A programmable method for massively parallel targeted sequencing

被引:8
|
作者
Hopmans, Erik S. [1 ]
Natsoulis, Georges [2 ]
Bell, John M. [1 ]
Grimes, Susan M. [2 ]
Sieh, Weiva [3 ]
Ji, Hanlee P. [1 ,2 ]
机构
[1] Stanford Univ, Stanford Genome Technol Ctr, Palo Alto, CA 94304 USA
[2] Stanford Univ, Div Oncol, Dept Med, Sch Med, Stanford, CA 94305 USA
[3] Stanford Univ, Dept Hlth Res & Policy, Sch Med, Stanford, CA 94305 USA
基金
美国国家卫生研究院;
关键词
COLON-CANCER; TUMOR-SUPPRESSOR; GENES; SUSCEPTIBILITY; ASSOCIATION; MUTATIONS; VARIANTS; LOCUS; 8Q24;
D O I
10.1093/nar/gku282
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We have developed a targeted resequencing approach referred to as Oligonucleotide-Selective Sequencing. In this study, we report a series of significant improvements and novel applications of this method whereby the surface of a sequencing flow cell is modified in situ to capture specific genomic regions of interest from a sample and then sequenced. These improvements include a fully automated targeted sequencing platform through the use of a standard Illumina cBot fluidics station. Targeting optimization increased the yield of total on-target sequencing data 2-fold compared to the previous iteration, while simultaneously increasing the percentage of reads that could be mapped to the human genome. The described assays cover up to 1421 genes with a total coverage of 5.5 Megabases (Mb). We demonstrate a 10-fold abundance uniformity of greater than 90% in 1 log distance from the median and a targeting rate of up to 95%. We also sequenced continuous genomic loci up to 1.5 Mb while simultaneously genotyping SNPs and genes. Variants with low minor allele fraction were sensitively detected at levels of 5%. Finally, we determined the exact breakpoint sequence of cancer rearrangements. Overall, this approach has high performance for selective sequencing of genome targets, configuration flexibility and variant calling accuracy.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Targeted massively parallel sequencing for congenital generalized lipodystrophy
    Costa-Riquetto, Aline D.
    Santana, Lucas S.
    Caetano, Lilian A.
    Lerario, Antonio M.
    Correia-Deur, Joya E. M.
    Bertola, Debora R.
    Kim, Chong A.
    Nery, Marcia
    Jorge, Alexander A. L.
    Teles, Milena G.
    ARCHIVES OF ENDOCRINOLOGY METABOLISM, 2020, 64 (05): : 559 - 566
  • [2] TARGETED CAPTURE AND MASSIVELY PARALLEL SEQUENCING OF THE HUMAN EXOME
    Kumar, A.
    Turner, E.
    Shendure, J.
    JOURNAL OF INVESTIGATIVE MEDICINE, 2010, 58 (01) : 123 - 123
  • [3] Targeted bisulfite sequencing by solution hybrid selection and massively parallel sequencing
    Lee, Eun-Joon
    Pei, Lirong
    Srivastava, Gyan
    Joshi, Trupti
    Kushwaha, Garima
    Choi, Jeong-Hyeon
    Robertson, Keith D.
    Wang, Xinguo
    Colbourne, John K.
    Zhang, Lu
    Schroth, Gary P.
    Xu, Dong
    Zhang, Kun
    Shi, Huidong
    NUCLEIC ACIDS RESEARCH, 2011, 39 (19)
  • [4] Targeted capture and massively parallel sequencing of 12 human exomes
    Ng, Sarah B.
    Turner, Emily H.
    Robertson, Peggy D.
    Flygare, Steven D.
    Bigham, Abigail W.
    Lee, Choli
    Shaffer, Tristan
    Wong, Michelle
    Bhattacharjee, Arindam
    Eichler, Evan E.
    Bamshad, Michael
    Nickerson, Deborah A.
    Shendure, Jay
    NATURE, 2009, 461 (7261) : 272 - U153
  • [5] Targeted single molecule mutation detection with massively parallel sequencing
    Gregory, Mark T.
    Bertout, Jessica A.
    Ericson, Nolan G.
    Taylor, Sean D.
    Mukherjee, Rithun
    Robins, Harlan S.
    Drescher, Charles W.
    Bielas, Jason H.
    NUCLEIC ACIDS RESEARCH, 2016, 44 (03)
  • [6] Targeted massively parallel sequencing for the diagnosis of hereditary neuroendocrine disorders
    Dwight, Trish
    Richardson, Anne Louise
    Zhu, Ying
    Robinson, Bruce G.
    Benn, Diana E.
    Clifton-Bligh, Roderick J.
    CANCER RESEARCH, 2014, 74 (19)
  • [7] Targeted capture and massively parallel sequencing of 12 human exomes
    Sarah B. Ng
    Emily H. Turner
    Peggy D. Robertson
    Steven D. Flygare
    Abigail W. Bigham
    Choli Lee
    Tristan Shaffer
    Michelle Wong
    Arindam Bhattacharjee
    Evan E. Eichler
    Michael Bamshad
    Deborah A. Nickerson
    Jay Shendure
    Nature, 2009, 461 : 272 - 276
  • [8] Massively parallel sequencing
    Yu-Hui Rogers
    J. Craig Venter
    Nature, 2005, 437 : 326 - 327
  • [9] A TARGETED ENRICHMENT STRATEGY FOR MASSIVELY PARALLEL SEQUENCING OF ANGIOSPERM PLASTID GENOMES
    Stull, Gregory W.
    Moore, Michael J.
    Mandala, Venkata S.
    Douglas, Norman A.
    Kates, Heather-Rose
    Qi, Xinshuai
    Brockington, Samuel F.
    Soltis, Pamela S.
    Soltis, Douglas E.
    Gitzendanner, Matthew A.
    APPLICATIONS IN PLANT SCIENCES, 2013, 1 (02):
  • [10] Detection of Diverse Mutational Signatures using Targeted Massively Parallel Sequencing
    Nowak, Jonathan A.
    Schmidt, Ryan
    Posada, Jessica
    Dong, Fei
    Frieden, Alexander
    Shivdasani, Priyanka
    Bialic, Leah
    Ducar, Matthew D.
    Lindeman, Neal
    MacConaill, Laura E.
    Kuo, Frank
    Sholl, Lynette
    MODERN PATHOLOGY, 2018, 31 : 705 - 705