新澳门六合彩内幕信息

Wheat geneticists to decode massive genome

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Photo: field of wheat with clouds in the sky
The project will sequence the genome of a wild wheat relative responsible for the bread-making quality found in wheat.

An international effort, led by University of California, Davis, scientists is in progress, aimed at sequencing a wheat ancestor鈥檚 genome, which is 40 percent larger than the human genome.

The project, recently funded by a $9 million grant from the National Science Foundation鈥檚 Plant Genome Research project, is focused on better understanding the genetics of bread wheat, one of three cereals that provide most of the world鈥檚 food.  Bread wheat also has the distinction of having a genome that consists of three genomes from separate species, each with a complexity and size that make genetic decoding exceptionally difficult.

The project will sequence the genome of the goatgrass Aegilops tauschii, a wild relative of common bread wheat that is responsible for the bread-making quality found in wheat.  It also is highly tolerant of salt, drought, aluminum, frost, pests and many wheat diseases.

In studying the Ae. tauschii genome, scientists plan to identify the genes controlling the important environmental tolerance and resistance traits, and gain a finer understanding of the biological causes behind the enormous sizes of many plant genomes. The Ae. tauschii code also will provide geneticists with a badly needed reference for wheat genomics and sequence assembly.

The effort already has produced its first practical outcome: the discovery of a gene with a resistance to wheat stem rust, .

Geneticists previously had hoped to decode the wheat and Ae. tauschii genomes using the shotgun sequencing approach, which is like piecing together a book from millions of random sentence fragments. The team, instead, is using an approach known as 鈥渙rdered clone sequencing鈥 to generate a high-quality blueprint of the Ae. tauschii genome, along with nanomapping, which traps DNA molecules in nano-sized channels where their unique pattern is visualized and quantified.

鈥淭his is really an exciting technology,鈥 said Jan Dvorak, a lead scientist on the team, as well as a 新澳门六合彩内幕信息 Davis professor and geneticist. 鈥淔or the first time in genome sequencing, we have an independent means to check the accuracy of the genome sequence assembly and correct errors and fill gaps.鈥

Ming-Cheng Luo, a co-investigator and 新澳门六合彩内幕信息 Davis geneticist, worked with BioNano Genomics, the manufacturer of the sequencing instrument, to adapt the technology to ordered clone sequencing.

鈥淭his technology will now be available to all the genomic programs in the campus community,鈥 said Luo.

The genome project is a partnership between 新澳门六合彩内幕信息 Davis and a number of U.S. and Chinese institutions, with additional support from the Chinese Wheat Genome Working Group. Several visiting scientists and students also are involved with the project. Other co-investigators include Yong Qiang Gu and Olin Anderson of 新澳门六合彩内幕信息 Davis/USDA-ARS, Katrien Devos of the University of Georgia and Steven Salzberg of Johns Hopkins University.

Media Resources

Pat Bailey, Research news (emphasis: agricultural and nutritional sciences, and veterinary medicine), 530-219-9640, pjbailey@ucdavis.edu

Jan Dvorak, Plant Sciences, (530) 752-6549, jdvorak@ucdavis.edu

Ming-Cheng Luo, Plant Sciences, (530) 754-6235, mcluo@ucdavis.edu

Bradley Hooker, Plant Sciences, (530) 752-9716, gbhooker@ucdavis.edu

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