defined in the surgical planning. The same holds true for the transformation relation¬ ship between the robot gripper 48 or 44 and the in¬ dividual template 4 (among others, defined by the flange engagement points 28). The robot must be new¬ ly calibrated in each case prior to the operation. CAD models for preoperative simulation and off-line programming of diverse robots are available on the market.
Figs. 16a to 16e schematically show the method by way of example in connection with an operation for applying an individually adapted hip-joint prosthe¬ sis. Further, the Figures show other embodiments for individual functional elements, e.g. fixation of the individual template 4 to the bone 17a through a con¬ necting element 18, establishing a reference between the coordinate system 43 of the bone and the basic coordinate system 45 of the robot by use of a refer¬ ence bore 52 provided with an adjusting-spring groove, spatial fixation of the osseous structure 17 through flange engagement points 28 of the individu¬ al template 4. According to Fig. 16a, the individual template 4 is set with the contact face la onto the femur bone 17a and is fixed by two wires. The bone 17a and the individual template 4 are spatially fixed through flange engagement points 28 by means of a holding arm (or other fixateur-externs) 46 clampingly fixed e.g. to the operating table. The robot 49 whose gripper piece 48 carries e.g. a shaft end having a defined geometry and being provided with an adjustment spring, detects the relative po¬ sition of the osseous structure 17 in the basic co¬ ordinate system 45 of the robot by the teach-in method through insertion of the referencing body (shaft end with adjustment spring) into the refer¬ encing bore 52 of the individual template 4. There¬ after, diverse treatment steps such as osteotomies and preparation of the medullary space are per¬ formed, according to the surgical planning, directly (by treatment tools) or indirectly (by laser point¬ ers, gauges and others) through the robot under per¬ manent control by the surgeon. (To these steps be¬ long, for instance, as shown in Fig. 16b, the posi¬ tioning of a simple universal saw template according to the cutting planes 20 defined in the surgical planning, performed by the robot 49, and, as shown in Fig. 16c, the treatment of the medullary space by a milling tool 47 guided by robot 49 according to the surgical planning) . Also the preparation of the acetabulum 51 can be carried out in a similar man¬ ner. To this purpose, the pelvis 17b is clampingly fixed from outside in the region of the palpable bone points as rigidly as possible and non-inva- sively. By an individual template 4b which in the region of the edge of the acetabulum can be mounted in a defined manner with the contact surface lb, the robot 49 determines the spatial position of the os¬ seous structure 17 in the basic coordinate system 45 of the robot. Then, the treatment, e.g. by means of a milling tool, is executed as defined by the surgi¬ cal planning. In this manner, it is possible e.g. to define an optimum thickness of the remaining bone and to avoid unintended perforation of the bottom of the acetabulum. Fig. 16 just gives one example of the many possible applications of the instant method in the field of surgical treatment of osseous struc¬ tures.
The method for treatment of osseous structures by means of "virtual individual templates":
If, during the phase of surgical planning on the CAD system, the "allowed" moving range 50 for treatment tools is structured, defined and programmed with suitable precision in the coordinate system 43 fixed relative to the osseous structure 17, it is possible to define, on the basis of respective limitations of the moving space, respectively one access corridor 55 and, adjoining it, a "virtual" tool guide 56 aligned and positioned according to the surgical planning. In this manner, a reproducible treatment of the bone can be accomplished also in that the treatment tool (saw, drill, milling device or the like) is intraoperatively fixed to the gripper piece 48 of a passive, impedance-variable manipulator 49 and is manually moved by the surgeon. Fig. 17 serves for schematic illustration of the method. When ap¬ proaching, within the operation site, the osseous structure 17 to be treated, the surgeon is guided by defined impedance variations of the manipulator (in¬ crease of the impedance when performing movements in the direction of the limitation of the access corri¬ dor) until, directly before contact of the treatment tool with the osseous structure 17, movement is pos- i_ J -le only along the virtual tool guide ("virtual tplate") defined according to the surgical plan- ning. The impedance variations can be effected or controlled by computer-assisted brake systems or actuators in the individual joints and degrees of freedom of the manipulator 49. For the force- and position-controlled system, there is required a 6D position and force-moment measurement (e.g. in the individual joints or through a 6D force-moment sen¬ sor 53 in the gripper piece 48 of manipulator 49).
The steps during the planning of the surgical inter¬ vention on the CAD system are the following:
Definition of the individual template 4 with the robot gripper piece 48 in the coordinate system 43 fixed relative to the osseous structure 17; manufacture of the individual template 4.
Definition, calculation and storage of the treatment procedure in form of an allowed moving space 50 in the coordinate system 43 fixed rela¬ tive to the osseous structure 17.
Intraoperative steps are:
Fixation 46 of the osseous structure 17.
Determination of the spatial position of the osseous structure 17 in the basic coordinate system of the robot by use of the individual template 4 mounted in the gripper piece 48 of the robot (shown in interrupted lines). Transformation of the allowed moving space, de¬ fined in the surgical planning phase in the co¬ ordinate system 43 fixed relative to the osseous structure 17, into the basic coordinate system 45 of the robot.
Movement of the gripper piece 48 of the robot along with the treatment tool 47 by the surgeon; in doing so, counterforces and -moments (imped¬ ance variation) are generated by the manipulator in dependence on the position of the control points 54 and the forces and moments exerted by the surgeon; when the control points 54 reach the limiting faces- of the moving space, the vec- torial components of the applied forces and mo¬ ments which would lead to a movement of the con¬ trol points in vertical direction to the limit¬ ing faces of the moving space and out of the moving space, are neutralized by vectorially corresponding counterforces and -moments of the same amount. In the allowed moving space 50 and along its moving faces, the control points 54 (or the endeffector 47) can be moved freely or, respectively, assisted by a servo mechanism (i.e. with vectorially negative counterforces and -moments). Further, during the operation, the position of the treatment tool 47 relative to the osseous structure 17 can be displayed in the image of the model on a computer monitor 57 and can be visually controlled by the surgeon.

Claims

Claims
A method for the definition and reproduction of the positional relationship of a treatment tool or a treatment or measuring device relative to an osseous structure for orthopedic surgery, wherein
- the osseous structure (17) is reconstructed,
- on the basis of said reconstruction of the os¬ seous structure (17), contact points and/or contact faces (1) are defined as abutment points for a mechanically rigid template (4) for guiding and aligning the treatment tool or the treatment or measuring device, said con¬ tact points and/or contact faces (1) being selected in such a manner that the template (4), when mounted on the osseous structure (17), abuts the osseous structure (17) in form-closed manner in exactly one spatially uniquely defined position,
- the spatial position of the treatment tool, the treatment or measuring device relative to the osseous structure (17) is defined,
- corresponding to the previously defined posi¬ tion of the treatment tool, the treatment or measuring device, fastening means are provided on or in the template (4), for fastening and/ or guiding the treatment tool, the treatment or measuring device on the template (4),
- the template (4), having thus been defined with respect to its interfaces with the osse¬ ous structure (17) on the one hand, and the treatment tool, the treatment or measuring device on the other hand, is produced, and
- the template (4), provided with the treatment tool, the treatment or measuring device, is positioned on the osseous structure (17) on the contact points and/or contact faces (1) defined on the basis of the reconstruction of the osseous structure (17).
The method according to claim 1, characterized in that said reconstruction is performed on the basis of data which are obtained by non-invasive detection of the geometry of the osseous struc¬ ture (17).
A template for alignment, positioning and guid¬ ance of treatment tools, treatment or measuring devices for treatment of an osseous structure, comprising
- a template body (6) comprising abutment points adapted to selected contact points and/or con¬ tact faces (1) of the osseous structure (17) for form-closed abutment on said contact points and/or contact faces (1) of the osseous structure (17),
- the template body (6) copying the surface of the osseous structure (17) as a whole or by segments, but at least by three intraoper¬ atively uniquely definable abutment points, in such a manner that the template body (6) can be mounted on the osseous structure (17) in form-closed manner exclusively in exactly one spatially uniquely defined position, and - fastening means for fastening the treatment tool, the treatment or measuring device to the template body (6) in such a manner that the treatment tool, the treatment or measuring device, when the abutment points of the tem¬ plate body (6) are in abutment with the con¬ tact points and/or contact faces of the osse¬ ous structure (17), is in a reproducible de¬ fined orientation relative to the osseous structure (17).
4. The template according to claim 3, characterized in that the template body (6) comprises guide means for limiting-the movement of the treatment tool, the treatment or measuring device for treatment of the osseous structure (17).
5. The use of a device for non-invasive tomographic imaging of osseous structures, particularly the use of computer or nuclear spin tomographic de¬ vices, for reconstruction of an osseous struc¬ ture (17) in order to produce a template (4) mountable in form-closed manner onto the osseous structure (17), for mounting and/or guidance of treatment tools, treatment and/or measuring de¬ vices for treatment of the osseous structure (17).
6. A method for the treatment of osseous structures in orthopedic surgery, wherein
- the osseous structure (17) is reconstructed,
- on the basis of said reconstruction of the os¬ seous structure (17), contact points and/or contact faces (1) are defined as abutment points for a template (4) for guiding and aligning a treatment tool, said contact points and/or contact faces (1) being selected in such a manner that the template (4), when moun4 A on the osseous structure (17), abuts the c - seous structure (17) in form-closed man¬ ner i exactly one spatially uniquely defined position, the spatial position of the treatment tool relative to the osseous structure (17) is de¬ fined according to the surgical planning, corresponding to the position of the treatment tool previously defined according to the sur¬ gical planning, fastening means are provided on or in the template (4) , for fastening and/or guiding the treatment tool on the tem¬ plate (4) according to the surgical planning, the template (4), having thus been defined with respect to its interfaces with the osse¬ ous structure (17) on the one hand, and the treatment tool on the other hand, is produced, the template (4) provided with the treatment tool is positioned on the osse¬ ous structure (17) on the contact points and/ or contact faces (1) defined on the basis of the reconstruction of the osseous structure (17), and the osseous structure (17) is treated by guiding the treatment tool on the template (4).
7. The use of the method according to any one of claims 1 or 2, for identification, positional detection and treatment of osseous structures in orthopedic surgery.
8. The use of the method according to any one of claims 1 or 2, for identification and positional detection of osseous structures by use of a treatment device, particularly a computer- assisted manipulator, robot or the like.
PCT/EP1993/0015401992-06-181993-06-17Template for treatment tools and method for the treatment of osseous structuresWO1993025157A1 (en)

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DEP4219939.51992-06-18
DE4219939ADE4219939C2 (en)1992-06-181992-06-18 Device for aligning, positioning and guiding machining tools, machining or measuring devices for machining a bony structure and method for producing this device

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Cited By (209)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
EP0908836A3 (en)*1997-10-061999-12-01General Electric CompanyComputer-constructed surgical guide
WO2004000139A1 (en)*2002-06-192003-12-31Sdgi Holdings, Inc.Guide and blade for contouring vertebral bodies
GB2430627A (en)*2003-02-062007-04-04Medicinelodge IncBone cutting guide
US7468075B2 (en)2001-05-252008-12-23Conformis, Inc.Methods and compositions for articular repair
US7510557B1 (en)2000-01-142009-03-31Bonutti Research Inc.Cutting guide
US7534263B2 (en)2001-05-252009-05-19Conformis, Inc.Surgical tools facilitating increased accuracy, speed and simplicity in performing joint arthroplasty
US7618451B2 (en)2001-05-252009-11-17Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools facilitating increased accuracy, speed and simplicity in performing total and partial joint arthroplasty
US20110213429A1 (en)*2003-11-252011-09-01Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
EP2265199A4 (en)*2008-03-052012-03-07Conformis IncPatient selectable joint arthroplasty devices and surgical tools
USRE43282E1 (en)1998-09-142012-03-27The Board Of Trustees Of The Leland Stanford Junior UniversityAssessing the condition of a joint and devising treatment
US8160345B2 (en)2008-04-302012-04-17Otismed CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
JP2012125274A (en)*2010-12-132012-07-05Sagawa Insatsu KkGuide for supporting insertion of pedicle probe
US8265949B2 (en)2007-09-272012-09-11Depuy Products, Inc.Customized patient surgical plan
US8311306B2 (en)2008-04-302012-11-13Otismed CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US8323288B2 (en)2007-09-302012-12-04Depuy Products, Inc.Customized patient-specific bone cutting blocks
US8357111B2 (en)2007-09-302013-01-22Depuy Products, Inc.Method and system for designing patient-specific orthopaedic surgical instruments
US8425617B2 (en)2002-12-202013-04-23Smith & Nephew, Inc.Knee prostheses with convex slope on portion of tibial articular surface
US20130103363A1 (en)*2001-05-252013-04-25Conformis, Inc.Methods and Compositions for Articular Repair
US8444651B2 (en)2007-05-142013-05-21Queen's University At KingstonPatient-specific surgical guidance tool and method of use
US8496663B2 (en)2007-03-232013-07-30Xiros LimitedSurgical templates
US20130211531A1 (en)*2001-05-252013-08-15Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
EP2632350A1 (en)*2010-10-292013-09-04The Cleveland Clinic FoundationSystem of preoperative planning and provision of patient-specific surgical aids
US8545509B2 (en)2007-12-182013-10-01Otismed CorporationArthroplasty system and related methods
USD691719S1 (en)2007-10-252013-10-15Otismed CorporationArthroplasty jig blank
US8617171B2 (en)2007-12-182013-12-31Otismed CorporationPreoperatively planning an arthroplasty procedure and generating a corresponding patient specific arthroplasty resection guide
US8617175B2 (en)2008-12-162013-12-31Otismed CorporationUnicompartmental customized arthroplasty cutting jigs and methods of making the same
US8638998B2 (en)2002-12-042014-01-28Conformis, Inc.Fusion of multiple imaging planes for isotropic imaging in MRI and quantitative image analysis using isotropic or near-isotropic imaging
US8641721B2 (en)2011-06-302014-02-04DePuy Synthes Products, LLCCustomized patient-specific orthopaedic pin guides
US8690945B2 (en)2001-05-252014-04-08Conformis, Inc.Patient selectable knee arthroplasty devices
US8715291B2 (en)2007-12-182014-05-06Otismed CorporationArthroplasty system and related methods
US8734455B2 (en)2008-02-292014-05-27Otismed CorporationHip resurfacing surgical guide tool
US8737700B2 (en)2007-12-182014-05-27Otismed CorporationPreoperatively planning an arthroplasty procedure and generating a corresponding patient specific arthroplasty resection guide
US8777875B2 (en)2008-07-232014-07-15Otismed CorporationSystem and method for manufacturing arthroplasty jigs having improved mating accuracy
US8801719B2 (en)2002-05-152014-08-12Otismed CorporationTotal joint arthroplasty system
US8808302B2 (en)2010-08-122014-08-19DePuy Synthes Products, LLCCustomized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US8834490B2 (en)2001-08-282014-09-16Bonutti Skeletal Innovations LlcMethod for robotic arthroplasty using navigation
US8862202B2 (en)1998-09-142014-10-14The Board Of Trustees Of The Leland Stanford Junior UniversityAssessing the condition of a joint and preventing damage
US8858561B2 (en)2006-06-092014-10-14Blomet Manufacturing, LLCPatient-specific alignment guide
US8864769B2 (en)2006-02-272014-10-21Biomet Manufacturing, LlcAlignment guides with patient-specific anchoring elements
US8882780B2 (en)2007-07-112014-11-11Smith & Nephew, Inc.Methods and apparatus for determining pin placement during hip surgery
US8882847B2 (en)2001-05-252014-11-11Conformis, Inc.Patient selectable knee joint arthroplasty devices
US8903530B2 (en)2011-06-062014-12-02Biomet Manufacturing, LlcPre-operative planning and manufacturing method for orthopedic procedure
US8900244B2 (en)2006-02-272014-12-02Biomet Manufacturing, LlcPatient-specific acetabular guide and method
US20140358152A1 (en)*2011-04-082014-12-04Sara CondinoDrilling mask for implanting a transpedicular screw
US8906107B2 (en)2001-05-252014-12-09Conformis, Inc.Patient-adapted and improved orthopedic implants, designs and related tools
US8926709B2 (en)2010-08-122015-01-06Smith & Nephew, Inc.Structures for use in orthopaedic implant fixation and methods of installation onto a bone
US8932363B2 (en)2002-11-072015-01-13Conformis, Inc.Methods for determining meniscal size and shape and for devising treatment
US8936602B2 (en)2000-03-172015-01-20Kinamed, Inc.Marking template for installing a custom replacement device for resurfacing a femur and associated installation method
US8951260B2 (en)2001-05-252015-02-10Conformis, Inc.Surgical cutting guide
US8956364B2 (en)2011-04-292015-02-17Biomet Manufacturing, LlcPatient-specific partial knee guides and other instruments
AU2009222469B2 (en)*2008-09-302015-02-26Depuy Products, Inc.Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US8968320B2 (en)2007-12-182015-03-03Otismed CorporationSystem and method for manufacturing arthroplasty jigs
US8979855B2 (en)2007-09-302015-03-17DePuy Synthes Products, Inc.Customized patient-specific bone cutting blocks
US8979936B2 (en)2006-06-092015-03-17Biomet Manufacturing, LlcPatient-modified implant
US8992538B2 (en)2008-09-302015-03-31DePuy Synthes Products, Inc.Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US9005297B2 (en)2006-02-272015-04-14Biomet Manufacturing, LlcPatient-specific elbow guides and associated methods
US9017334B2 (en)2009-02-242015-04-28Microport Orthopedics Holdings Inc.Patient specific surgical guide locator and mount
US9017336B2 (en)2006-02-152015-04-28Otismed CorporationArthroplasty devices and related methods
US9020788B2 (en)1997-01-082015-04-28Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9023050B2 (en)2001-05-252015-05-05Conformis, Inc.Surgical tools for arthroplasty
EP2870934A1 (en)2013-11-082015-05-13OrthotaxyMethod for constructing a patient-specific surgical guide
CN104688323A (en)*2015-03-312015-06-10首都医科大学附属北京友谊医院3D-printing cervical vertebra side block screw guide embedded plate and manufacturing method thereof
US9060788B2 (en)2012-12-112015-06-23Biomet Manufacturing, LlcPatient-specific acetabular guide for anterior approach
US9066804B2 (en)1994-09-022015-06-30Puget Bioventures LlcMethod and apparatus for femoral and tibial resection
US9066727B2 (en)2010-03-042015-06-30Materialise NvPatient-specific computed tomography guides
US9066734B2 (en)2011-08-312015-06-30Biomet Manufacturing, LlcPatient-specific sacroiliac guides and associated methods
CN104739501A (en)*2015-03-312015-07-01首都医科大学附属北京友谊医院3D-printed cervical vertebra pedicle screw guide and implantation plate and preparation method thereof
US9084618B2 (en)2011-06-132015-07-21Biomet Manufacturing, LlcDrill guides for confirming alignment of patient-specific alignment guides
US9113971B2 (en)2006-02-272015-08-25Biomet Manufacturing, LlcFemoral acetabular impingement guide
US9131945B2 (en)2013-03-112015-09-15DePuy Synthes Products, Inc.Customized patient-specific revision surgical instruments and method
US9138247B2 (en)2012-05-042015-09-22DePuy Synthes Products, Inc.Customized patient-specific orthopaedic pin guides
US9138239B2 (en)2007-09-302015-09-22DePuy Synthes Products, Inc.Customized patient-specific tibial cutting blocks
US9168153B2 (en)2011-06-162015-10-27Smith & Nephew, Inc.Surgical alignment using references
US9173666B2 (en)2011-07-012015-11-03Biomet Manufacturing, LlcPatient-specific-bone-cutting guidance instruments and methods
US9173661B2 (en)2006-02-272015-11-03Biomet Manufacturing, LlcPatient specific alignment guide with cutting surface and laser indicator
US9173662B2 (en)2007-09-302015-11-03DePuy Synthes Products, Inc.Customized patient-specific tibial cutting blocks
US9180015B2 (en)2008-03-052015-11-10Conformis, Inc.Implants for altering wear patterns of articular surfaces
US9192391B2 (en)2001-03-052015-11-24Puget Bioventures LlcMethod for minimally invasive total knee arthroplasty
US9204977B2 (en)2012-12-112015-12-08Biomet Manufacturing, LlcPatient-specific acetabular guide for anterior approach
US9237950B2 (en)2012-02-022016-01-19Biomet Manufacturing, LlcImplant with patient-specific porous structure
US9241745B2 (en)2011-03-072016-01-26Biomet Manufacturing, LlcPatient-specific femoral version guide
EP2984997A1 (en)*2014-08-112016-02-17DePuy (Ireland)Surgical instrument and system of surgical instruments
US9271744B2 (en)2010-09-292016-03-01Biomet Manufacturing, LlcPatient-specific guide for partial acetabular socket replacement
US9286686B2 (en)1998-09-142016-03-15The Board Of Trustees Of The Leland Stanford Junior UniversityAssessing the condition of a joint and assessing cartilage loss
US9289253B2 (en)2006-02-272016-03-22Biomet Manufacturing, LlcPatient-specific shoulder guide
US9295497B2 (en)2011-08-312016-03-29Biomet Manufacturing, LlcPatient-specific sacroiliac and pedicle guides
US9301812B2 (en)2011-10-272016-04-05Biomet Manufacturing, LlcMethods for patient-specific shoulder arthroplasty
US9308091B2 (en)2001-05-252016-04-12Conformis, Inc.Devices and methods for treatment of facet and other joints
US9308053B2 (en)2006-02-062016-04-12Conformis, Inc.Patient-specific joint arthroplasty devices for ligament repair
US9326780B2 (en)2006-02-062016-05-03Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools incorporating anatomical relief
US9339278B2 (en)2006-02-272016-05-17Biomet Manufacturing, LlcPatient-specific acetabular guides and associated instruments
US9345548B2 (en)2006-02-272016-05-24Biomet Manufacturing, LlcPatient-specific pre-operative planning
US9351743B2 (en)2011-10-272016-05-31Biomet Manufacturing, LlcPatient-specific glenoid guides
US9351744B2 (en)2007-05-142016-05-31Queen's University At KingstonPatient-specific surgical guidance tool and method of use
US9381011B2 (en)2012-03-292016-07-05Depuy (Ireland)Orthopedic surgical instrument for knee surgery
US9387079B2 (en)2001-05-252016-07-12Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9386993B2 (en)2011-09-292016-07-12Biomet Manufacturing, LlcPatient-specific femoroacetabular impingement instruments and methods
US9386994B2 (en)2010-06-112016-07-12Smith & Nephew, Inc.Patient-matched instruments
US9393028B2 (en)2009-08-132016-07-19Biomet Manufacturing, LlcDevice for the resection of bones, method for producing such a device, endoprosthesis suited for this purpose and method for producing such an endoprosthesis
US9402637B2 (en)2012-10-112016-08-02Howmedica Osteonics CorporationCustomized arthroplasty cutting guides and surgical methods using the same
US9408616B2 (en)2014-05-122016-08-09Biomet Manufacturing, LlcHumeral cut guide
US9408686B1 (en)2012-01-202016-08-09Conformis, Inc.Devices, systems and methods for manufacturing orthopedic implants
US9427320B2 (en)2011-08-042016-08-30Biomet Manufacturing, LlcPatient-specific pelvic implants for acetabular reconstruction
US9445903B2 (en)2008-11-242016-09-20Biomet Manufacturing, LlcMulti-bearing acetabular prosthesis
US9445904B2 (en)2009-07-142016-09-20Biomet Manufacturing, LlcMultiple bearing acetabular prosthesis
US9445907B2 (en)2011-03-072016-09-20Biomet Manufacturing, LlcPatient-specific tools and implants
US9451973B2 (en)2011-10-272016-09-27Biomet Manufacturing, LlcPatient specific glenoid guide
US9456833B2 (en)2010-02-262016-10-04Biomet Sports Medicine, LlcPatient-specific osteotomy devices and methods
WO2016166372A1 (en)*2015-04-162016-10-20OrthotaxyPatient-specific surgical guide
US9474539B2 (en)2011-04-292016-10-25Biomet Manufacturing, LlcPatient-specific convertible guides
US9480580B2 (en)2006-02-272016-11-01Biomet Manufacturing, LlcPatient-specific acetabular alignment guides
US9480490B2 (en)2006-02-272016-11-01Biomet Manufacturing, LlcPatient-specific guides
US9486226B2 (en)2012-04-182016-11-08Conformis, Inc.Tibial guides, tools, and techniques for resecting the tibial plateau
US9495483B2 (en)2001-05-252016-11-15Conformis, Inc.Automated Systems for manufacturing patient-specific orthopedic implants and instrumentation
US9498233B2 (en)2013-03-132016-11-22Biomet Manufacturing, Llc.Universal acetabular guide and associated hardware
US9517145B2 (en)2013-03-152016-12-13Biomet Manufacturing, LlcGuide alignment system and method
US9522010B2 (en)2006-02-272016-12-20Biomet Manufacturing, LlcPatient-specific orthopedic instruments
US9532788B2 (en)2007-12-062017-01-03Smith & Nephew, Inc.Systems and methods for determining the mechanical axis of a femur
US9538953B2 (en)2009-03-312017-01-10Depuy Ireland Unlimited CompanyDevice and method for determining force of a knee joint
US9545459B2 (en)2012-03-312017-01-17Depuy Ireland Unlimited CompanyContainer for surgical instruments and system including same
US9554910B2 (en)2011-10-272017-01-31Biomet Manufacturing, LlcPatient-specific glenoid guide and implants
EP2029061B1 (en)*2006-06-092017-02-01Biomet Manufacturing, LLCPatient specific knee alignment guide
US9561041B2 (en)2009-05-072017-02-07Smith & Nephew, Inc.Patient specific alignment guide for a proximal femur
US9561040B2 (en)2014-06-032017-02-07Biomet Manufacturing, LlcPatient-specific glenoid depth control
US9579110B2 (en)2001-05-252017-02-28Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9579107B2 (en)2013-03-122017-02-28Biomet Manufacturing, LlcMulti-point fit for patient specific guide
US9603711B2 (en)2001-05-252017-03-28Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9636229B2 (en)2012-09-202017-05-02Conformis, Inc.Solid freeform fabrication of implant components
EP3162316A1 (en)2015-11-022017-05-03Medivation AGA surgical instrument system
US9642632B2 (en)2009-02-242017-05-09Microport Orthopedics Holdings Inc.Orthopedic surgical guide
US9646113B2 (en)2008-04-292017-05-09Howmedica Osteonics CorporationGeneration of a computerized bone model representative of a pre-degenerated state and useable in the design and manufacture of arthroplasty devices
US9649119B2 (en)2009-03-312017-05-16Depuy Ireland Unlimited CompanyMethod for performing an orthopaedic surgical procedure
US9649117B2 (en)2009-02-242017-05-16Microport Orthopedics Holdings, Inc.Orthopedic surgical guide
US9662216B2 (en)2006-02-272017-05-30Biomet Manufacturing, LlcPatient-specific hip joint devices
US9662127B2 (en)2006-02-272017-05-30Biomet Manufacturing, LlcPatient-specific acetabular guides and associated instruments
US9675471B2 (en)2012-06-112017-06-13Conformis, Inc.Devices, techniques and methods for assessing joint spacing, balancing soft tissues and obtaining desired kinematics for joint implant components
US9675400B2 (en)2011-04-192017-06-13Biomet Manufacturing, LlcPatient-specific fracture fixation instrumentation and method
US20170164957A1 (en)*2001-05-252017-06-15Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9693878B2 (en)2009-11-172017-07-04Queen's University At KingstonPatient-specific guide for acetabular cup placement
US9700971B2 (en)2001-05-252017-07-11Conformis, Inc.Implant device and method for manufacture
US9717510B2 (en)2011-04-152017-08-01Biomet Manufacturing, LlcPatient-specific numerically controlled instrument
US9730799B2 (en)2006-06-302017-08-15Smith & Nephew, Inc.Anatomical motion hinged prosthesis
WO2017160651A1 (en)2016-03-122017-09-21Lang Philipp KDevices and methods for surgery
US9786022B2 (en)2007-09-302017-10-10DePuy Synthes Products, Inc.Customized patient-specific bone cutting blocks
US9795399B2 (en)2006-06-092017-10-24Biomet Manufacturing, LlcPatient-specific knee alignment guide and associated method
US9808262B2 (en)2006-02-152017-11-07Howmedica Osteonics CorporationArthroplasty devices and related methods
US9814539B2 (en)2004-01-142017-11-14Puget Bioventures LlcMethods and apparatus for conformable prosthetic implants
US9820868B2 (en)2015-03-302017-11-21Biomet Manufacturing, LlcMethod and apparatus for a pin apparatus
US9826981B2 (en)2013-03-132017-11-28Biomet Manufacturing, LlcTangential fit of patient-specific guides
US9826994B2 (en)2014-09-292017-11-28Biomet Manufacturing, LlcAdjustable glenoid pin insertion guide
US9833245B2 (en)2014-09-292017-12-05Biomet Sports Medicine, LlcTibial tubercule osteotomy
US9839434B2 (en)2009-10-292017-12-12Zimmer, Inc.Patient-specific mill guide
US9839438B2 (en)2013-03-112017-12-12Biomet Manufacturing, LlcPatient-specific glenoid guide with a reusable guide holder
US9839436B2 (en)2014-06-032017-12-12Biomet Manufacturing, LlcPatient-specific glenoid depth control
US9849019B2 (en)2012-09-212017-12-26Conformis, Inc.Methods and systems for optimizing design and manufacture of implant components using solid freeform fabrication
WO2018013416A1 (en)*2016-07-112018-01-18Bullseye Hip Replacement, LlcMethods to assist with medical procedures by utilizing patient-specific devices
WO2018021500A1 (en)*2016-07-282018-02-01株式会社ニューロデザインDrill guide, screw guide system, hole drilling method, and spinal fusion method
US9907659B2 (en)2007-04-172018-03-06Biomet Manufacturing, LlcMethod and apparatus for manufacturing an implant
US9918740B2 (en)2006-02-272018-03-20Biomet Manufacturing, LlcBackup surgical instrument system and method
US9968376B2 (en)2010-11-292018-05-15Biomet Manufacturing, LlcPatient-specific orthopedic instruments
US10034753B2 (en)2015-10-222018-07-31DePuy Synthes Products, Inc.Customized patient-specific orthopaedic instruments for component placement in a total hip arthroplasty
US10070973B2 (en)2012-03-312018-09-11Depuy Ireland Unlimited CompanyOrthopaedic sensor module and system for determining joint forces of a patient's knee joint
US10085839B2 (en)2004-01-052018-10-02Conformis, Inc.Patient-specific and patient-engineered orthopedic implants
US10098761B2 (en)2012-03-312018-10-16DePuy Synthes Products, Inc.System and method for validating an orthopaedic surgical plan
US10105145B2 (en)2015-03-242018-10-23OrthotaxyMethod for constructing a patient-specific surgical guide
WO2018202529A1 (en)2017-05-022018-11-08Medivation AgA surgical instrument system
US10149722B2 (en)2010-02-252018-12-11DePuy Synthes Products, Inc.Method of fabricating customized patient-specific bone cutting blocks
US10159498B2 (en)2008-04-162018-12-25Biomet Manufacturing, LlcMethod and apparatus for manufacturing an implant
US10182829B2 (en)2015-09-042019-01-22Depuy Ireland Unlimited CompanySurgical instrument and system of surgical instruments
US10194131B2 (en)2014-12-302019-01-29Onpoint Medical, Inc.Augmented reality guidance for spinal surgery and spinal procedures
US10206792B2 (en)2012-03-312019-02-19Depuy Ireland Unlimited CompanyOrthopaedic surgical system for determining joint forces of a patients knee joint
US10226262B2 (en)2015-06-252019-03-12Biomet Manufacturing, LlcPatient-specific humeral guide designs
US10278711B2 (en)2006-02-272019-05-07Biomet Manufacturing, LlcPatient-specific femoral guide
US10282488B2 (en)2014-04-252019-05-07Biomet Manufacturing, LlcHTO guide with optional guided ACL/PCL tunnels
US10405993B2 (en)2013-11-132019-09-10Tornier SasShoulder patient specific instrument
JP2019527609A (en)*2016-08-102019-10-03オーストラリアン インスティテュート オブ ロボティック オーソピーディクス プロプライエタリー リミテッド Robot-assisted laser surgery system
US10492798B2 (en)2011-07-012019-12-03Biomet Manufacturing, LlcBackup kit for a patient-specific arthroplasty kit assembly
US10568647B2 (en)2015-06-252020-02-25Biomet Manufacturing, LlcPatient-specific humeral guide designs
US10582934B2 (en)2007-11-272020-03-10Howmedica Osteonics CorporationGenerating MRI images usable for the creation of 3D bone models employed to make customized arthroplasty jigs
US10600515B2 (en)2008-09-192020-03-24Smith & Nephew, Inc.Operatively tuning implants for increased performance
US10603179B2 (en)2006-02-272020-03-31Biomet Manufacturing, LlcPatient-specific augments
US10675096B2 (en)2014-05-272020-06-09Aesculap AgMedical system
US10716676B2 (en)2008-06-202020-07-21Tornier SasMethod for modeling a glenoid surface of a scapula, apparatus for implanting a glenoid component of a shoulder prosthesis, and method for producing such a component
US10722310B2 (en)2017-03-132020-07-28Zimmer Biomet CMF and Thoracic, LLCVirtual surgery planning system and method
US10959742B2 (en)2017-07-112021-03-30Tornier, Inc.Patient specific humeral cutting guides
WO2021133926A1 (en)2019-12-272021-07-01Blue Fury Consulting, LlcAnti-skive bone drill
US11051829B2 (en)2018-06-262021-07-06DePuy Synthes Products, Inc.Customized patient-specific orthopaedic surgical instrument
US11065016B2 (en)2015-12-162021-07-20Howmedica Osteonics Corp.Patient specific instruments and methods for joint prosthesis
US11166733B2 (en)2017-07-112021-11-09Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US11179165B2 (en)2013-10-212021-11-23Biomet Manufacturing, LlcLigament guide registration
WO2022023568A1 (en)*2020-07-312022-02-03Ganymed RoboticsRetractable cutting guide
US11348257B2 (en)2018-01-292022-05-31Philipp K. LangAugmented reality guidance for orthopedic and other surgical procedures
US11419618B2 (en)2011-10-272022-08-23Biomet Manufacturing, LlcPatient-specific glenoid guides
US11553969B1 (en)2019-02-142023-01-17Onpoint Medical, Inc.System for computation of object coordinates accounting for movement of a surgical site for spinal and other procedures
FR3132202A1 (en)*2022-02-032023-08-04Amplitude Method and system for bone cutting comprising a control of the cutting plane
US11751944B2 (en)2017-01-162023-09-12Philipp K. LangOptical guidance for surgical, medical, and dental procedures
US11786206B2 (en)2021-03-102023-10-17Onpoint Medical, Inc.Augmented reality guidance for imaging systems
US11801114B2 (en)2017-09-112023-10-31Philipp K. LangAugmented reality display for vascular and other interventions, compensation for cardiac and respiratory motion
US11819280B2 (en)2020-09-302023-11-21DePuy Synthes Products, Inc.Customized patient-specific orthopaedic surgical instrument using patient-specific contacting bodies and parametric fixed geometry
US12053247B1 (en)2020-12-042024-08-06Onpoint Medical, Inc.System for multi-directional tracking of head mounted displays for real-time augmented reality guidance of surgical procedures
US12108959B2 (en)2019-05-292024-10-08Wright Medical Technology, Inc.Preparing a tibia for receiving tibial implant component of a replacement ankle
US12193939B2 (en)2017-12-292025-01-14Howmedica Osteonics Corp.Patient specific humeral implant components
US12211151B1 (en)2019-07-302025-01-28Onpoint Medical, Inc.Systems for optimizing augmented reality displays for surgical procedures
US12364570B1 (en)2019-02-142025-07-22Onpoint Medical, Inc.Systems for adjusting and tracking head mounted displays during surgery including with surgical helmets
US12383287B2 (en)2009-02-242025-08-12Microport Orthopedics Holdings, Inc.Systems and methods for installing an orthopedic implant
US12396739B2 (en)2020-01-172025-08-26Wright Medical Technology, Inc.Guidance tools, systems, and methods
US12419689B2 (en)2021-06-292025-09-23DePuy Synthes Products, Inc.Patient-specific registration jig and associated method for registering an orthopaedic surgical instrument to a patient
US12433761B1 (en)2022-01-202025-10-07Onpoint Medical, Inc.Systems and methods for determining the shape of spinal rods and spinal interbody devices for use with augmented reality displays, navigation systems and robots in minimally invasive spine procedures
US12440227B2 (en)2022-01-052025-10-14Wright Medical Technology, Inc.Preparing a tibia for receiving tibial implant component of a replacement ankle

Families Citing this family (31)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
DE19747427C2 (en)1997-10-281999-12-09Zeiss Carl Fa Device for bone segment navigation
DE19954005A1 (en)*1999-11-102001-06-07Volkmar JanssonSystem to control operation robots; has path for tool calculated from data obtained before operation and force sensor in bone-processing tool to measure bone density and compare with expected value
DE10035487B4 (en)*2000-07-212005-01-27Urs Universal Robot Systems Gmbh & Co. Kg Surgical instrument for working on a bony structure
AU2001212621A1 (en)*2000-11-032002-05-15Hopital Sainte-JustineAdjustable surgical templates
GB2382777A (en)*2001-12-072003-06-11Wyman KwongReferencing marker for use in computer assisted surgery
DE10207035B4 (en)*2002-02-202004-03-25Aesculap Ag & Co. Kg Template for guiding a surgical processing tool
DE102004042489B4 (en)2004-08-312012-03-29Siemens Ag Medical examination or treatment facility with associated method
DE602004019551D1 (en)2004-12-082009-04-02Perception Raisonnement Action Device for positioning a bone cutting guide
WO2006081421A2 (en)*2005-01-272006-08-03Nexgen Spine, Inc.Intervertebral disc replacement and surgical instruments therefor
EP1948041A2 (en)2005-10-242008-07-30Nexgen Spine, Inc.Intervertebral disc replacement and associated instrumentation
US9011441B2 (en)2006-02-172015-04-21Paradigm Spine, L.L.C.Method and system for performing interspinous space preparation for receiving an implant
US8070752B2 (en)2006-02-272011-12-06Biomet Manufacturing Corp.Patient specific alignment guide and inter-operative adjustment
US8298237B2 (en)2006-06-092012-10-30Biomet Manufacturing Corp.Patient-specific alignment guide for multiple incisions
US8241293B2 (en)2006-02-272012-08-14Biomet Manufacturing Corp.Patient specific high tibia osteotomy
US8473305B2 (en)2007-04-172013-06-25Biomet Manufacturing Corp.Method and apparatus for manufacturing an implant
US8282646B2 (en)2006-02-272012-10-09Biomet Manufacturing Corp.Patient specific knee alignment guide and associated method
WO2008039850A2 (en)2006-09-262008-04-03Nexgen Spine, Inc.Intervertebral. prosthesis endplate having double dome and surgical tools for preparing the vertebral body endplate to receive the prosthesis
AR064013A1 (en)2006-11-302009-03-04Paradigm Spine Llc VERTEBRAL, INTERLAMINAR, INTERESPINOUS STABILIZATION SYSTEM
US8470045B2 (en)2008-05-052013-06-25K2M, Inc.Endplate for an intervertebral prosthesis and prosthesis incorporating the same
US8170641B2 (en)2009-02-202012-05-01Biomet Manufacturing Corp.Method of imaging an extremity of a patient
DE102015003576A1 (en)*2015-03-192016-09-22Rainer Ebid 3 D-osteotome - device for cutting through bones to achieve a three-dimensional cutting surface
EP3095398B8 (en)2015-05-222023-08-02Medivation AGPatient-specific instrument for the referencing of body parts
EP3195833B1 (en)2016-01-192022-01-12K2M, Inc.Surgical instrument
DE102016105208B3 (en)*2016-03-212017-07-06Gottfried Wilhelm Leibniz Universität Hannover Medical Instrument
IT201600095913A1 (en)2016-09-232018-03-23Medacta Int Sa SPECIFIC NAVIGATION GUIDE FOR PATIENT
IT201600095900A1 (en)2016-09-232018-03-23Medacta Int Sa DISPOSABLE GUIDE DEVICE FOR SPINAL SURGERY
AU2018389760B2 (en)2017-12-222021-03-25Medacta International SaCutting guide for periacetabular osteotomy and kit for periacetabular osteotomy
AU2018389761B2 (en)2017-12-222021-04-22Medacta International SaCutting guide for periacetabular osteotomy and kit for periacetabular osteotomy
IT201800005435A1 (en)2018-05-162019-11-16 DISPOSABLE GUIDE DEVICE SPECIFIC FOR SPINAL SURGERY
ES2978217T3 (en)2018-10-082024-09-09Medacta Int Sa Patient-specific navigation guide
IT201900002575A1 (en)2019-02-222020-08-22Medacta Int Sa CUTTING GUIDE FOR SPINAL OSTEOTOMY

Citations (3)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4841975A (en)*1987-04-151989-06-27Cemax, Inc.Preoperative planning of bone cuts and joint replacement using radiant energy scan imaging
US4846161A (en)*1985-10-281989-07-11Roger Gregory JMethod and apparatus for removing prosthetic cement
US4979949A (en)*1988-04-261990-12-25The Board Of Regents Of The University Of WashingtonRobot-aided system for surgery

Family Cites Families (20)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
DE2919935C2 (en)*1979-05-171983-01-13Gerhard Hug Gmbh, 7801 Umkirch Device for guiding surgical instruments during operations on long bones
US4567885A (en)*1981-11-031986-02-04Androphy Gary WTriplanar knee resection system
DE3211153A1 (en)*1982-03-261983-09-29Peter Dr. 8403 Lengfeld HolzhauserDevice for adjustment and fixing of the plane of section in bone cuts
DE3339259C1 (en)*1983-10-281985-03-14Reinhold 8000 München SchmiedingDevice for the positioning of a surgical drilling tool
US4565191A (en)*1984-01-121986-01-21Slocum D BarclayApparatus and method for performing cuneiform osteotomy
US4565192A (en)*1984-04-121986-01-21Shapiro James ADevice for cutting a patella and method therefor
DE3447163A1 (en)*1984-12-221986-07-03Johannes 4408 Dülmen HönigSawing pattern with fixation on the ascending branch of the lower jaw for the treatment of malocclusions on the lower jaw
DE3538654A1 (en)*1985-10-281987-04-30Mecron Med Prod Gmbh DRILLING SYSTEM CONTAINING A DRILL GUIDE FOR THE INSERTION OF AN ENDOPROTHESIS AND RELATED PROSTHESIS
US4721104A (en)*1985-12-021988-01-26Dow Corning Wright CorporationFemoral surface shaping apparatus for posterior-stabilized knee implants
FI74205C (en)*1986-01-301988-01-11Pekka Johannes Jokio PASSAGE VIDEO SCANNER OPERATION FOR CORRECTING AV FELSTAELLNINGAR AV KNAE.
US4703751A (en)*1986-03-271987-11-03Pohl Kenneth PMethod and apparatus for resecting a distal femoral surface
US4822362A (en)*1987-05-191989-04-18Walker Peter SProcess and apparatus for tibial plateau compenent
DE3717871C3 (en)*1987-05-271995-05-04Georg Prof Dr Schloendorff Method and device for reproducible visual representation of a surgical intervention
US4860735A (en)*1988-08-081989-08-29The General Hospital CorporationDrill alignment guide for osteoplastic surgery
DE3842645A1 (en)*1988-12-141990-06-28Mecron Med Prod Gmbh SAFE GAUGE SYSTEM
IT1227847B (en)*1989-01-111991-05-10Cremascoli Spa G EQUIPMENT FOR THE CORRECT FEMORAL RESECTION AND FOR THE APPLICATION OF REPLACEMENT PROSTHESES OF THE KNEE ARTICULATION.
DE3902249A1 (en)*1989-01-261990-08-02Bodenseewerk GeraetetechMethod of fixing the position of predetermined sites in the human body
US4907577A (en)*1989-04-031990-03-13Wu Shing ShengSpinal transpedicle drill jig
FR2651114B1 (en)*1989-08-291991-10-18Commissariat Energie Atomique DEVICE FOR POSITIONING AND GUIDING THE BLADE OF A SURGICAL SAW.
DE9005888U1 (en)*1990-05-241990-07-26Aesculap AG, 7200 Tuttlingen Drill guide for a surgical medullary drill

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4846161A (en)*1985-10-281989-07-11Roger Gregory JMethod and apparatus for removing prosthetic cement
US4841975A (en)*1987-04-151989-06-27Cemax, Inc.Preoperative planning of bone cuts and joint replacement using radiant energy scan imaging
US4979949A (en)*1988-04-261990-12-25The Board Of Regents Of The University Of WashingtonRobot-aided system for surgery

Cited By (483)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US9066804B2 (en)1994-09-022015-06-30Puget Bioventures LlcMethod and apparatus for femoral and tibial resection
US9020788B2 (en)1997-01-082015-04-28Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
EP0908836A3 (en)*1997-10-061999-12-01General Electric CompanyComputer-constructed surgical guide
USRE43282E1 (en)1998-09-142012-03-27The Board Of Trustees Of The Leland Stanford Junior UniversityAssessing the condition of a joint and devising treatment
US9286686B2 (en)1998-09-142016-03-15The Board Of Trustees Of The Leland Stanford Junior UniversityAssessing the condition of a joint and assessing cartilage loss
US8862202B2 (en)1998-09-142014-10-14The Board Of Trustees Of The Leland Stanford Junior UniversityAssessing the condition of a joint and preventing damage
US7510557B1 (en)2000-01-142009-03-31Bonutti Research Inc.Cutting guide
US7615054B1 (en)2000-01-142009-11-10Martec, LLCBicompartmental knee implant and method
US9795394B2 (en)2000-01-142017-10-24Bonutti Skeletal Innovations LlcMethod for placing implant using robotic system
US7635390B1 (en)2000-01-142009-12-22Marctec, LlcJoint replacement component having a modular articulating surface
US9192459B2 (en)2000-01-142015-11-24Bonutti Skeletal Innovations LlcMethod of performing total knee arthroplasty
US9101443B2 (en)2000-01-142015-08-11Bonutti Skeletal Innovations LlcMethods for robotic arthroplasty
US8961529B2 (en)2000-03-172015-02-24Kinamed, Inc.Marking template for installing a custom replacement device for resurfacing a femur and associated installation method
US9393032B2 (en)2000-03-172016-07-19Kinamed, Inc.Marking template for installing a custom replacement device for resurfacing a femur and associated installation method
US8936601B2 (en)2000-03-172015-01-20Kinamed, Inc.Marking template for installing a custom replacement device for resurfacing a femur and associated installation method
US8936602B2 (en)2000-03-172015-01-20Kinamed, Inc.Marking template for installing a custom replacement device for resurfacing a femur and associated installation method
US9192391B2 (en)2001-03-052015-11-24Puget Bioventures LlcMethod for minimally invasive total knee arthroplasty
US9421022B2 (en)2001-03-052016-08-23Puget Bioventures LlcMethod and apparatus for total knee arthroplasty
US8690945B2 (en)2001-05-252014-04-08Conformis, Inc.Patient selectable knee arthroplasty devices
US9603711B2 (en)2001-05-252017-03-28Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US20120071883A1 (en)*2001-05-252012-03-22Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9358018B2 (en)2001-05-252016-06-07Conformis, Inc.Joint arthroplasty devices and surgical tools
US9125672B2 (en)2001-05-252015-09-08Conformis, Inc.Joint arthroplasty devices and surgical tools
US9125673B2 (en)2001-05-252015-09-08Conformis, Inc.Joint arthroplasty devices and surgical tools
US9333085B2 (en)2001-05-252016-05-10Conformis, Inc.Patient selectable knee arthroplasty devices
US9107679B2 (en)2001-05-252015-08-18Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9107680B2 (en)2001-05-252015-08-18Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9186254B2 (en)2001-05-252015-11-17Conformis, Inc.Patient selectable knee arthroplasty devices
US9186161B2 (en)2001-05-252015-11-17Conformis, Inc.Surgical tools for arthroplasty
US9439767B2 (en)2001-05-252016-09-13Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9084617B2 (en)2001-05-252015-07-21Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9072531B2 (en)2001-05-252015-07-07Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9495483B2 (en)2001-05-252016-11-15Conformis, Inc.Automated Systems for manufacturing patient-specific orthopedic implants and instrumentation
US8906107B2 (en)2001-05-252014-12-09Conformis, Inc.Patient-adapted and improved orthopedic implants, designs and related tools
US9066728B2 (en)2001-05-252015-06-30Conformis, Inc.Surgical tools facilitating increased accuracy, speed and simplicity in performing joint arthroplasty
US7618451B2 (en)2001-05-252009-11-17Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools facilitating increased accuracy, speed and simplicity in performing total and partial joint arthroplasty
US9295482B2 (en)2001-05-252016-03-29Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US8882847B2 (en)2001-05-252014-11-11Conformis, Inc.Patient selectable knee joint arthroplasty devices
US20130103363A1 (en)*2001-05-252013-04-25Conformis, Inc.Methods and Compositions for Articular Repair
US20130110471A1 (en)*2001-05-252013-05-02Conformis, Inc.Methods and Compositions for Articular Repair
US20170007408A1 (en)*2001-05-252017-01-12Conformis, Inc.Joint Arthroplasty Devices and Surgical Tools
US9775680B2 (en)2001-05-252017-10-03Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9055953B2 (en)2001-05-252015-06-16Conformis, Inc.Methods and compositions for articular repair
US20130211531A1 (en)*2001-05-252013-08-15Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9579110B2 (en)2001-05-252017-02-28Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9387079B2 (en)2001-05-252016-07-12Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9023050B2 (en)2001-05-252015-05-05Conformis, Inc.Surgical tools for arthroplasty
US7534263B2 (en)2001-05-252009-05-19Conformis, Inc.Surgical tools facilitating increased accuracy, speed and simplicity in performing joint arthroplasty
US8998915B2 (en)2001-05-252015-04-07Conformis, Inc.Joint arthroplasty devices and surgical tools
US8974539B2 (en)2001-05-252015-03-10Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US9913723B2 (en)2001-05-252018-03-13Conformis, Inc.Patient selectable knee arthroplasty devices
US20170164957A1 (en)*2001-05-252017-06-15Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9877790B2 (en)2001-05-252018-01-30Conformis, Inc.Tibial implant and systems with variable slope
US8926706B2 (en)2001-05-252015-01-06Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US7468075B2 (en)2001-05-252008-12-23Conformis, Inc.Methods and compositions for articular repair
US9700971B2 (en)2001-05-252017-07-11Conformis, Inc.Implant device and method for manufacture
US8951260B2 (en)2001-05-252015-02-10Conformis, Inc.Surgical cutting guide
US9216025B2 (en)2001-05-252015-12-22Conformis, Inc.Joint arthroplasty devices and surgical tools
US8945230B2 (en)2001-05-252015-02-03Conformis, Inc.Patient selectable knee joint arthroplasty devices
US8951259B2 (en)2001-05-252015-02-10Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9308091B2 (en)2001-05-252016-04-12Conformis, Inc.Devices and methods for treatment of facet and other joints
US20140303629A1 (en)*2001-05-252014-10-09Conformis, Inc.Methods and Compositions for Articular Repair
US8840629B2 (en)2001-08-282014-09-23Bonutti Skeletal Innovations LlcRobotic arthroplasty system including navigation
US8858557B2 (en)2001-08-282014-10-14Bonutti Skeletal Innovations LlcMethod of preparing a femur and tibia in knee arthroplasty
US8834490B2 (en)2001-08-282014-09-16Bonutti Skeletal Innovations LlcMethod for robotic arthroplasty using navigation
US10231739B1 (en)2001-08-282019-03-19Bonutti Skeletal Innovations LlcSystem and method for robotic surgery
US10321918B2 (en)2001-08-282019-06-18Bonutti Skeletal Innovations LlcMethods for robotic surgery using a cannula
US9763683B2 (en)2001-08-282017-09-19Bonutti Skeletal Innovations LlcMethod for performing surgical procedures using optical cutting guides
US9060797B2 (en)2001-08-282015-06-23Bonutti Skeletal Innovations LlcMethod of preparing a femur and tibia in knee arthroplasty
US10470780B2 (en)2001-08-282019-11-12Bonutti Skeletal Innovations LlcSystems and methods for ligament balancing in robotic surgery
US8801719B2 (en)2002-05-152014-08-12Otismed CorporationTotal joint arthroplasty system
US7153303B2 (en)2002-06-192006-12-26Sdgi Holdings, Inc.Guide and blade for contouring vertebral bodies
WO2004000139A1 (en)*2002-06-192003-12-31Sdgi Holdings, Inc.Guide and blade for contouring vertebral bodies
US8932363B2 (en)2002-11-072015-01-13Conformis, Inc.Methods for determining meniscal size and shape and for devising treatment
US8965088B2 (en)2002-11-072015-02-24Conformis, Inc.Methods for determining meniscal size and shape and for devising treatment
AU2010201200B2 (en)*2002-11-272015-04-09Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools facilitating increased accuracy, speed and simplicity in performing total and partial joint arthroplasty
EP1575460B1 (en)*2002-11-272017-05-31ConforMIS, Inc.Patient selectable total and partial joint arthroplasty devices and surgical tools
US8638998B2 (en)2002-12-042014-01-28Conformis, Inc.Fusion of multiple imaging planes for isotropic imaging in MRI and quantitative image analysis using isotropic or near-isotropic imaging
US8425617B2 (en)2002-12-202013-04-23Smith & Nephew, Inc.Knee prostheses with convex slope on portion of tibial articular surface
US9707087B2 (en)2002-12-202017-07-18Smith & Nephew, Inc.High performance knee prosthesis
US11369477B2 (en)2002-12-202022-06-28Smith & Nephew, Inc.High performance knee prostheses
US9402729B2 (en)2002-12-202016-08-02Smith & Nephew, Inc.High performance knee prostheses
US10149768B2 (en)2002-12-202018-12-11Smith & Nephew, Inc.High performance knee prostheses
US9320605B2 (en)2002-12-202016-04-26Smith & Nephew, Inc.High performance knee prostheses
GB2430627B (en)*2003-02-062007-12-27Medicinelodge IncTibial tubercle osteotomy for total knee arthroplasty and instruments and implants therefor
US8262664B2 (en)2003-02-062012-09-11Zimmer, Inc.Methods for performing a tibial tubercle osteotomy
GB2430627A (en)*2003-02-062007-04-04Medicinelodge IncBone cutting guide
GB2437003B (en)*2003-02-062007-12-27Medicinelodge IncTibial tubercle osteotomy for total knee arthroplasty and instruments and implants therefor
GB2437003A (en)*2003-02-062007-10-10Medicinelodge IncTibial tubercle bone cutting guide with removable cutting templates
US9241724B2 (en)2003-11-252016-01-26Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US20110213377A1 (en)*2003-11-252011-09-01Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9113921B2 (en)2003-11-252015-08-25Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US11147568B2 (en)2003-11-252021-10-19Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9295481B2 (en)2003-11-252016-03-29Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9308005B2 (en)2003-11-252016-04-12Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9314256B2 (en)2003-11-252016-04-19Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US20110213429A1 (en)*2003-11-252011-09-01Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9241725B2 (en)2003-11-252016-01-26Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9408615B2 (en)2003-11-252016-08-09Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US20110213374A1 (en)*2003-11-252011-09-01Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9381025B2 (en)2003-11-252016-07-05Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US20110213428A1 (en)*2003-11-252011-09-01Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US20110238073A1 (en)*2003-11-252011-09-29Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9375222B2 (en)2003-11-252016-06-28Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US10085839B2 (en)2004-01-052018-10-02Conformis, Inc.Patient-specific and patient-engineered orthopedic implants
US9814539B2 (en)2004-01-142017-11-14Puget Bioventures LlcMethods and apparatus for conformable prosthetic implants
US9326780B2 (en)2006-02-062016-05-03Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools incorporating anatomical relief
US9220517B2 (en)2006-02-062015-12-29Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US20110313423A1 (en)*2006-02-062011-12-22Conformis, Inc.Patient Selectable Joint Arthroplasty Devices and Surgical Tools
US9308053B2 (en)2006-02-062016-04-12Conformis, Inc.Patient-specific joint arthroplasty devices for ligament repair
US9220516B2 (en)2006-02-062015-12-29Conformis, Inc.Patient selectable joint arthroplasty devices and surgical tools
US9017336B2 (en)2006-02-152015-04-28Otismed CorporationArthroplasty devices and related methods
US9808262B2 (en)2006-02-152017-11-07Howmedica Osteonics CorporationArthroplasty devices and related methods
US9480580B2 (en)2006-02-272016-11-01Biomet Manufacturing, LlcPatient-specific acetabular alignment guides
US10206695B2 (en)2006-02-272019-02-19Biomet Manufacturing, LlcFemoral acetabular impingement guide
US9289253B2 (en)2006-02-272016-03-22Biomet Manufacturing, LlcPatient-specific shoulder guide
US10743937B2 (en)2006-02-272020-08-18Biomet Manufacturing, LlcBackup surgical instrument system and method
US9480490B2 (en)2006-02-272016-11-01Biomet Manufacturing, LlcPatient-specific guides
US10603179B2 (en)2006-02-272020-03-31Biomet Manufacturing, LlcPatient-specific augments
US9113971B2 (en)2006-02-272015-08-25Biomet Manufacturing, LlcFemoral acetabular impingement guide
US11534313B2 (en)2006-02-272022-12-27Biomet Manufacturing, LlcPatient-specific pre-operative planning
US10507029B2 (en)2006-02-272019-12-17Biomet Manufacturing, LlcPatient-specific acetabular guides and associated instruments
US8900244B2 (en)2006-02-272014-12-02Biomet Manufacturing, LlcPatient-specific acetabular guide and method
US9522010B2 (en)2006-02-272016-12-20Biomet Manufacturing, LlcPatient-specific orthopedic instruments
US8864769B2 (en)2006-02-272014-10-21Biomet Manufacturing, LlcAlignment guides with patient-specific anchoring elements
US9539013B2 (en)2006-02-272017-01-10Biomet Manufacturing, LlcPatient-specific elbow guides and associated methods
US10426492B2 (en)2006-02-272019-10-01Biomet Manufacturing, LlcPatient specific alignment guide with cutting surface and laser indicator
US10390845B2 (en)2006-02-272019-08-27Biomet Manufacturing, LlcPatient-specific shoulder guide
US10278711B2 (en)2006-02-272019-05-07Biomet Manufacturing, LlcPatient-specific femoral guide
US9345548B2 (en)2006-02-272016-05-24Biomet Manufacturing, LlcPatient-specific pre-operative planning
US9173661B2 (en)2006-02-272015-11-03Biomet Manufacturing, LlcPatient specific alignment guide with cutting surface and laser indicator
US9339278B2 (en)2006-02-272016-05-17Biomet Manufacturing, LlcPatient-specific acetabular guides and associated instruments
US9700329B2 (en)2006-02-272017-07-11Biomet Manufacturing, LlcPatient-specific orthopedic instruments
US9913734B2 (en)2006-02-272018-03-13Biomet Manufacturing, LlcPatient-specific acetabular alignment guides
US9662127B2 (en)2006-02-272017-05-30Biomet Manufacturing, LlcPatient-specific acetabular guides and associated instruments
US9662216B2 (en)2006-02-272017-05-30Biomet Manufacturing, LlcPatient-specific hip joint devices
US9918740B2 (en)2006-02-272018-03-20Biomet Manufacturing, LlcBackup surgical instrument system and method
US9005297B2 (en)2006-02-272015-04-14Biomet Manufacturing, LlcPatient-specific elbow guides and associated methods
US9861387B2 (en)2006-06-092018-01-09Biomet Manufacturing, LlcPatient-specific knee alignment guide and associated method
US9993344B2 (en)2006-06-092018-06-12Biomet Manufacturing, LlcPatient-modified implant
US10206697B2 (en)2006-06-092019-02-19Biomet Manufacturing, LlcPatient-specific knee alignment guide and associated method
US8979936B2 (en)2006-06-092015-03-17Biomet Manufacturing, LlcPatient-modified implant
EP2029061B1 (en)*2006-06-092017-02-01Biomet Manufacturing, LLCPatient specific knee alignment guide
US10893879B2 (en)2006-06-092021-01-19Biomet Manufacturing, LlcPatient-specific knee alignment guide and associated method
EP3123962A3 (en)*2006-06-092017-04-19Biomet Manufacturing, LLCPatient specific knee alignment guide
US9795399B2 (en)2006-06-092017-10-24Biomet Manufacturing, LlcPatient-specific knee alignment guide and associated method
US8858561B2 (en)2006-06-092014-10-14Blomet Manufacturing, LLCPatient-specific alignment guide
US11576689B2 (en)2006-06-092023-02-14Biomet Manufacturing, LlcPatient-specific knee alignment guide and associated method
US12383405B2 (en)2006-06-302025-08-12Smith & Nephew, Inc.Anatomical motion hinged prosthesis
US9730799B2 (en)2006-06-302017-08-15Smith & Nephew, Inc.Anatomical motion hinged prosthesis
US10779949B2 (en)2006-06-302020-09-22Smith & Nephew, Inc.Anatomical motion hinged prosthesis
US10835266B2 (en)2007-03-232020-11-17Xiros LimitedSurgical templates
US9125674B2 (en)2007-03-232015-09-08Xiros LimitedSurgical templates
US10835265B2 (en)2007-03-232020-11-17Xiros LimitedSurgical templates
US9265511B2 (en)2007-03-232016-02-23Xiros LimitedSurgical templates
US8496663B2 (en)2007-03-232013-07-30Xiros LimitedSurgical templates
US11666346B2 (en)2007-03-232023-06-06Xiros LimitedSurgical templates
US11672548B2 (en)2007-03-232023-06-13Xiros LimitedSurgical templates
US9974551B2 (en)2007-03-232018-05-22Xiros LimitedSurgical templates
US9125675B2 (en)2007-03-232015-09-08Xiros LimitedSurgical templates
US9907659B2 (en)2007-04-172018-03-06Biomet Manufacturing, LlcMethod and apparatus for manufacturing an implant
US11554019B2 (en)2007-04-172023-01-17Biomet Manufacturing, LlcMethod and apparatus for manufacturing an implant
US9351744B2 (en)2007-05-142016-05-31Queen's University At KingstonPatient-specific surgical guidance tool and method of use
US8444651B2 (en)2007-05-142013-05-21Queen's University At KingstonPatient-specific surgical guidance tool and method of use
US8882780B2 (en)2007-07-112014-11-11Smith & Nephew, Inc.Methods and apparatus for determining pin placement during hip surgery
US9439657B2 (en)2007-07-112016-09-13Smith & Nephew, Inc.Methods and apparatus for determining pin placement during hip surgery
US8998916B2 (en)2007-07-112015-04-07Smith & Nephew, Inc.Methods for determining pin placement during hip surgery
US12070231B2 (en)2007-09-272024-08-27DePuy Synthes Products, Inc.Customized patient surgical plan
US8265949B2 (en)2007-09-272012-09-11Depuy Products, Inc.Customized patient surgical plan
US8594395B2 (en)2007-09-302013-11-26DePuy Synthes Products, LLCSystem and method for fabricating a customized patient-specific surgical instrument
US10028750B2 (en)2007-09-302018-07-24DePuy Synthes Products, Inc.Apparatus and method for fabricating a customized patient-specific orthopaedic instrument
US9138239B2 (en)2007-09-302015-09-22DePuy Synthes Products, Inc.Customized patient-specific tibial cutting blocks
US8357166B2 (en)2007-09-302013-01-22Depuy Products, Inc.Customized patient-specific instrumentation and method for performing a bone re-cut
US8361076B2 (en)2007-09-302013-01-29Depuy Products, Inc.Patient-customizable device and system for performing an orthopaedic surgical procedure
US8323288B2 (en)2007-09-302012-12-04Depuy Products, Inc.Customized patient-specific bone cutting blocks
US10828046B2 (en)2007-09-302020-11-10DePuy Synthes Products, Inc.Apparatus and method for fabricating a customized patient-specific orthopaedic instrument
US11931049B2 (en)2007-09-302024-03-19DePuy Synthes Products, Inc.Apparatus and method for fabricating a customized patient-specific orthopaedic instrument
US8377068B2 (en)2007-09-302013-02-19DePuy Synthes Products, LLC.Customized patient-specific instrumentation for use in orthopaedic surgical procedures
US11696768B2 (en)2007-09-302023-07-11DePuy Synthes Products, Inc.Apparatus and method for fabricating a customized patient-specific orthopaedic instrument
US9314251B2 (en)2007-09-302016-04-19DePuy Synthes Products, Inc.Customized patient-specific bone cutting blocks
US9173662B2 (en)2007-09-302015-11-03DePuy Synthes Products, Inc.Customized patient-specific tibial cutting blocks
US8419740B2 (en)2007-09-302013-04-16DePuy Synthes Products, LLC.Customized patient-specific bone cutting instrumentation
US8979855B2 (en)2007-09-302015-03-17DePuy Synthes Products, Inc.Customized patient-specific bone cutting blocks
US8357111B2 (en)2007-09-302013-01-22Depuy Products, Inc.Method and system for designing patient-specific orthopaedic surgical instruments
US8425523B2 (en)2007-09-302013-04-23DePuy Synthes Products, LLCCustomized patient-specific instrumentation for use in orthopaedic surgical procedures
US9786022B2 (en)2007-09-302017-10-10DePuy Synthes Products, Inc.Customized patient-specific bone cutting blocks
US8398645B2 (en)2007-09-302013-03-19DePuy Synthes Products, LLCFemoral tibial customized patient-specific orthopaedic surgical instrumentation
US8343159B2 (en)2007-09-302013-01-01Depuy Products, Inc.Orthopaedic bone saw and method of use thereof
US8425524B2 (en)2007-09-302013-04-23DePuy Synthes Products, LLCCustomized patient-specific multi-cutting blocks
USD691719S1 (en)2007-10-252013-10-15Otismed CorporationArthroplasty jig blank
US10582934B2 (en)2007-11-272020-03-10Howmedica Osteonics CorporationGenerating MRI images usable for the creation of 3D bone models employed to make customized arthroplasty jigs
US9532788B2 (en)2007-12-062017-01-03Smith & Nephew, Inc.Systems and methods for determining the mechanical axis of a femur
US8617171B2 (en)2007-12-182013-12-31Otismed CorporationPreoperatively planning an arthroplasty procedure and generating a corresponding patient specific arthroplasty resection guide
US8968320B2 (en)2007-12-182015-03-03Otismed CorporationSystem and method for manufacturing arthroplasty jigs
US8545509B2 (en)2007-12-182013-10-01Otismed CorporationArthroplasty system and related methods
US8737700B2 (en)2007-12-182014-05-27Otismed CorporationPreoperatively planning an arthroplasty procedure and generating a corresponding patient specific arthroplasty resection guide
US9649170B2 (en)2007-12-182017-05-16Howmedica Osteonics CorporationArthroplasty system and related methods
US8715291B2 (en)2007-12-182014-05-06Otismed CorporationArthroplasty system and related methods
US9408618B2 (en)2008-02-292016-08-09Howmedica Osteonics CorporationTotal hip replacement surgical guide tool
US8734455B2 (en)2008-02-292014-05-27Otismed CorporationHip resurfacing surgical guide tool
EP2265199A4 (en)*2008-03-052012-03-07Conformis IncPatient selectable joint arthroplasty devices and surgical tools
US9180015B2 (en)2008-03-052015-11-10Conformis, Inc.Implants for altering wear patterns of articular surfaces
US9700420B2 (en)2008-03-052017-07-11Conformis, Inc.Implants for altering wear patterns of articular surfaces
US10159498B2 (en)2008-04-162018-12-25Biomet Manufacturing, LlcMethod and apparatus for manufacturing an implant
US9646113B2 (en)2008-04-292017-05-09Howmedica Osteonics CorporationGeneration of a computerized bone model representative of a pre-degenerated state and useable in the design and manufacture of arthroplasty devices
US9208263B2 (en)2008-04-302015-12-08Howmedica Osteonics CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US8160345B2 (en)2008-04-302012-04-17Otismed CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US8532361B2 (en)2008-04-302013-09-10Otismed CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US8483469B2 (en)2008-04-302013-07-09Otismed CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US8311306B2 (en)2008-04-302012-11-13Otismed CorporationSystem and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US11432930B2 (en)2008-06-202022-09-06Tornier SasMethod for modeling a glenoid surface of a scapula, apparatus for implanting a glenoid component of a shoulder prosthesis, and method for producing such a component
US10716676B2 (en)2008-06-202020-07-21Tornier SasMethod for modeling a glenoid surface of a scapula, apparatus for implanting a glenoid component of a shoulder prosthesis, and method for producing such a component
US12268608B2 (en)2008-06-202025-04-08Tornier SasMethod for modeling a glenoid surface of a scapula, apparatus for implanting a glenoid component of a shoulder prosthesis, and method for producing such a component
US12156815B2 (en)2008-06-202024-12-03Tornier SasMethod for modeling a glenoid surface of a scapula, apparatus for implanting a glenoid component of a shoulder prosthesis, and method for producing such a component
US8777875B2 (en)2008-07-232014-07-15Otismed CorporationSystem and method for manufacturing arthroplasty jigs having improved mating accuracy
US10600515B2 (en)2008-09-192020-03-24Smith & Nephew, Inc.Operatively tuning implants for increased performance
US12205726B2 (en)2008-09-192025-01-21Smith & Nephew, Inc.Operatively tuning implants for increased performance
US11488721B2 (en)2008-09-192022-11-01Smith & Nephew, Inc.Operatively tuning implants for increased performance
AU2009222469B2 (en)*2008-09-302015-02-26Depuy Products, Inc.Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US8992538B2 (en)2008-09-302015-03-31DePuy Synthes Products, Inc.Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US9492182B2 (en)2008-09-302016-11-15DePuy Synthes Products, Inc.Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US9445903B2 (en)2008-11-242016-09-20Biomet Manufacturing, LlcMulti-bearing acetabular prosthesis
US8617175B2 (en)2008-12-162013-12-31Otismed CorporationUnicompartmental customized arthroplasty cutting jigs and methods of making the same
US9949747B2 (en)2009-02-242018-04-24Microport Orthopedics Holdings, Inc.Systems and methods for installing an orthopedic implant
US11779356B2 (en)2009-02-242023-10-10Microport Orthopedics Holdings, Inc.Orthopedic surgical guide
US9017334B2 (en)2009-02-242015-04-28Microport Orthopedics Holdings Inc.Patient specific surgical guide locator and mount
US9642632B2 (en)2009-02-242017-05-09Microport Orthopedics Holdings Inc.Orthopedic surgical guide
US9320620B2 (en)2009-02-242016-04-26Conformis, Inc.Patient-adapted and improved articular implants, designs and related guide tools
US11154305B2 (en)2009-02-242021-10-26Microport Orthopedics Holdings Inc.Patient specific surgical guide locator and mount
US10512476B2 (en)2009-02-242019-12-24Microport Orthopedics Holdings, Inc.Orthopedic surgical guide
US9649117B2 (en)2009-02-242017-05-16Microport Orthopedics Holdings, Inc.Orthopedic surgical guide
US10973536B2 (en)2009-02-242021-04-13Microport Orthopedics Holdings, Inc.Orthopedic surgical guide
US11779347B2 (en)2009-02-242023-10-10Microport Orthopedics Holdings Inc.System for forming a patient specific surgical guide mount
US9566075B2 (en)2009-02-242017-02-14Microport Orthopedics Holdings Inc.Patient specific surgical guide locator and mount
US11911046B2 (en)2009-02-242024-02-27Microport Orthopedics Holdings, Inc.Patient specific surgical guide locator and mount
US10039557B2 (en)2009-02-242018-08-07Micorport Orthopedics Holdings, Inc.Orthopedic surgical guide
US9113914B2 (en)2009-02-242015-08-25Microport Orthopedics Holdings Inc.Method for forming a patient specific surgical guide mount
US9675365B2 (en)2009-02-242017-06-13Microport Orthopedics Holdings Inc.System and method for anterior approach for installing tibial stem
US9901353B2 (en)2009-02-242018-02-27Microport Holdings Inc.Patient specific surgical guide locator and mount
US9883870B2 (en)2009-02-242018-02-06Microport Orthopedics Holdings Inc.Method for forming a patient specific surgical guide mount
US9089342B2 (en)2009-02-242015-07-28Microport Orthopedics Holdings Inc.Patient specific surgical guide locator and mount
US11534186B2 (en)2009-02-242022-12-27Microport Orthopedics Holdings Inc.Orthopedic surgical guide
US10646238B2 (en)2009-02-242020-05-12Microport Orthopedics Holdings, Inc.Systems and methods for installing an orthopedic implant
US10660654B2 (en)2009-02-242020-05-26Microport Orthopedics Holdings Inc.Method for forming a patient specific surgical guide mount
US12383287B2 (en)2009-02-242025-08-12Microport Orthopedics Holdings, Inc.Systems and methods for installing an orthopedic implant
US12220134B2 (en)2009-02-242025-02-11Microport Orthopedics Holdings Inc.System for forming a patient specific surgical guide mount
US11464527B2 (en)2009-02-242022-10-11Microport Orthopedics Holdings Inc.Systems and methods for installing an orthopedic implant
US11389177B2 (en)2009-02-242022-07-19Microport Orthopedics Holdings Inc.Method for forming a patient specific surgical guide mount
US12256944B2 (en)2009-02-242025-03-25MicroPort Orthopedic Holdings, Inc.Patient specific surgical guide locator and mount
US9538953B2 (en)2009-03-312017-01-10Depuy Ireland Unlimited CompanyDevice and method for determining force of a knee joint
US9649119B2 (en)2009-03-312017-05-16Depuy Ireland Unlimited CompanyMethod for performing an orthopaedic surgical procedure
US9561041B2 (en)2009-05-072017-02-07Smith & Nephew, Inc.Patient specific alignment guide for a proximal femur
US9445904B2 (en)2009-07-142016-09-20Biomet Manufacturing, LlcMultiple bearing acetabular prosthesis
US9839433B2 (en)2009-08-132017-12-12Biomet Manufacturing, LlcDevice for the resection of bones, method for producing such a device, endoprosthesis suited for this purpose and method for producing such an endoprosthesis
US10052110B2 (en)2009-08-132018-08-21Biomet Manufacturing, LlcDevice for the resection of bones, method for producing such a device, endoprosthesis suited for this purpose and method for producing such an endoprosthesis
US9393028B2 (en)2009-08-132016-07-19Biomet Manufacturing, LlcDevice for the resection of bones, method for producing such a device, endoprosthesis suited for this purpose and method for producing such an endoprosthesis
US11324522B2 (en)2009-10-012022-05-10Biomet Manufacturing, LlcPatient specific alignment guide with cutting surface and laser indicator
US9839434B2 (en)2009-10-292017-12-12Zimmer, Inc.Patient-specific mill guide
US9693878B2 (en)2009-11-172017-07-04Queen's University At KingstonPatient-specific guide for acetabular cup placement
US10149722B2 (en)2010-02-252018-12-11DePuy Synthes Products, Inc.Method of fabricating customized patient-specific bone cutting blocks
US9456833B2 (en)2010-02-262016-10-04Biomet Sports Medicine, LlcPatient-specific osteotomy devices and methods
US9579112B2 (en)2010-03-042017-02-28Materialise N.V.Patient-specific computed tomography guides
US9066727B2 (en)2010-03-042015-06-30Materialise NvPatient-specific computed tomography guides
US10893876B2 (en)2010-03-052021-01-19Biomet Manufacturing, LlcMethod and apparatus for manufacturing an implant
US9386994B2 (en)2010-06-112016-07-12Smith & Nephew, Inc.Patient-matched instruments
US8926709B2 (en)2010-08-122015-01-06Smith & Nephew, Inc.Structures for use in orthopaedic implant fixation and methods of installation onto a bone
US9168048B2 (en)2010-08-122015-10-27DePuy Synthes Products, Inc.Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US8808302B2 (en)2010-08-122014-08-19DePuy Synthes Products, LLCCustomized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
US9271744B2 (en)2010-09-292016-03-01Biomet Manufacturing, LlcPatient-specific guide for partial acetabular socket replacement
US10098648B2 (en)2010-09-292018-10-16Biomet Manufacturing, LlcPatient-specific guide for partial acetabular socket replacement
US10973535B2 (en)2010-10-292021-04-13The Cleveland Clinic FoundationSystem of preoperative planning and provision of patient-specific surgical aids
EP2632350A1 (en)*2010-10-292013-09-04The Cleveland Clinic FoundationSystem of preoperative planning and provision of patient-specific surgical aids
US11766268B2 (en)2010-10-292023-09-26The Cleveland Clinic FoundationSystem of preoperative planning and provision of patient-specific surgical aids
US11234719B2 (en)2010-11-032022-02-01Biomet Manufacturing, LlcPatient-specific shoulder guide
US9968376B2 (en)2010-11-292018-05-15Biomet Manufacturing, LlcPatient-specific orthopedic instruments
JP2012125274A (en)*2010-12-132012-07-05Sagawa Insatsu KkGuide for supporting insertion of pedicle probe
US9445907B2 (en)2011-03-072016-09-20Biomet Manufacturing, LlcPatient-specific tools and implants
US9241745B2 (en)2011-03-072016-01-26Biomet Manufacturing, LlcPatient-specific femoral version guide
US9743935B2 (en)2011-03-072017-08-29Biomet Manufacturing, LlcPatient-specific femoral version guide
US20140358152A1 (en)*2011-04-082014-12-04Sara CondinoDrilling mask for implanting a transpedicular screw
US9717510B2 (en)2011-04-152017-08-01Biomet Manufacturing, LlcPatient-specific numerically controlled instrument
US10251690B2 (en)2011-04-192019-04-09Biomet Manufacturing, LlcPatient-specific fracture fixation instrumentation and method
US9675400B2 (en)2011-04-192017-06-13Biomet Manufacturing, LlcPatient-specific fracture fixation instrumentation and method
US8956364B2 (en)2011-04-292015-02-17Biomet Manufacturing, LlcPatient-specific partial knee guides and other instruments
US9474539B2 (en)2011-04-292016-10-25Biomet Manufacturing, LlcPatient-specific convertible guides
US9743940B2 (en)2011-04-292017-08-29Biomet Manufacturing, LlcPatient-specific partial knee guides and other instruments
US9757238B2 (en)2011-06-062017-09-12Biomet Manufacturing, LlcPre-operative planning and manufacturing method for orthopedic procedure
US8903530B2 (en)2011-06-062014-12-02Biomet Manufacturing, LlcPre-operative planning and manufacturing method for orthopedic procedure
US9084618B2 (en)2011-06-132015-07-21Biomet Manufacturing, LlcDrill guides for confirming alignment of patient-specific alignment guides
US9687261B2 (en)2011-06-132017-06-27Biomet Manufacturing, LlcDrill guides for confirming alignment of patient-specific alignment guides
US9168153B2 (en)2011-06-162015-10-27Smith & Nephew, Inc.Surgical alignment using references
US9827112B2 (en)2011-06-162017-11-28Smith & Nephew, Inc.Surgical alignment using references
US11103363B2 (en)2011-06-162021-08-31Smith & Nephew, Inc.Surgical alignment using references
US9561039B2 (en)2011-06-302017-02-07DePuy Synthes Products, Inc.Customized patient-specific orthopaedic pin guides
US9095355B2 (en)2011-06-302015-08-04DePuy Synthes Products, Inc.Customized patient-specific orthopaedic pin guides
US8641721B2 (en)2011-06-302014-02-04DePuy Synthes Products, LLCCustomized patient-specific orthopaedic pin guides
US9173666B2 (en)2011-07-012015-11-03Biomet Manufacturing, LlcPatient-specific-bone-cutting guidance instruments and methods
US11253269B2 (en)2011-07-012022-02-22Biomet Manufacturing, LlcBackup kit for a patient-specific arthroplasty kit assembly
US9668747B2 (en)2011-07-012017-06-06Biomet Manufacturing, LlcPatient-specific-bone-cutting guidance instruments and methods
US10492798B2 (en)2011-07-012019-12-03Biomet Manufacturing, LlcBackup kit for a patient-specific arthroplasty kit assembly
US9427320B2 (en)2011-08-042016-08-30Biomet Manufacturing, LlcPatient-specific pelvic implants for acetabular reconstruction
US9603613B2 (en)2011-08-312017-03-28Biomet Manufacturing, LlcPatient-specific sacroiliac guides and associated methods
US9439659B2 (en)2011-08-312016-09-13Biomet Manufacturing, LlcPatient-specific sacroiliac guides and associated methods
US9066734B2 (en)2011-08-312015-06-30Biomet Manufacturing, LlcPatient-specific sacroiliac guides and associated methods
US9295497B2 (en)2011-08-312016-03-29Biomet Manufacturing, LlcPatient-specific sacroiliac and pedicle guides
US9386993B2 (en)2011-09-292016-07-12Biomet Manufacturing, LlcPatient-specific femoroacetabular impingement instruments and methods
US11406398B2 (en)2011-09-292022-08-09Biomet Manufacturing, LlcPatient-specific femoroacetabular impingement instruments and methods
US10456205B2 (en)2011-09-292019-10-29Biomet Manufacturing, LlcPatient-specific femoroacetabular impingement instruments and methods
US9554910B2 (en)2011-10-272017-01-31Biomet Manufacturing, LlcPatient-specific glenoid guide and implants
US10842510B2 (en)2011-10-272020-11-24Biomet Manufacturing, LlcPatient specific glenoid guide
US11419618B2 (en)2011-10-272022-08-23Biomet Manufacturing, LlcPatient-specific glenoid guides
US11602360B2 (en)2011-10-272023-03-14Biomet Manufacturing, LlcPatient specific glenoid guide
US11298188B2 (en)2011-10-272022-04-12Biomet Manufacturing, LlcMethods for patient-specific shoulder arthroplasty
US9351743B2 (en)2011-10-272016-05-31Biomet Manufacturing, LlcPatient-specific glenoid guides
US12089898B2 (en)2011-10-272024-09-17Biomet Manufacturing, LlcMethods for patient-specific shoulder arthroplasty
US10426549B2 (en)2011-10-272019-10-01Biomet Manufacturing, LlcMethods for patient-specific shoulder arthroplasty
US10426493B2 (en)2011-10-272019-10-01Biomet Manufacturing, LlcPatient-specific glenoid guides
US9936962B2 (en)2011-10-272018-04-10Biomet Manufacturing, LlcPatient specific glenoid guide
US9301812B2 (en)2011-10-272016-04-05Biomet Manufacturing, LlcMethods for patient-specific shoulder arthroplasty
US9451973B2 (en)2011-10-272016-09-27Biomet Manufacturing, LlcPatient specific glenoid guide
US10456261B2 (en)2012-01-202019-10-29Conformis, Inc.Devices, systems and methods for manufacturing orthopedic implants
US9408686B1 (en)2012-01-202016-08-09Conformis, Inc.Devices, systems and methods for manufacturing orthopedic implants
US11419726B2 (en)2012-01-202022-08-23Conformis, Inc.Systems and methods for manufacturing, preparation and use of blanks in orthopedic implants
US9237950B2 (en)2012-02-022016-01-19Biomet Manufacturing, LlcImplant with patient-specific porous structure
US9827106B2 (en)2012-02-022017-11-28Biomet Manufacturing, LlcImplant with patient-specific porous structure
US12161314B2 (en)2012-03-292024-12-10Depuy Ireland Unlimited CompanyOrthopedic surgical instrument for knee surgery
US10485530B2 (en)2012-03-292019-11-26Depuy Ireland Unlimited CompanyOrthopedic surgical instrument for knee surgery
US11589857B2 (en)2012-03-292023-02-28Depuy Ireland Unlimited CompanyOrthopedic surgical instrument for knee surgery
US9381011B2 (en)2012-03-292016-07-05Depuy (Ireland)Orthopedic surgical instrument for knee surgery
US9545459B2 (en)2012-03-312017-01-17Depuy Ireland Unlimited CompanyContainer for surgical instruments and system including same
US10070973B2 (en)2012-03-312018-09-11Depuy Ireland Unlimited CompanyOrthopaedic sensor module and system for determining joint forces of a patient's knee joint
US11096801B2 (en)2012-03-312021-08-24Depuy Ireland Unlimited CompanyOrthopaedic surgical system for determining joint forces of a patient's knee joint
US11051955B2 (en)2012-03-312021-07-06DePuy Synthes Products, Inc.System and method for validating an orthopaedic surgical plan
US12324752B2 (en)2012-03-312025-06-10Depuy Ireland Unlimited CompanyOrthopaedic surgical system for determining joint forces of a patient's knee joint
US10206792B2 (en)2012-03-312019-02-19Depuy Ireland Unlimited CompanyOrthopaedic surgical system for determining joint forces of a patients knee joint
US10098761B2 (en)2012-03-312018-10-16DePuy Synthes Products, Inc.System and method for validating an orthopaedic surgical plan
US10966732B2 (en)2012-04-182021-04-06Conformis, Inc.Tibial guides, tools and techniques for resecting the tibial plateau
US9486226B2 (en)2012-04-182016-11-08Conformis, Inc.Tibial guides, tools, and techniques for resecting the tibial plateau
US12274452B2 (en)2012-04-182025-04-15Conformis, Inc.Surgical kit for tibial resection and replacement
US9351738B2 (en)2012-05-042016-05-31DePuy Synthes Products, Inc.Customized patient-specific orthopaedic pin guides
US9138247B2 (en)2012-05-042015-09-22DePuy Synthes Products, Inc.Customized patient-specific orthopaedic pin guides
US9675471B2 (en)2012-06-112017-06-13Conformis, Inc.Devices, techniques and methods for assessing joint spacing, balancing soft tissues and obtaining desired kinematics for joint implant components
US9636229B2 (en)2012-09-202017-05-02Conformis, Inc.Solid freeform fabrication of implant components
US10485676B2 (en)2012-09-202019-11-26Conformis, Inc.Solid freeform fabrication of implant components
US9849019B2 (en)2012-09-212017-12-26Conformis, Inc.Methods and systems for optimizing design and manufacture of implant components using solid freeform fabrication
US9402637B2 (en)2012-10-112016-08-02Howmedica Osteonics CorporationCustomized arthroplasty cutting guides and surgical methods using the same
US9204977B2 (en)2012-12-112015-12-08Biomet Manufacturing, LlcPatient-specific acetabular guide for anterior approach
US9597201B2 (en)2012-12-112017-03-21Biomet Manufacturing, LlcPatient-specific acetabular guide for anterior approach
US9060788B2 (en)2012-12-112015-06-23Biomet Manufacturing, LlcPatient-specific acetabular guide for anterior approach
US9839438B2 (en)2013-03-112017-12-12Biomet Manufacturing, LlcPatient-specific glenoid guide with a reusable guide holder
US9398919B2 (en)2013-03-112016-07-26DePuy Synthes Products, Inc.Customized patient-specific revision surgical instruments and method
US9820821B2 (en)2013-03-112017-11-21DePuy Synthes Products, Inc.Customized patient-specific revision surgical instruments and method
US9131945B2 (en)2013-03-112015-09-15DePuy Synthes Products, Inc.Customized patient-specific revision surgical instruments and method
US10201357B2 (en)2013-03-112019-02-12DePuy Synthes Products, Inc.Customized patient-specific revision surgical instruments and method
US10441298B2 (en)2013-03-112019-10-15Biomet Manufacturing, LlcPatient-specific glenoid guide with a reusable guide holder
US11617591B2 (en)2013-03-112023-04-04Biomet Manufacturing, LlcPatient-specific glenoid guide with a reusable guide holder
US9700325B2 (en)2013-03-122017-07-11Biomet Manufacturing, LlcMulti-point fit for patient specific guide
US9579107B2 (en)2013-03-122017-02-28Biomet Manufacturing, LlcMulti-point fit for patient specific guide
US10426491B2 (en)2013-03-132019-10-01Biomet Manufacturing, LlcTangential fit of patient-specific guides
US11191549B2 (en)2013-03-132021-12-07Biomet Manufacturing, LlcTangential fit of patient-specific guides
US9826981B2 (en)2013-03-132017-11-28Biomet Manufacturing, LlcTangential fit of patient-specific guides
US10376270B2 (en)2013-03-132019-08-13Biomet Manufacturing, LlcUniversal acetabular guide and associated hardware
US9498233B2 (en)2013-03-132016-11-22Biomet Manufacturing, Llc.Universal acetabular guide and associated hardware
US9517145B2 (en)2013-03-152016-12-13Biomet Manufacturing, LlcGuide alignment system and method
US11179165B2 (en)2013-10-212021-11-23Biomet Manufacturing, LlcLigament guide registration
WO2015067752A1 (en)2013-11-082015-05-14OrthotaxyMethod for constructing a patient-specific surgical guide
EP2870934A1 (en)2013-11-082015-05-13OrthotaxyMethod for constructing a patient-specific surgical guide
US10262084B2 (en)2013-11-082019-04-16MinmaxmedicalMethod for constructing a patient-specific surgical guide
US10405993B2 (en)2013-11-132019-09-10Tornier SasShoulder patient specific instrument
US11179249B2 (en)2013-11-132021-11-23Tornier SasShoulder patient specific instrument
US12097129B2 (en)2013-11-132024-09-24Tornier SasShoulder patient specific instrument
US10282488B2 (en)2014-04-252019-05-07Biomet Manufacturing, LlcHTO guide with optional guided ACL/PCL tunnels
US9408616B2 (en)2014-05-122016-08-09Biomet Manufacturing, LlcHumeral cut guide
US10675096B2 (en)2014-05-272020-06-09Aesculap AgMedical system
US9561040B2 (en)2014-06-032017-02-07Biomet Manufacturing, LlcPatient-specific glenoid depth control
US9839436B2 (en)2014-06-032017-12-12Biomet Manufacturing, LlcPatient-specific glenoid depth control
EP2984997A1 (en)*2014-08-112016-02-17DePuy (Ireland)Surgical instrument and system of surgical instruments
US11026699B2 (en)2014-09-292021-06-08Biomet Manufacturing, LlcTibial tubercule osteotomy
US9826994B2 (en)2014-09-292017-11-28Biomet Manufacturing, LlcAdjustable glenoid pin insertion guide
US9833245B2 (en)2014-09-292017-12-05Biomet Sports Medicine, LlcTibial tubercule osteotomy
US10335162B2 (en)2014-09-292019-07-02Biomet Sports Medicine, LlcTibial tubercle osteotomy
US10326975B2 (en)2014-12-302019-06-18Onpoint Medical, Inc.Augmented reality guidance for spinal surgery and spinal procedures
US12010285B2 (en)2014-12-302024-06-11Onpoint Medical, Inc.Augmented reality guidance for spinal surgery with stereoscopic displays
US11153549B2 (en)2014-12-302021-10-19Onpoint Medical, Inc.Augmented reality guidance for spinal surgery
US10602114B2 (en)2014-12-302020-03-24Onpoint Medical, Inc.Augmented reality guidance for spinal surgery and spinal procedures using stereoscopic optical see-through head mounted displays and inertial measurement units
US10841556B2 (en)2014-12-302020-11-17Onpoint Medical, Inc.Augmented reality guidance for spinal procedures using stereoscopic optical see-through head mounted displays with display of virtual surgical guides
US10594998B1 (en)2014-12-302020-03-17Onpoint Medical, Inc.Augmented reality guidance for spinal procedures using stereoscopic optical see-through head mounted displays and surface representations
US10742949B2 (en)2014-12-302020-08-11Onpoint Medical, Inc.Augmented reality guidance for spinal procedures using stereoscopic optical see-through head mounted displays and tracking of instruments and devices
US11750788B1 (en)2014-12-302023-09-05Onpoint Medical, Inc.Augmented reality guidance for spinal surgery with stereoscopic display of images and tracked instruments
US11050990B2 (en)2014-12-302021-06-29Onpoint Medical, Inc.Augmented reality guidance for spinal procedures using stereoscopic optical see-through head mounted displays with cameras and 3D scanners
US10511822B2 (en)2014-12-302019-12-17Onpoint Medical, Inc.Augmented reality visualization and guidance for spinal procedures
US11483532B2 (en)2014-12-302022-10-25Onpoint Medical, Inc.Augmented reality guidance system for spinal surgery using inertial measurement units
US11652971B2 (en)2014-12-302023-05-16Onpoint Medical, Inc.Image-guided surgery with surface reconstruction and augmented reality visualization
US11350072B1 (en)2014-12-302022-05-31Onpoint Medical, Inc.Augmented reality guidance for bone removal and osteotomies in spinal surgery including deformity correction
US11272151B2 (en)2014-12-302022-03-08Onpoint Medical, Inc.Augmented reality guidance for spinal surgery with display of structures at risk for lesion or damage by penetrating instruments or devices
US10951872B2 (en)2014-12-302021-03-16Onpoint Medical, Inc.Augmented reality guidance for spinal procedures using stereoscopic optical see-through head mounted displays with real time visualization of tracked instruments
US12063338B2 (en)2014-12-302024-08-13Onpoint Medical, Inc.Augmented reality guidance for spinal surgery with stereoscopic displays and magnified views
US10194131B2 (en)2014-12-302019-01-29Onpoint Medical, Inc.Augmented reality guidance for spinal surgery and spinal procedures
US10105145B2 (en)2015-03-242018-10-23OrthotaxyMethod for constructing a patient-specific surgical guide
US9820868B2 (en)2015-03-302017-11-21Biomet Manufacturing, LlcMethod and apparatus for a pin apparatus
CN104688323A (en)*2015-03-312015-06-10首都医科大学附属北京友谊医院3D-printing cervical vertebra side block screw guide embedded plate and manufacturing method thereof
CN104739501B (en)*2015-03-312017-02-01首都医科大学附属北京友谊医院 3D printed cervical pedicle screw-guided implant plate and its preparation method
CN104739501A (en)*2015-03-312015-07-01首都医科大学附属北京友谊医院3D-printed cervical vertebra pedicle screw guide and implantation plate and preparation method thereof
US10973529B2 (en)2015-04-162021-04-13MinmaxmedicalPatient-specific surgical guide
WO2016166372A1 (en)*2015-04-162016-10-20OrthotaxyPatient-specific surgical guide
US10226262B2 (en)2015-06-252019-03-12Biomet Manufacturing, LlcPatient-specific humeral guide designs
US11801064B2 (en)2015-06-252023-10-31Biomet Manufacturing, LlcPatient-specific humeral guide designs
US10925622B2 (en)2015-06-252021-02-23Biomet Manufacturing, LlcPatient-specific humeral guide designs
US10568647B2 (en)2015-06-252020-02-25Biomet Manufacturing, LlcPatient-specific humeral guide designs
US10182829B2 (en)2015-09-042019-01-22Depuy Ireland Unlimited CompanySurgical instrument and system of surgical instruments
US10034753B2 (en)2015-10-222018-07-31DePuy Synthes Products, Inc.Customized patient-specific orthopaedic instruments for component placement in a total hip arthroplasty
US11701180B2 (en)2015-11-022023-07-18Medivation AgSurgical instrument system
EP3162316A1 (en)2015-11-022017-05-03Medivation AGA surgical instrument system
US11980377B2 (en)2015-12-162024-05-14Howmedica Osteonics Corp.Patient specific instruments and methods for joint prosthesis
US11065016B2 (en)2015-12-162021-07-20Howmedica Osteonics Corp.Patient specific instruments and methods for joint prosthesis
US10743939B1 (en)2016-03-122020-08-18Philipp K. LangSystems for augmented reality visualization for bone cuts and bone resections including robotics
US11452568B2 (en)2016-03-122022-09-27Philipp K. LangAugmented reality display for fitting, sizing, trialing and balancing of virtual implants on the physical joint of a patient for manual and robot assisted joint replacement
US10603113B2 (en)2016-03-122020-03-31Philipp K. LangAugmented reality display systems for fitting, sizing, trialing and balancing of virtual implant components on the physical joint of the patient
US11311341B2 (en)2016-03-122022-04-26Philipp K. LangAugmented reality guided fitting, sizing, trialing and balancing of virtual implants on the physical joint of a patient for manual and robot assisted joint replacement
US9980780B2 (en)2016-03-122018-05-29Philipp K. LangGuidance for surgical procedures
US11602395B2 (en)2016-03-122023-03-14Philipp K. LangAugmented reality display systems for fitting, sizing, trialing and balancing of virtual implant components on the physical joint of the patient
US10405927B1 (en)2016-03-122019-09-10Philipp K. LangAugmented reality visualization for guiding physical surgical tools and instruments including robotics
EP4327769A2 (en)2016-03-122024-02-28Philipp K. LangDevices and methods for surgery
US10368947B2 (en)2016-03-122019-08-06Philipp K. LangAugmented reality guidance systems for superimposing virtual implant components onto the physical joint of a patient
US10292768B2 (en)2016-03-122019-05-21Philipp K. LangAugmented reality guidance for articular procedures
US10278777B1 (en)2016-03-122019-05-07Philipp K. LangAugmented reality visualization for guiding bone cuts including robotics
US10159530B2 (en)2016-03-122018-12-25Philipp K. LangGuidance for surgical interventions
US11172990B2 (en)2016-03-122021-11-16Philipp K. LangSystems for augmented reality guidance for aligning physical tools and instruments for arthroplasty component placement, including robotics
WO2017160651A1 (en)2016-03-122017-09-21Lang Philipp KDevices and methods for surgery
US11013560B2 (en)2016-03-122021-05-25Philipp K. LangSystems for augmented reality guidance for pinning, drilling, reaming, milling, bone cuts or bone resections including robotics
US11957420B2 (en)2016-03-122024-04-16Philipp K. LangAugmented reality display for spinal rod placement related applications
US11850003B2 (en)2016-03-122023-12-26Philipp K LangAugmented reality system for monitoring size and laterality of physical implants during surgery and for billing and invoicing
US9861446B2 (en)2016-03-122018-01-09Philipp K. LangDevices and methods for surgery
US10799296B2 (en)2016-03-122020-10-13Philipp K. LangAugmented reality system configured for coordinate correction or re-registration responsive to spinal movement for spinal procedures, including intraoperative imaging, CT scan or robotics
US12127795B2 (en)2016-03-122024-10-29Philipp K. LangAugmented reality display for spinal rod shaping and placement
US10849693B2 (en)2016-03-122020-12-01Philipp K. LangSystems for augmented reality guidance for bone resections including robotics
WO2018013416A1 (en)*2016-07-112018-01-18Bullseye Hip Replacement, LlcMethods to assist with medical procedures by utilizing patient-specific devices
US10722309B2 (en)2016-07-112020-07-28Bullseye Hip Replacement, LlcMethods to assist with medical procedures by utilizing patient-specific devices
WO2018021500A1 (en)*2016-07-282018-02-01株式会社ニューロデザインDrill guide, screw guide system, hole drilling method, and spinal fusion method
JP2019527609A (en)*2016-08-102019-10-03オーストラリアン インスティテュート オブ ロボティック オーソピーディクス プロプライエタリー リミテッド Robot-assisted laser surgery system
EP4464264A2 (en)2017-01-162024-11-20Philipp K. LangOptical guidance for surgical, medical, and dental procedures
US11751944B2 (en)2017-01-162023-09-12Philipp K. LangOptical guidance for surgical, medical, and dental procedures
US10722310B2 (en)2017-03-132020-07-28Zimmer Biomet CMF and Thoracic, LLCVirtual surgery planning system and method
WO2018202529A1 (en)2017-05-022018-11-08Medivation AgA surgical instrument system
US11510738B2 (en)2017-05-022022-11-29Medivation AgSurgical instrument system
US12035929B2 (en)2017-07-112024-07-16Howmedica Osteonics Corp.Patient specific humeral cutting guides
US11399851B2 (en)2017-07-112022-08-02Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US11166733B2 (en)2017-07-112021-11-09Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US12324598B2 (en)2017-07-112025-06-10Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US11234721B2 (en)2017-07-112022-02-01Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US12251118B2 (en)2017-07-112025-03-18Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US10959742B2 (en)2017-07-112021-03-30Tornier, Inc.Patient specific humeral cutting guides
US11278299B2 (en)2017-07-112022-03-22Howmedica Osteonics CorpGuides and instruments for improving accuracy of glenoid implant placement
US11076873B2 (en)2017-07-112021-08-03Howmedica Osteonics Corp.Patient specific humeral cutting guides
US12178456B2 (en)2017-07-112024-12-31Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US11918239B2 (en)2017-07-112024-03-05Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US12178455B2 (en)2017-07-112024-12-31Howmedica Osteonics Corp.Guides and instruments for improving accuracy of glenoid implant placement
US12290414B2 (en)2017-09-112025-05-06Philipp K. LangAugmented reality guidance for vascular procedures
US11801114B2 (en)2017-09-112023-10-31Philipp K. LangAugmented reality display for vascular and other interventions, compensation for cardiac and respiratory motion
US12193939B2 (en)2017-12-292025-01-14Howmedica Osteonics Corp.Patient specific humeral implant components
US12086998B2 (en)2018-01-292024-09-10Philipp K. LangAugmented reality guidance for surgical procedures
US11348257B2 (en)2018-01-292022-05-31Philipp K. LangAugmented reality guidance for orthopedic and other surgical procedures
US11727581B2 (en)2018-01-292023-08-15Philipp K. LangAugmented reality guidance for dental procedures
US11051829B2 (en)2018-06-262021-07-06DePuy Synthes Products, Inc.Customized patient-specific orthopaedic surgical instrument
US11950786B2 (en)2018-06-262024-04-09DePuy Synthes Products, Inc.Customized patient-specific orthopaedic surgical instrument
US12364570B1 (en)2019-02-142025-07-22Onpoint Medical, Inc.Systems for adjusting and tracking head mounted displays during surgery including with surgical helmets
US11553969B1 (en)2019-02-142023-01-17Onpoint Medical, Inc.System for computation of object coordinates accounting for movement of a surgical site for spinal and other procedures
US12161428B1 (en)2019-02-142024-12-10Onpoint Medical, Inc.System for computation of object coordinates accounting for movement of a surgical site for spinal and other procedures including interpolation of vertebral position and orientation
US12108959B2 (en)2019-05-292024-10-08Wright Medical Technology, Inc.Preparing a tibia for receiving tibial implant component of a replacement ankle
US12211151B1 (en)2019-07-302025-01-28Onpoint Medical, Inc.Systems for optimizing augmented reality displays for surgical procedures
EP4081136A4 (en)*2019-12-272024-06-05Blue Fury Consulting, LLC ANTI-SKIVE BONE DRILL
WO2021133926A1 (en)2019-12-272021-07-01Blue Fury Consulting, LlcAnti-skive bone drill
US12213682B2 (en)2019-12-272025-02-04Integrity Implants Inc.Anti-skive bone drill
US12396739B2 (en)2020-01-172025-08-26Wright Medical Technology, Inc.Guidance tools, systems, and methods
WO2022023568A1 (en)*2020-07-312022-02-03Ganymed RoboticsRetractable cutting guide
US11819280B2 (en)2020-09-302023-11-21DePuy Synthes Products, Inc.Customized patient-specific orthopaedic surgical instrument using patient-specific contacting bodies and parametric fixed geometry
US12053247B1 (en)2020-12-042024-08-06Onpoint Medical, Inc.System for multi-directional tracking of head mounted displays for real-time augmented reality guidance of surgical procedures
US11786206B2 (en)2021-03-102023-10-17Onpoint Medical, Inc.Augmented reality guidance for imaging systems
US12419689B2 (en)2021-06-292025-09-23DePuy Synthes Products, Inc.Patient-specific registration jig and associated method for registering an orthopaedic surgical instrument to a patient
US12440227B2 (en)2022-01-052025-10-14Wright Medical Technology, Inc.Preparing a tibia for receiving tibial implant component of a replacement ankle
US12433761B1 (en)2022-01-202025-10-07Onpoint Medical, Inc.Systems and methods for determining the shape of spinal rods and spinal interbody devices for use with augmented reality displays, navigation systems and robots in minimally invasive spine procedures
WO2023148445A1 (en)*2022-02-032023-08-10AmplitudeMethod and system for bone cutting having feedback control of the cutting plane
FR3132202A1 (en)*2022-02-032023-08-04Amplitude Method and system for bone cutting comprising a control of the cutting plane

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