Ultra High Throughput Sequencing in Human DNA Variation Detection: A Comparative Study on the NDUFA3-PRPF31 Region

被引:8
作者
Benaglio, Paola [1 ]
Rivolta, Carlo [1 ]
机构
[1] Univ Lausanne, Dept Med Genet, Lausanne, Switzerland
来源
PLOS ONE | 2010年 / 5卷 / 09期
基金
瑞士国家科学基金会;
关键词
HUMAN GENOME; COPY NUMBER; VARIANTS; TECHNOLOGY; PRIMER;
D O I
10.1371/journal.pone.0013071
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Ultra high throughput sequencing (UHTS) technologies find an important application in targeted resequencing of candidate genes or of genomic intervals from genetic association studies. Despite the extraordinary power of these new methods, they are still rarely used in routine analysis of human genomic variants, in part because of the absence of specific standard procedures. The aim of this work is to provide human molecular geneticists with a tool to evaluate the best UHTS methodology for efficiently detecting DNA changes, from common SNPs to rare mutations. Methodology/Principal Findings: We tested the three most widespread UHTS platforms (Roche/454 GS FLX Titanium, Illumina/Solexa Genome Analyzer II and Applied Biosystems/SOLiD System 3) on a well-studied region of the human genome containing many polymorphisms and a very rare heterozygous mutation located within an intronic repetitive DNA element. We identify the qualities and the limitations of each platform and describe some peculiarities of UHTS in resequencing projects. Conclusions/Significance: When appropriate filtering and mapping procedures are applied UHTS technology can be safely and efficiently used as a tool for targeted human DNA variations detection. Unless particular and platform-dependent characteristics are needed for specific projects, the most relevant parameter to consider in mainstream human genome resequencing procedures is the cost per sequenced base-pair associated to each machine.
引用
收藏
页数:10
相关论文
共 23 条
[1]   Accurate whole human genome sequencing using reversible terminator chemistry [J].
Bentley, David R. ;
Balasubramanian, Shankar ;
Swerdlow, Harold P. ;
Smith, Geoffrey P. ;
Milton, John ;
Brown, Clive G. ;
Hall, Kevin P. ;
Evers, Dirk J. ;
Barnes, Colin L. ;
Bignell, Helen R. ;
Boutell, Jonathan M. ;
Bryant, Jason ;
Carter, Richard J. ;
Cheetham, R. Keira ;
Cox, Anthony J. ;
Ellis, Darren J. ;
Flatbush, Michael R. ;
Gormley, Niall A. ;
Humphray, Sean J. ;
Irving, Leslie J. ;
Karbelashvili, Mirian S. ;
Kirk, Scott M. ;
Li, Heng ;
Liu, Xiaohai ;
Maisinger, Klaus S. ;
Murray, Lisa J. ;
Obradovic, Bojan ;
Ost, Tobias ;
Parkinson, Michael L. ;
Pratt, Mark R. ;
Rasolonjatovo, Isabelle M. J. ;
Reed, Mark T. ;
Rigatti, Roberto ;
Rodighiero, Chiara ;
Ross, Mark T. ;
Sabot, Andrea ;
Sankar, Subramanian V. ;
Scally, Aylwyn ;
Schroth, Gary P. ;
Smith, Mark E. ;
Smith, Vincent P. ;
Spiridou, Anastassia ;
Torrance, Peta E. ;
Tzonev, Svilen S. ;
Vermaas, Eric H. ;
Walter, Klaudia ;
Wu, Xiaolin ;
Zhang, Lu ;
Alam, Mohammed D. ;
Anastasi, Carole .
NATURE, 2008, 456 (7218) :53-59
[2]  
Craig DW, 2008, NAT METHODS, V5, P887, DOI [10.1038/nmeth.1251, 10.1038/NMETH.1251]
[3]   A Single-Base Substitution within an Intronic Repetitive Element Causes Dominant Retinitis Pigmentosa with Reduced Penetrance [J].
Frio, Thomas Rio ;
McGee, Terri L. ;
Wade, Nicholas M. ;
Iseli, Christian ;
Beckmann, Jacques S. ;
Berson, Eliot L. ;
Rivolta, Carlo .
HUMAN MUTATION, 2009, 30 (09) :1340-1347
[4]   Evaluation of next generation sequencing platforms for population targeted sequencing studies [J].
Harismendy, Olivier ;
Ng, Pauline C. ;
Strausberg, Robert L. ;
Wang, Xiaoyun ;
Stockwell, Timothy B. ;
Beeson, Karen Y. ;
Schork, Nicholas J. ;
Murray, Sarah S. ;
Topol, Eric J. ;
Levy, Samuel ;
Frazer, Kelly A. .
GENOME BIOLOGY, 2009, 10 (03)
[5]   Method for improving sequence coverage uniformity of targeted genomic intervals amplified by LR-PCR using Illumina GA sequencing-by-synthesis technology [J].
Harismendy, Olivier ;
Frazer, Kelly A. .
BIOTECHNIQUES, 2009, 46 (03) :229-231
[6]   Accuracy and quality of massively parallel DNA pyrosequencing [J].
Huse, Susan M. ;
Huber, Julie A. ;
Morrison, Hilary G. ;
Sogin, Mitchell L. ;
Mark Welch, David .
GENOME BIOLOGY, 2007, 8 (07)
[7]   Allele-specific PCR amplification due to sequence identity between a PCR primer and an amplicon: is direct sequencing so reliable? [J].
Ikegawa, S ;
Mabuchi, A ;
Ogawa, M ;
Ikeda, T .
HUMAN GENETICS, 2002, 110 (06) :606-608
[8]   SNP frequency estimation using massively parallel sequencing of pooled DNA [J].
Ingman, Max ;
Gyllensten, Ulf .
EUROPEAN JOURNAL OF HUMAN GENETICS, 2009, 17 (03) :383-386
[9]   A scalable, fully automated process for construction of sequence-ready barcoded libraries for 454 [J].
Lennon, Niall J. ;
Lintner, Robert E. ;
Anderson, Scott ;
Alvarez, Pablo ;
Barry, Andrew ;
Brockman, William ;
Daza, Riza ;
Erlich, Rachel L. ;
Giannoukos, Georgia ;
Green, Lisa ;
Hollinger, Andrew ;
Hoover, Cindi A. ;
Jaffe, David B. ;
Juhn, Frank ;
McCarthy, Danielle ;
Perrin, Danielle ;
Ponchner, Karen ;
Powers, Taryn L. ;
Rizzolo, Kamran ;
Robbins, Dana ;
Ryan, Elizabeth ;
Russ, Carsten ;
Sparrow, Todd ;
Stalker, John ;
Steelman, Scott ;
Weiand, Michael ;
Zimmer, Andrew ;
Henn, Matthew R. ;
Nusbaum, Chad ;
Nicol, Robert .
GENOME BIOLOGY, 2010, 11 (02)
[10]   Genome sequencing in microfabricated high-density picolitre reactors [J].
Margulies, M ;
Egholm, M ;
Altman, WE ;
Attiya, S ;
Bader, JS ;
Bemben, LA ;
Berka, J ;
Braverman, MS ;
Chen, YJ ;
Chen, ZT ;
Dewell, SB ;
Du, L ;
Fierro, JM ;
Gomes, XV ;
Godwin, BC ;
He, W ;
Helgesen, S ;
Ho, CH ;
Irzyk, GP ;
Jando, SC ;
Alenquer, MLI ;
Jarvie, TP ;
Jirage, KB ;
Kim, JB ;
Knight, JR ;
Lanza, JR ;
Leamon, JH ;
Lefkowitz, SM ;
Lei, M ;
Li, J ;
Lohman, KL ;
Lu, H ;
Makhijani, VB ;
McDade, KE ;
McKenna, MP ;
Myers, EW ;
Nickerson, E ;
Nobile, JR ;
Plant, R ;
Puc, BP ;
Ronan, MT ;
Roth, GT ;
Sarkis, GJ ;
Simons, JF ;
Simpson, JW ;
Srinivasan, M ;
Tartaro, KR ;
Tomasz, A ;
Vogt, KA ;
Volkmer, GA .
NATURE, 2005, 437 (7057) :376-380