Genome sequence of the palaeopolyploid soybean

Геномная последовательность палеополиплоидной сои
Rod A. Wing, Scott A. Jackson, Daniel S. Rokhsar, Uffe Hellsten, Erika Lindquist, Taishi Umezawa, Kazuo Shinozaki, Jianlin Cheng, William M. Nelson, Jeremy Schmutz, Myron Peto, Dong Xu, Henry T. Nguyen, Babu Valliyodan, Zhixi Tian, David L. Hyten, Therese Mitros, Trupti Joshi, Kerrie Barry, Liucun Zhu, Jane Grimwood, Shengqiang Shu, Yeisoo Yu, David Goodstein, Perry B. Cregan, Qijian Song, Jianxin Ma, Steven B. Cannon, Brian Abernathy, Jay J. Thelen, Gary Stacey, Jessica A. Schlueter, Gregory D. May, Tetsuya Sakurai, Madan K. Bhattacharyya, Devinder Sandhu, David Grant, Montona Futrell-Griggs, Jianchang Du, Navdeep Gill, Marc Libault, Anand Sethuraman, Xuecheng Zhang, James E. Specht, Randy C. Shoemaker
2010-01-01

chromosome-scale assemblygene duplicationpalaeopolyploidysoybean genomewhole-genome shotgun sequencing
Soybean (Glycine max) is one of the most important crop plants for seed protein and oil content, and for its capacity to fix atmospheric nitrogen through symbioses with soil-borne microorganisms. We sequenced the 1.1-gigabase genome by a whole-genome shotgun approach and integrated it with physical and high-density genetic maps to create a chromosome-scale draft sequence assembly. We predict 46,430 protein-coding genes, 70% more than Arabidopsis and similar to the poplar genome which, like soybean, is an ancient polyploid (palaeopolyploid). About 78% of the predicted genes occur in chromosome ends, which comprise less than one-half of the genome but account for nearly all of the genetic recombination. Genome duplications occurred at approximately 59 and 13 million years ago, resulting in a highly duplicated genome with nearly 75% of the genes present in multiple copies. The two duplication events were followed by gene diversification and loss, and numerous chromosome rearrangements. An accurate soybean genome sequence will facilitate the identification of the genetic basis of many soybean traits, and accelerate the creation of improved soybean varieties. Soybean (Glycine max) is an important commercial crop providing both protein and oil, and its symbiotic relationship to nitrogen-fixing bacteria makes it a profitable crop in rotation systems. Its genome has now been sequenced: it is the first legume and at 1.1 gigabases, the largest plant genome to be sequenced by whole-genome shotgun techniques. Soybean has a colourful genetic past; genome duplications occurred at 59 and 13 million years ago, resulting in a highly duplicated genome with nearly 75% of the genes present in multiple copies. An accurate soybean genome sequence should accelerate the creation of improved soybean varieties. Soybean is an important crop plant, providing seed protein and oil and fixing atmospheric nitrogen through symbioses with soil-borne microorganisms. Using a whole-genome shotgun approach, its 1.1-gigabase genome is now sequenced and integrated with physical and high-density genetic maps to create a chromosome-scale draft sequence assembly.
1
A 1.1-gigabase soybean genome was sequenced using whole-genome shotgun methods and assembled into a chromosome-scale draft with physical and high-density genetic maps.
2
Approximately 78% of predicted genes occur near chromosome ends, which occupy less than half the genome but contain nearly all genetic recombination.
3
Genome duplications approximately 59 and 13 million years ago produced a highly duplicated genome, with nearly 75% of genes present in multiple copies.
4
The assembly predicts 46,430 protein-coding genes, approximately 70% more than Arabidopsis and comparable to the palaeopolyploid poplar genome.
5
The duplication events were followed by gene diversification, gene loss, and numerous chromosome rearrangements; the sequence should support trait-gene discovery and soybean improvement.

The palaeopolyploid soybean (Glycine max) genome

Genome structure, gene content, duplication history, diversification and chromosomal rearrangements

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2010-01-01
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Authors
Rod A. Wing
Scott A. Jackson
Daniel S. Rokhsar
Uffe Hellsten
Erika Lindquist
Taishi Umezawa
Kazuo Shinozaki
Jianlin Cheng
William M. Nelson
Jeremy Schmutz
Myron Peto
Dong Xu
Henry T. Nguyen
Babu Valliyodan
Zhixi Tian
David L. Hyten
Therese Mitros
Trupti Joshi
Kerrie Barry
Liucun Zhu
Jane Grimwood
Shengqiang Shu
Yeisoo Yu
David Goodstein
Perry B. Cregan
Qijian Song
Jianxin Ma
Steven B. Cannon
Brian Abernathy
Jay J. Thelen
Gary Stacey
Jessica A. Schlueter
Gregory D. May
Tetsuya Sakurai
Madan K. Bhattacharyya
Devinder Sandhu
David Grant
Montona Futrell-Griggs
Jianchang Du
Navdeep Gill
Marc Libault
Anand Sethuraman
Xuecheng Zhang
James E. Specht
Randy C. Shoemaker
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