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US20150376691A1 - Rapid aneuploidy detection - Google Patents

Rapid aneuploidy detection
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Publication number
US20150376691A1
US20150376691A1US14/792,716US201514792716AUS2015376691A1US 20150376691 A1US20150376691 A1US 20150376691A1US 201514792716 AUS201514792716 AUS 201514792716AUS 2015376691 A1US2015376691 A1US 2015376691A1
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United States
Prior art keywords
chromosome
aneuploid
expected
sample
chromosomes
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US14/792,716
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Bert Vogelstein
Kenneth W. Kinzler
Nickolas Papadopoulos
Isaac A. KINDE
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Johns Hopkins University
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Johns Hopkins University
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Assigned to INN SA LLCreassignmentINN SA LLCSECURITY INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: COMBIMATRIX CORPORATION, GOOD START GENETICS, INC., INVITAE CORPORATION
Assigned to COMBIMATRIX CORPORATION, INVITAE CORPORATION, GOOD START GENETICS, INC.reassignmentCOMBIMATRIX CORPORATIONRELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: INN SA LLC
Assigned to THE JOHNS HOPKINS UNIVERSITYreassignmentTHE JOHNS HOPKINS UNIVERSITYASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: KINDE, Isaac A., KINZLER, KENNETH W., PAPADOPOULOS, NICKOLAS, VOGELSTEIN, BERT
Assigned to PERCEPTIVE CREDIT HOLDINGS III, LPreassignmentPERCEPTIVE CREDIT HOLDINGS III, LPPATENT SECURITY AGREEMENTAssignors: GOOD START GENETICS, INC., INVITAE CORPORATION, SINGULAR BIO, INC., YOUSCRIPT, LLC
Assigned to GOOD START GENETICS, INC.reassignmentGOOD START GENETICS, INC.RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS).Assignors: PERCEPTIVE CREDIT HOLDINGS III, LP
Priority to US17/483,537prioritypatent/US12116628B2/en
Priority to US18/883,232prioritypatent/US20250002995A1/en
Abandonedlegal-statusCriticalCurrent

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Abstract

Massively parallel sequencing of cell-free, maternal plasma DNA was recently demonstrated to be a safe and effective screening method for fetal chromosomal aneuploidies. Here, we report an improved sequencing method achieving significantly increased throughput and decreased cost by replacing laborious sequencing library preparation steps with PCR employing a single primer pair. Using this approach, samples containing as little as 4% trisomy 21 DNA could be readily distinguished from euploid samples.

Description

Claims (18)

We claim:
1. A method for detecting aneuploidy, the method comprising the steps of:
exposing a sample comprising genomic nucleic acid to a plurality of identical primer pairs that anneal to a genomic region present in a chromosome that is expected to be aneuploid and in one or more chromosomes expected not to be aneuploid in the sample;
amplifying the nucleic acid using the primer pairs in order to produce a plurality of amplicons that contain a sufficient amount of unique sequence to allow a plurality of the amplicons to be distinguished from one another;
aligning the amplicons to one or more reference sequences in order to produce a distribution of the amplicons in the genome; and
identifying aneuploidy based upon an imbalance in the distribution.
2. The method ofclaim 1 wherein the chromosome that is expected to be aneuploid is selected from the group consisting of chromosome 18, chromosome 21, chromosome 13, an X chromosome, and a Y chromosome.
3. The method ofclaim 1 wherein the sufficient amount of unique sequence is from about 3 nucleotides to about 100 nucleotides.
4. The method ofclaim 1 wherein the sample is maternal plasma or serum and the chromosome that is expected to be aneuploid is a fetal chromosome.
5. The method ofclaim 1 wherein the aligning step is performed in silico using a reference set of chromosomes expected not to be aneuploid in the sample.
6. The method ofclaim 1 wherein the imbalance is a statistically significant difference between an amount of amplicon produced in the amplifying step from the genomic region present in a chromosome that is expected to be aneuploid and an amount in the reference sequences.
7. The method ofclaim 6 wherein the amounts are normalized.
8. The method ofclaim 1 wherein unique sequence tags are incorporated at a 5′ end of the primers.
9. The method ofclaim 8 further comprising counting the amplicons based upon the unique sequence tags in order to produce a quantitative measure of amplified chromosomal regions.
10. The method ofclaim 1 wherein the chromosome expected to be aneuploid is a fetal chromosome and the chromosomes expected not to be aneuploid are maternal chromosomes.
11. The method ofclaim 1 wherein the sample is derived from an embryo.
12. The method ofclaim 1 where each chromosome is treated as the expected aneuploid chromosome and the reference sequence is external to the sample.
13. The method ofclaim 1 wherein the aligning step comprises determining relative frequency at which the amplicons map to the chromosomes.
14. The method ofclaim 13 further comprising the step of identifying an imbalance in the relative frequency.
15. The method ofclaim 1 wherein the chromosomes expected to be aneuploid and the chromosomes expected not to be aneuploid are obtained from different samples.
16. The method ofclaim 1 further comprising the step of comparing the distribution to a distribution with known euploid content.
17. The method ofclaim 1 wherein the imbalance is a statistically significant difference between an amount of amplicon amplified from the genomic region present in the chromosome expected to be aneuploid and an amount of amplicon amplified from the genomic region present in the one or more chromosomes expected not to be aneuploid in the sample.
18. The method ofclaim 1 wherein the reference sequences are amplicons that align to the genomic region present in one or more chromosomes expected not to be aneuploid in said sample.
US14/792,7162012-03-262015-07-07Rapid aneuploidy detectionAbandonedUS20150376691A1 (en)

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US14/792,716US20150376691A1 (en)2012-03-262015-07-07Rapid aneuploidy detection
US17/483,537US12116628B2 (en)2012-03-262021-09-23Rapid aneuploidy detection
US18/883,232US20250002995A1 (en)2012-03-262024-09-12Rapid aneuploidy detection

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US201261615535P2012-03-262012-03-26
US201261659695P2012-06-142012-06-14
PCT/US2013/033451WO2013148496A1 (en)2012-03-262013-03-22Rapid aneuploidy detection
US201414388314A2014-09-262014-09-26
US14/792,716US20150376691A1 (en)2012-03-262015-07-07Rapid aneuploidy detection

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PCT/US2013/033451ContinuationWO2013148496A1 (en)2012-03-262013-03-22Rapid aneuploidy detection
US14/388,314ContinuationUS10053729B2 (en)2012-03-262013-03-22Rapid aneuploidy detection

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US17/483,537ContinuationUS12116628B2 (en)2012-03-262021-09-23Rapid aneuploidy detection

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US20150376691A1true US20150376691A1 (en)2015-12-31

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US14/388,314Active2034-07-27US10053729B2 (en)2012-03-262013-03-22Rapid aneuploidy detection
US14/792,716AbandonedUS20150376691A1 (en)2012-03-262015-07-07Rapid aneuploidy detection
US17/483,537Active2033-04-03US12116628B2 (en)2012-03-262021-09-23Rapid aneuploidy detection
US18/883,232PendingUS20250002995A1 (en)2012-03-262024-09-12Rapid aneuploidy detection

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US17/483,537Active2033-04-03US12116628B2 (en)2012-03-262021-09-23Rapid aneuploidy detection
US18/883,232PendingUS20250002995A1 (en)2012-03-262024-09-12Rapid aneuploidy detection

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EP (2)EP4239081A3 (en)
CN (2)CN111073962A (en)
AU (1)AU2013240088B2 (en)
CA (1)CA2868836C (en)
ES (1)ES2945311T3 (en)
FI (1)FI2831279T3 (en)
HK (1)HK1205204A1 (en)
IL (1)IL234850B (en)
PL (1)PL2831279T3 (en)
WO (1)WO2013148496A1 (en)

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EP2831279A1 (en)2015-02-04
US20250002995A1 (en)2025-01-02
US12116628B2 (en)2024-10-15
HK1205204A1 (en)2015-12-11
EP4239081A2 (en)2023-09-06
AU2013240088B2 (en)2017-02-02
EP2831279A4 (en)2015-12-30
EP2831279B1 (en)2023-05-03
EP4239081A3 (en)2023-11-08
US10053729B2 (en)2018-08-21
CA2868836C (en)2019-08-06
HK1206795A1 (en)2016-01-15
US20220010371A1 (en)2022-01-13
IL234850B (en)2019-08-29
CA2868836A1 (en)2013-10-03
CN104350158B (en)2025-08-12
PL2831279T3 (en)2023-12-04
FI2831279T3 (en)2023-05-23
US20150051085A1 (en)2015-02-19
CN111073962A (en)2020-04-28
AU2013240088A1 (en)2014-10-16
IL234850A0 (en)2014-12-31
CN104350158A (en)2015-02-11
WO2013148496A1 (en)2013-10-03
ES2945311T3 (en)2023-06-30

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