The demographic history of the wild crop relative Brachypodium distachyon is shaped by distinct past and present ecological niches

Nikolaos Minadakis, Hefin Williams, Robert Horvath, Danka Caković, Christoph Stritt, Michael Thieme, Yann Bourgeois, Anne C. Roulin
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Abstract

Closely related to economically important crops, the grass Brachypodium distachyon has been originally established as a pivotal species for grass genomics but more recently flourished as a model for developmental biology. Grasses encompass more than 10,000 species and cover more than 40% of the world land area from tropical to temperate regions. Given that grasses also supply about a fifth of the world's dietary protein as cereal grains, unlocking the sources of phenotypic variation in B. distachyon is hence of prime interest in fundamental and applied research in agronomy, ecology and evolution. We present here the B. distachyon diversity panel, which encompasses 332 fully sequenced accessions covering the whole species distribution from Spain to Iraq. By combining population genetics, niche modeling and landscape genomics, we suggest that B. distachyon recolonized Europe and the Middle East following the last glacial maximum. Consequently, the species faced new environmental conditions which led to clear associations between bioclimatic variables and genetic factors as well as footprints of positive selection in the genome. Altogether, this genomic resource offers a powerful alternative to Arabidopsis thaliana to investigate the genetic bases of adaptation and phenotypic plasticity in plants and more specifically in monocots.
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野生作物近亲短掌草(Brachypodium distachyon)的人口统计学历史是由不同的过去和现在的生态位塑造的
与重要的经济作物密切相关的短尾草(Brachypodium distachyon)最初被确立为草基因组学的关键物种,但最近作为发育生物学的模型而蓬勃发展。从热带到温带,草的种类超过10,000种,覆盖了世界陆地面积的40%以上。考虑到草类也提供了世界上约五分之一的膳食蛋白质,因此,解开双歧杆菌表型变异的来源是农学、生态学和进化的基础和应用研究的主要兴趣。我们在此展示了长尾双歧杆菌多样性面板,其中包括332个完全测序的资料,涵盖了从西班牙到伊拉克的整个物种分布。通过群体遗传学、生态位模型和景观基因组学的综合分析,我们认为在末次盛冰期之后,远端双歧杆菌重新进入了欧洲和中东地区。因此,物种面临新的环境条件,导致生物气候变量与遗传因素之间的明确关联以及基因组中正选择的足迹。总之,这一基因组资源为研究植物,特别是单子叶植物的适应性和表型可塑性的遗传基础提供了一个强有力的替代方案。
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