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US20050192617A1 - Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same - Google Patents

Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same
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Publication number
US20050192617A1
US20050192617A1US11/107,600US10760005AUS2005192617A1US 20050192617 A1US20050192617 A1US 20050192617A1US 10760005 AUS10760005 AUS 10760005AUS 2005192617 A1US2005192617 A1US 2005192617A1
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catheter
ifm
vessel
strand
outer layer
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US11/107,600
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Joseph Horton
Diana Vincent
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Abstract

An intravascular flow modifier (IFM) for use in a vessel has an outer layer formed of a strand configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of the outer layer. The outer layer is secured in the vessel by at least some of the helical loops pressing against a portion of the interior surface of the vessel. The IFM also has an inner layer formed of a strand configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of the inner layer. At least a portion of the outer layer surrounds at least a portion of the inner layer so that at least some of the loops of the outer layer overlap and contact at least some of the loops of the inner layer. An assembly and method for deploying are also disclosed.

Description

Claims (101)

1. An intravascular flow modifier (IFM) for use in a vessel, the vessel having an interior surface, the IFM comprising:
an outer layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said outer layer, said outer layer being secured in the vessel by at least some of said helical loops pressing against a portion of the interior surface of the vessel; and
an inner layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said inner layer, at least a portion of said outer layer surrounding at least a portion of said inner layer so that at least some of said loops of said outer layer overlap and contact at least some of said loops of said inner layer.
35. An intravascular flow modifier (IFM) for use in a vessel, the vessel having an interior surface, the IFM comprising:
an outer layer formed of a strand having a first end, a second end opposite said first end, and a longitudinally oriented coil of adjacent helical loops between said first and second ends, said outer layer being secured in the vessel by at least some of said helical loops pressing against a portion of the interior surface of the vessel; and
an inner layer formed of a strand having a first end, a second end opposite said first end, and a longitudinally oriented coil of adjacent loops between said first and second ends, at least a portion of said outer layer surrounding at least a portion of said inner layer so that at least some of said loops of said outer layer overlap and contact at least some of said loops of said inner layer,
said strand of said outer and inner layers being a continuous strand formed of a high shape memory alloy and having a cross-section, the cross-section being one of circular, oval, rectangle, and triangular, said helical loops of said outer and inner layers being substantially circular, said second end of said outer layer joining said first end of said inner layer, said first end of said outer layer and said second end of said inner layer being distal ends relative to an insertion point into the vessel, said second end of said outer layer and said first end of said inner layer being proximal ends relative to an insertion point into the vessel, said helical loops of said outer and inner layers wind in a predetermined direction.
36. An intracranial intravascular flow modifier (IFM) for use in a cranial vessel, the vessel having an interior surface, the IFM comprising:
an outer layer formed of a strand having a first end, a second end opposite said first end, and a longitudinally oriented coil of adjacent helical loops between said first and second ends, said outer layer being secured in the vessel by at least some of said helical loops pressing against a portion of the interior surface of the vessel; and
an inner layer formed of a strand having a first end, a second end opposite said first end, and a longitudinally oriented coil of adjacent helical loops between said first and second ends, at least a portion of said outer layer surrounding at least a portion of said inner layer so that at least some of said loops of said outer layer overlap and contact at least some of said loops of said inner layer,
said strand of said outer and inner layers being a continuous strand formed of a high shape memory alloy, said helical loops of said outer and inner layers being substantially circular, said second end of said outer layer joining said first end of said inner layer, said first end of said outer layer and second end of said inner layer being distal ends relative to an insertion point into the vessel, said second end of said outer layer and first end of said inner layer being proximal ends relative to an insertion point into the vessel, said IFM having an outside diameter of between about 1.5 and 12 mm.
40. An assembly for an intravascular repair of a defect of a body vessel, the vessel having an interior surface, the assembly comprising:
an elongated first catheter;
an IFM having a deployed configuration when in the vessel at a site of the defect and a pre-deployed configuration for movement through said first catheter;
said IFM including an outer layer formed of a strand, said adjacent helical loops extending between a first end and a second end of said outer layer, once deployed said outer layer being secured in the vessel by at least some of said loops urging against a portion of the interior surface of the vessel, and an inner layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said inner layer, once deployed in the vessel at the site of the defect at least a portion of said outer layer surrounding at least a portion of said inner layer so that at least some of said loops of said outer layer overlap and contact at least some of said loops of said inner layer; and
said first catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having a size and shape complementary to the pre-deployed configuration of said IFM such that said IFM is axially slidable therethrough.
49. An assembly for an intravascular repair of a defect of a body vessel, the vessel having an interior surface, the assembly comprising:
an IFM having a deployed configuration when in the vessel at a site of the defect and a pre-deployed configuration for movement through the vessel towards the site of the defect;
said IFM including an outer layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said outer layer, once deployed said outer layer being secured in the vessel by at least some of said loops urging against a portion of the interior surface of the vessel, and an inner layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said inner layer, once deployed in the vessel at the site of the defect at least a portion of said outer layer surrounding at least a portion of said inner layer so that at least some of said loops of said outer layer overlap and contact at least some of said loops of said inner layer; and
a means for moving and maintaining said IFM when in the pre-deployed configuration, the outer and inner layers of said IFM taking the deployed configuration when the moving and maintaining means is no longer applied thereto.
52. The IFM ofclaim 51, wherein the disposing means comprises:
an elongated first catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having a size and shape complementary to the respective size and shape of said IFM when in the pre-deployed configuration such that said IFM is axially slidable therein; and
an elongated second catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having a size and shape complementary to said first catheter such that said first catheter is axially slidable therein, and such that at least a portion of said distal end of said first catheter can be inserted into said lumen of said second catheter at said proximal end and passes through said lumen of said second catheter and exits said second catheter at said distal end.
54. The IFM ofclaim 53, wherein said selectively varying means comprises:
an elongated first catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having a size and shape complementary to the respective size and shape of said IFM when in the pre-deployed configuration such that said IFM is axially slidable therein;
an elongated second catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having a size and shape complementary to said first catheter such that said first catheter is axially slidable therein, and such that at least a portion of said distal end of said first catheter can be inserted into said lumen of said second catheter at said proximal end and passes through said lumen of said second catheter and exits said second catheter at said distal end; and
means for controlling axial movement of said IFM when in the pre-deployed configuration through said first catheter and out of said distal end of said first catheter.
56. An assembly for an intravascular repair of a defect of a cranial vessel, the vessel having an interior surface, the assembly comprising:
an elongated first catheter;
an IFM having a deployed configuration when in the vessel at a site of the defect and a pre-deployed configuration for movement through said first catheter;
said IFM including an outer layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said outer layer, once deployed said outer layer being secured in the vessel by at least some of said loops urging against a portion of said interior surface of the vessel, and an inner layer formed of a strand, said strand being configured as a longitudinally oriented coil of adjacent helical loops extending between a first end and a second end of said inner layer, once deployed in the vessel at the site of the defect at least a portion of said outer layer surrounding at least a portion of said inner layer so that at least some of said loops of said outer layer overlap and contact at least some of said loops of said inner layer, said IFM having a deployed diameter of between about 1.5 and about 12 mm;
said first catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having an inside diameter of between about 0.004 and about 0.006 inches to receive the pre-deployed configuration of said IFM such that said IFM is axially slidable therethrough; and
a second catheter having a distal end, a proximal end, and a central lumen extending axially therethrough, said lumen of said second catheter having an inside diameter of at least about 0.022 inches to receive said first catheter such that said first catheter is axially slidable therein, and such that at least a portion of said distal end of said first catheter can be inserted into said lumen of said second catheter at said proximal end and passes through said lumen of said second catheter and exits said second catheter at said distal end.
57. A method of forming an intravascular flow modifier (IFM) at a pre-selected segment of a vessel, said IFM having a first portion comprising an outer layer of strand and a second portion comprising an inner layer of strand, the vessel having an interior surface, the method comprising the steps of:
moving said IFM through a catheter up to the pre-selected segment of the vessel;
manipulating at least one of said outer layer of strand and said catheter to deploy said outer layer of strand in the pre-selected segment of vessel as a longitudinally oriented coil of adjacent helical loops; and
manipulating at least one of said inner layer of strand and said catheter to deploy said inner layer of strand in the pre-selected segment of vessel as a longitudinally oriented coil of adjacent helical loops within said first portion of said IFM.
63. The method ofclaim 59, wherein said catheter used in the step of inserting includes an elongated micro-catheter having a proximal end, a distal end, and a central lumen extending axially therethrough, said lumen having a size and shape complementary to said IFM when elongated such that said IFM is axially slidable therethrough, and the step of inserting further comprises the step of providing an elongated guide catheter having a distal end, a proximal end, and a central lumen extending axially therethrough, said guide catheter being positioned in the vessel with said distal end of said guide catheter being oriented near the pre-selected segment of the vessel, said lumen of said guide catheter having a size and shape complementary to said micro-catheter such that said micro-catheter is axially slidable therethrough.
87. A method of forming an IFM at a pre-selected segment of a vessel, the vessel having an interior surface, the method comprising the steps of:
straightening said IFM to a substantially linear configuration;
providing an angiographic catheter, a guide catheter, and a micro-catheter, each of said catheters having a distal end, a proximal end, and a central lumen extending axially therethrough;
inserting said angiographic catheter into the vessel;
inserting said micro-catheter into said guide catheter, and said guide catheter into said angiographic catheter;
inserting said IFM into said micro-catheter;
positioning said distal end of said angiographic catheter at a predetermined location in the vessel proximal to the pre-selected segment of the vessel;
advancing at least a portion of said distal end of said guide catheter through said angiographic catheter and exiting said angiographic catheter at said distal end;
positioning said guide catheter in the vessel with the distal end of said guide catheter being oriented between the pre-selected segment of the vessel and said distal end of said angiographic catheter;
advancing at least a portion of said distal end of said micro-catheter through said guide catheter and exiting said guide catheter at said distal end;
moving said IFM through said micro-catheter up to the pre-selected segment of the vessel;
manipulating at least one of said outer layer of strand and said catheter to deploy said outer layer of strand in the pre-selected segment of vessel as a longitudinally oriented coil of adjacent helical loops; and
manipulating at least one of said inner layer of strand and said catheter to deploy said inner layer of strand in the pre-selected segment of vessel as a longitudinally oriented coil of adjacent helical loops within said first portion of said IFM.
94. A method of forming an IFM at a pre-selected segment of a vessel, the vessel having an interior surface, the method comprising the steps of:
straightening said IFM to a substantially linear configuration;
providing a guide catheter and a micro-catheter, each of said catheters having a distal end, a proximal end, and a central lumen extending axially therethrough;
inserting said micro-catheter into said guide catheter;
inserting said guide catheter into the vessel;
inserting said IFM into said micro-catheter;
positioning said guide catheter in the vessel with the distal end of said guide catheter being oriented between the pre-selected segment of the vessel and an insertion point into the vessel;
advancing at least a portion of said distal end of said micro-catheter through said guide catheter and exiting said guide catheter at said distal end;
moving said IFM through said micro-catheter up to the pre-selected segment of the vessel; and
manipulating said layer of strand and said catheter to deploy said outer layer of strand in the pre-selected segment of vessel as a longitudinally oriented coil of adjacent helical loops.
US11/107,6001996-06-212005-04-15Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of sameAbandonedUS20050192617A1 (en)

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US11/107,600US20050192617A1 (en)1996-06-212005-04-15Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same

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US08/668,229US6190402B1 (en)1996-06-211996-06-21Insitu formable and self-forming intravascular flow modifier (IFM) and IFM assembly for deployment of same
US09/758,832US20020133190A1 (en)1996-06-212001-01-11Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same
US11/107,600US20050192617A1 (en)1996-06-212005-04-15Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same

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US09/758,832ContinuationUS20020133190A1 (en)1996-06-212001-01-11Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same

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US20050192617A1true US20050192617A1 (en)2005-09-01

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US08/668,229Expired - LifetimeUS6190402B1 (en)1996-06-211996-06-21Insitu formable and self-forming intravascular flow modifier (IFM) and IFM assembly for deployment of same
US09/758,832AbandonedUS20020133190A1 (en)1996-06-212001-01-11Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same
US11/107,600AbandonedUS20050192617A1 (en)1996-06-212005-04-15Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same

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US08/668,229Expired - LifetimeUS6190402B1 (en)1996-06-211996-06-21Insitu formable and self-forming intravascular flow modifier (IFM) and IFM assembly for deployment of same
US09/758,832AbandonedUS20020133190A1 (en)1996-06-212001-01-11Insitu formable and self-forming intravascular flow modifier (IFM), catheter and IFM assembly, and method for deployment of same

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US (3)US6190402B1 (en)
EP (1)EP0914071A1 (en)
AU (1)AU3408897A (en)
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WO1997048351A1 (en)1997-12-24
US6190402B1 (en)2001-02-20
AU3408897A (en)1998-01-07
US20020133190A1 (en)2002-09-19
EP0914071A1 (en)1999-05-12

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