Home LiteratureArticle Details
PMID: 18421352 Published · ppublish English Journal Article

The complete genome of an individual by massively parallel DNA sequencing.

Nature ·Vol. 452 ·No. 7189 ·2008-04-17 ·Pages 872-6

Wheeler DA, Srinivasan M, Egholm M, Shen Y, Chen L, McGuire A, He W, Chen YJ, Makhijani V, Roth GT, Gomes X, Tartaro K, Niazi F, Turcotte CL, Irzyk GP, Lupski JR, Chinault C, Song XZ, Liu Y, Yuan Y, Nazareth L, Qin X, Muzny DM, Margulies M, Weinstock GM, Gibbs RA, Rothberg JM

Abstract

The association of genetic variation with disease and drug response, and improvements in nucleic acid technologies, have given great optimism for the impact of 'genomic medicine'. However, the formidable size of the diploid human genome, approximately 6 gigabases, has prevented the routine application of sequencing methods to deciphering complete individual human genomes. To realize the full potential of genomics for human health, this limitation must be overcome. Here we report the DNA sequence of a diploid genome of a single individual, James D. Watson, sequenced to 7.4-fold redundancy in two months using massively parallel sequencing in picolitre-size reaction vessels. This sequence was completed in two months at approximately one-hundredth of the cost of traditional capillary electrophoresis methods. Comparison of the sequence to the reference genome led to the identification of 3.3 million single nucleotide polymorphisms, of which 10,654 cause amino-acid substitution within the coding sequence. In addition, we accurately identified small-scale (2-40,000 base pair (bp)) insertion and deletion polymorphism as well as copy number variation resulting in the large-scale gain and loss of chromosomal segments ranging from 26,000 to 1.5 million base pairs. Overall, these results agree well with recent results of sequencing of a single individual by traditional methods. However, in addition to being faster and significantly less expensive, this sequencing technology avoids the arbitrary loss of genomic sequences inherent in random shotgun sequencing by bacterial cloning because it amplifies DNA in a cell-free system. As a result, we further demonstrate the acquisition of novel human sequence, including novel genes not previously identified by traditional genomic sequencing. This is the first genome sequenced by next-generation technologies. Therefore it is a pilot for the future challenges of 'personalized genome sequencing'.

MeSH Terms
Alleles Computational Biology Genetic Predisposition to Disease/genetics Genetic Variation/genetics Genome, Human/genetics Genomics/economics,methods,trends Genotype Humans Individuality Male Oligonucleotide Array Sequence Analysis Polymorphism, Single Nucleotide/genetics Reproducibility of Results Sensitivity and Specificity Sequence Alignment Sequence Analysis, DNA/economics,methods Software
Authors & Affiliations
27 authors, click to expand affiliations / ORCID
Wheeler David A
Human Genome Sequencing Center, Baylor College of Medicine, One Baylor Plaza, Houston, Texas 77030, USA.
Srinivasan Maithreyan
Egholm Michael
Shen Yufeng
Chen Lei
McGuire Amy
He Wen
Chen Yi-Ju
Makhijani Vinod
Roth G Thomas
Gomes Xavier
Tartaro Karrie
Niazi Faheem
Turcotte Cynthia L
Irzyk Gerard P
Lupski James R
Chinault Craig
Song Xing-zhi
Liu Yue
Yuan Ye
Nazareth Lynne
Qin Xiang
Muzny Donna M
Margulies Marcel
Weinstock George M
Gibbs Richard A
Rothberg Jonathan M
Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2008-04-17
Pages
872-6
Language
English
Region
England
NLM ID
0410462
Subset
IM
Databases
GEO
Corrections
CommentIn
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