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PMID: 21776081 Published · epublish English Journal Article Research Support, N.I.H., Extramural

An integrated semiconductor device enabling non-optical genome sequencing.

Nature ·Vol. 475 ·No. 7356 ·2011-07-20 ·Pages 348-52

Rothberg JM, Hinz W, Rearick TM, Schultz J, Mileski W, Davey M, Leamon JH, Johnson K, Milgrew MJ, Edwards M, Hoon J, Simons JF, Marran D, Myers JW, Davidson JF, Branting A, Nobile JR, Puc BP, Light D, Clark TA, Huber M, Branciforte JT, Stoner IB, Cawley SE, Lyons M, Fu Y, Homer N, Sedova M, Miao X, Reed B, Sabina J, Feierstein E, Schorn M, Alanjary M, Dimalanta E, Dressman D, Kasinskas R, Sokolsky T, Fidanza JA, Namsaraev E, McKernan KJ, Williams A, Roth GT, Bustillo J

Abstract

The seminal importance of DNA sequencing to the life sciences, biotechnology and medicine has driven the search for more scalable and lower-cost solutions. Here we describe a DNA sequencing technology in which scalable, low-cost semiconductor manufacturing techniques are used to make an integrated circuit able to directly perform non-optical DNA sequencing of genomes. Sequence data are obtained by directly sensing the ions produced by template-directed DNA polymerase synthesis using all-natural nucleotides on this massively parallel semiconductor-sensing device or ion chip. The ion chip contains ion-sensitive, field-effect transistor-based sensors in perfect register with 1.2 million wells, which provide confinement and allow parallel, simultaneous detection of independent sequencing reactions. Use of the most widely used technology for constructing integrated circuits, the complementary metal-oxide semiconductor (CMOS) process, allows for low-cost, large-scale production and scaling of the device to higher densities and larger array sizes. We show the performance of the system by sequencing three bacterial genomes, its robustness and scalability by producing ion chips with up to 10 times as many sensors and sequencing a human genome.

MeSH Terms
Escherichia coli/genetics Genome, Bacterial/genetics Genome, Human/genetics Genomics/instrumentation,methods Humans Light Male Rhodopseudomonas/genetics Semiconductors Sequence Analysis, DNA/instrumentation,methods Vibrio/genetics
Authors & Affiliations
44 authors, click to expand affiliations / ORCID
Rothberg Jonathan M
Ion Torrent by Life Technologies, Suite 100, 246 Goose Lane, Guilford, Connecticut 06437, USA. [email protected]
Hinz Wolfgang
Rearick Todd M
Schultz Jonathan
Mileski William
Davey Mel
Leamon John H
Johnson Kim
Milgrew Mark J
Edwards Matthew
Hoon Jeremy
Simons Jan F
Marran David
Myers Jason W
Davidson John F
Branting Annika
Nobile John R
Puc Bernard P
Light David
Clark Travis A
Huber Martin
Branciforte Jeffrey T
Stoner Isaac B
Cawley Simon E
Lyons Michael
Fu Yutao
Homer Nils
Sedova Marina
Miao Xin
Reed Brian
Sabina Jeffrey
Feierstein Erika
Schorn Michelle
Alanjary Mohammad
Dimalanta Eileen
Dressman Devin
Kasinskas Rachel
Sokolsky Tanya
Fidanza Jacqueline A
Namsaraev Eugeni
McKernan Kevin J
Williams Alan
Roth G Thomas
Bustillo James
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Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2011-07-20
Epub
2011-00-20
Pages
348-52
Language
English
Region
England
NLM ID
0410462
Subset
IM
Grants
NHGRI NIH HHS · R01 HG005094 · United States
Corrections
CommentIn
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