芸苔
生物
多倍体
基因组
进化生物学
驯化
遗传学
芸苔属
倍性
基因组学
基因
植物
作者
Won Cheol Yim,Mia Swain,Dongna Ma,Hong An,Kevin A. Bird,David D. Curdie,Samuel Wang,Hyun Don Ham,Agusto Luzuriaga-Neira,Jay S. Kirkwood,Manhoi Hur,Juan K. Q. Solomon,Jeffrey F. Harper,Dylan K. Kosma,David Alvarez‐Ponce,John C. Cushman,Patrick P. Edger,Annaliese S. Mason,J. Chris Pires,Haibao Tang
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2022-08-12
卷期号:34 (11): 4143-4172
被引量:40
标识
DOI:10.1093/plcell/koac249
摘要
Ethiopian mustard (Brassica carinata) is an ancient crop with remarkable stress resilience and a desirable seed fatty acid profile for biofuel uses. Brassica carinata is one of six Brassica species that share three major genomes from three diploid species (AA, BB, and CC) that spontaneously hybridized in a pairwise manner to form three allotetraploid species (AABB, AACC, and BBCC). Of the genomes of these species, that of B. carinata is the least understood. Here, we report a chromosome scale 1.31-Gbp genome assembly with 156.9-fold sequencing coverage for B. carinata, completing the reference genomes comprising the classic Triangle of U, a classical theory of the evolutionary relationships among these six species. Our assembly provides insights into the hybridization event that led to the current B. carinata genome and the genomic features that gave rise to the superior agronomic traits of B. carinata. Notably, we identified an expansion of transcription factor networks and agronomically important gene families. Completion of the Triangle of U comparative genomics platform has allowed us to examine the dynamics of polyploid evolution and the role of subgenome dominance in the domestication and continuing agronomic improvement of B. carinata and other Brassica species.
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