The complete chloroplast genome sequence of Brachypodium distachyon: Sequence comparison and phylogenetic analysis of eight grass plastomes

被引:59
作者
Bortiri E. [1 ]
Coleman-Derr D. [1 ]
Lazo G.R. [1 ]
Anderson O.D. [1 ]
Gu Y.Q. [1 ]
机构
[1] Genomics and Gene Discovery Research Unit, USDA-Agriculture Research Service, Western Regional Research Center, Albany, CA 94710
关键词
Bacterial Artificial Chromosome; Chloroplast Genome; Plastid Genome; Bacterial Artificial Chromosome Library; Brachypodium Distachyon;
D O I
10.1186/1756-0500-1-61
中图分类号
学科分类号
摘要
Background: Wheat, barley, and rye, of tribe Triticeae in the Poaceae, are among the most important crops worldwide but they present many challenges to genomics-aided crop improvement. Brachypodium distachyon, a close relative of those cereals has recently emerged as a model for grass functional genomics. Sequencing of the nuclear and organelle genomes of Brachypodium is one of the first steps towards making this species available as a tool for researchers interested in cereals biology. Findings: The chloroplast genome of Brachypodium distachyon was sequenced by a combinational approach using BAC end and shotgun sequences derived from a selected BAC containing the entire chloroplast genome. Comparative analysis indicated that the chloroplast genome is conserved in gene number and organization with respect to those of other cereals. However, several Brachypodium genes evolve at a faster rate than those in other grasses. Sequence analysis reveals that rice and wheat have a ∼2.1 kb deletion in their plastid genomes and this deletion must have occurred independently in both species. Conclusion: We demonstrate that BAC libraries can be used to sequence plastid, and likely other organellar, genomes. As expected, the Brachypodium chloroplast genome is very similar to those of other sequenced grasses. The phylogenetic analyses and the pattern of insertions and deletions in the chloroplast genome confirmed that Brachypodium is a close relative of the tribe Triticeae. Nevertheless, we show that some large indels can arise multiple times and may confound phylogenetic reconstruction. © 2008 Bortiri et al; licensee BioMed Central Ltd.
引用
收藏
相关论文
共 25 条
[1]  
Staehelin L.A., Newcomb E.H., Membrane structures and membranous organelles, Biochemistry and Molecular Biology of Plants, pp. 37-45, (2000)
[2]  
Palmer J.D., Plastid chromosomes: Structure and evolution, The Molecular Biology of Plastids Cell Culture and Somatic Cell Genetics of Plants, 7, pp. 5-53, (1991)
[3]  
Bock R., Plastid biotechnology: Prospects for herbicide and insect resistance, metabolic engineering and molecular farming, Current Opinion in Biotechnology, 18, pp. 100-106, (2007)
[4]  
Garvin D.F., Gu Y.Q., Hasterok R., Hazen S.P., Jenkins G., Mockler T.C., Mur L.A.J., Vogel J., Development of genetic and genomic research resources for Brachypodium distachyon, a new model system for grass crop research, The Plant Genome [A Supplement to Crop Science], 1, pp. 19-69, (2008)
[5]  
Vogel J.P., Gu Y.Q., Twigg P., Lazo G.R., Laudencia-Chingcuanco D., Hayden D.M., Donze T.J., Vivian L.A., Stamova B., Coleman-Derr D., EST sequencing and phylogenetic analysis of the model grass Brachypodium distachyon, Theoretical and Applied Genetics, 113, 2, pp. 186-195, (2006)
[6]  
Huo N., Gu Y.Q., Lazo G., Vogel J., Coleman-Derr D., Luo M.-C., Thilmony R., Garvin D.F., Anderson O.D., Construction and characterization of two BAC libraries from Brachypodium distachyon, a new model for grass genomics, Genome, 49, pp. 1099-1108, (2006)
[7]  
Hasterok R., Draper J., Jenkins G., Laying the cytotaxonomic foundations of a new model grass, Brachypodium distachyon (L.) Beauv, Chromosome Research, 12, pp. 397-403, (2004)
[8]  
Jenkins G., Hasterok R., BAC 'landing' on chromosomes of Brachypodium distachyon for comparative genome alignment, Nature Protocols, 2, pp. 88-98, (2007)
[9]  
Hasterok R., Marasek A., Donnison I.S., Armstead I., Thomas A., King I.P., Wolny E., Idziak D., Draper J., Jenkins G., Alignment of the genomes of Brachypodium distachyon and temperate cereals and grasses using bacterial artificial chromosome landing with fluorescence in situ hybridization, Genetics, 173, 1, pp. 349-362, (2006)
[10]  
Vogel J., Garvin D.F., Leong O., Hayden D.M., Agrobacterium-mediated transformation and inbred line development in the model grass Brachypodium distachyon, Plant Cell, Tissue and Organ Culture, 84, pp. 199-211, (2005)