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PMID: 20043857 Published · epublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Improving the efficiency of genomic loci capture using oligonucleotide arrays for high throughput resequencing.

BMC genomics ·Vol. 10 ·2009-12-31 ·Pages 646

Lee H, O'Connor BD, Merriman B, Funari VA, Homer N, Chen Z, Cohn DH, Nelson SF

Abstract

The emergence of next-generation sequencing technology presents tremendous opportunities to accelerate the discovery of rare variants or mutations that underlie human genetic disorders. Although the complete sequencing of the affected individuals' genomes would be the most powerful approach to finding such variants, the cost of such efforts make it impractical for routine use in disease gene research. In cases where candidate genes or loci can be defined by linkage, association, or phenotypic studies, the practical sequencing target can be made much smaller than the whole genome, and it becomes critical to have capture methods that can be used to purify the desired portion of the genome for shotgun short-read sequencing without biasing allelic representation or coverage. One major approach is array-based capture which relies on the ability to create a custom in-situ synthesized oligonucleotide microarray for use as a collection of hybridization capture probes. This approach is being used by our group and others routinely and we are continuing to improve its performance. Here, we provide a complete protocol optimized for large aggregate sequence intervals and demonstrate its utility with the capture of all predicted amino acid coding sequence from 3,038 human genes using 241,700 60-mer oligonucleotides. Further, we demonstrate two techniques by which the efficiency of the capture can be increased: by introducing a step to block cross hybridization mediated by common adapter sequences used in sequencing library construction, and by repeating the hybridization capture step. These improvements can boost the targeting efficiency to the point where over 85% of the mapped sequence reads fall within 100 bases of the targeted regions. The complete protocol introduced in this paper enables researchers to perform practical capture experiments, and includes two novel methods for increasing the targeting efficiency. Coupled with the new massively parallel sequencing technologies, this provides a powerful approach to identifying disease-causing genetic variants that can be localized within the genome by traditional methods.

MeSH Terms
DNA, Neoplasm/genetics Genes, Neoplasm Genetic Loci Genome, Human Genomic Library Humans Oligonucleotide Array Sequence Analysis/methods Sequence Alignment Sequence Analysis, DNA/methods
Chemicals
DNA, Neoplasm
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Lee Hane
Department of Human Genetics, University of California, Los Angeles, California, USA. hanelee@ucla.edu
O'Connor Brian D
Merriman Barry
Funari Vincent A
Homer Nils
Chen Zugen
Cohn Daniel H
Nelson Stanley F
References (23)
23 references, click to expand
  1. The Catalogue of Somatic Mutations in Cancer (COSMIC).
    Curr Protoc Hum Genet. 2008 Apr;Chapter 10:Unit 10.11 PMID: 18428421
  2. Multiplex amplification of large sets of human exons.
    Nat Methods. 2007 Nov;4(11):931-6 PMID: 17934468
  3. Multiplex amplification enabled by selective circularization of large sets of genomic DNA fragments.
    Nucleic Acids Res. 2005 Apr 28;33(8):e71 PMID: 15860768
  4. Use of whole cosmid cloned genomic sequences for chromosomal localization by non-radioactive in situ hybridization.
    Hum Genet. 1987 Dec;77(4):366-70 PMID: 3480264
  5. Multigene amplification and massively parallel sequencing for cancer mutation discovery.
    Proc Natl Acad Sci U S A. 2007 May 29;104(22):9387-92 PMID: 17517648
  6. Genome sequencing in microfabricated high-density picolitre reactors.
    Nature. 2005 Sep 15;437(7057):376-80 PMID: 16056220
  7. Single-molecule DNA sequencing of a viral genome.
    Science. 2008 Apr 4;320(5872):106-9 PMID: 18388294
  8. Initial sequencing and analysis of the human genome.
    Nature. 2001 Feb 15;409(6822):860-921 PMID: 11237011
  9. Exome sequencing identifies the cause of a mendelian disorder.
    Nat Genet. 2010 Jan;42(1):30-5 PMID: 19915526
  10. Single-molecule sequencing of an individual human genome.
    Nat Biotechnol. 2009 Sep;27(9):847-50 PMID: 19668243
  11. Accurate multiplex polony sequencing of an evolved bacterial genome.
    Science. 2005 Sep 9;309(5741):1728-32 PMID: 16081699
  12. PieceMaker: selection of DNA fragments for selector-guided multiplex amplification.
    Nucleic Acids Res. 2005 Apr 28;33(8):e72 PMID: 15860769
  13. Genetic diagnosis by whole exome capture and massively parallel DNA sequencing.
    Proc Natl Acad Sci U S A. 2009 Nov 10;106(45):19096-101 PMID: 19861545
  14. Direct genomic selection.
    Nat Methods. 2005 Jan;2(1):63-9 PMID: 16152676
  15. Genome-wide in situ exon capture for selective resequencing.
    Nat Genet. 2007 Dec;39(12):1522-7 PMID: 17982454
  16. Direct selection of human genomic loci by microarray hybridization.
    Nat Methods. 2007 Nov;4(11):903-5 PMID: 17934467
  17. Targeted capture and massively parallel sequencing of 12 human exomes.
    Nature. 2009 Sep 10;461(7261):272-6 PMID: 19684571
  18. Mutations in PYCR1 cause cutis laxa with progeroid features.
    Nat Genet. 2009 Sep;41(9):1016-21 PMID: 19648921
  19. Microarray-based genomic selection for high-throughput resequencing.
    Nat Methods. 2007 Nov;4(11):907-9 PMID: 17934469
  20. Solexa Ltd.
    Pharmacogenomics. 2004 Jun;5(4):433-8 PMID: 15165179
  21. Multiplex amplification of all coding sequences within 10 cancer genes by Gene-Collector.
    Nucleic Acids Res. 2007;35(7):e47 PMID: 17317684
  22. Real-time DNA sequencing from single polymerase molecules.
    Science. 2009 Jan 2;323(5910):133-8 PMID: 19023044
  23. Hybrid selection of discrete genomic intervals on custom-designed microarrays for massively parallel sequencing.
    Nat Protoc. 2009;4(6):960-74 PMID: 19478811
Article Info
Journal
BMC genomics
Abbr.
BMC Genomics
ISSN
1471-2164
Published
2009-12-31
Epub
2009-00-31
Pages
646
Language
English
Region
England
NLM ID
100965258
PMCID
PMC2808330
Subset
IM
Grants
PHS HHS · D22657 · United States
NIDCR NIH HHS · DE019567 · United States
NINDS NIH HHS · NS U24NS052108 · United States
NIMH NIH HHS · R01 MH071852 · United States
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