Genomic mechanisms of climate adaptation in polyploid bioenergy switchgrass

处女圆锥花序 生物 渗入 适应(眼睛) 多倍体 生物能源 遗传多样性 生物量(生态学) 生态学 基因组 生物燃料 基因 遗传学 人口 社会学 人口学 神经科学
作者
John T Lovell,Alice MacQueen,Sujan Mamidi,Jason Bonnette,Jerry Jenkins,Joseph D. Napier,Avinash Sreedasyam,Adam Healey,Adam M. Session,Shengqiang Shu,Kerrie Barry,Stacy A. Bonos,Lori Beth Boston,Christopher Daum,Shweta Deshpande,Aren Ewing,Paul Grabowski,Taslima Haque,Melanie Harrison,Jiming Jiang,Dave Kudrna,Anna Lipzen,Thomas H. Pendergast,Chris Plott,Peng Qi,Christopher Saski,Eugene V. Shakirov,David Sims,Manoj K. Sharma,Rita Sharma,Ada Stewart,Vasanth Singan,Yuhong Tang,Sandra Thibivillier,Jenell Webber,Xiaoyu Weng,Melissa E. Williams,Guohong Albert Wu,Yuko Yoshinaga,Matthew Zane,Li Zhang,Jiyi Zhang,Kathrine D. Behrman,Arvid Boe,Philip A. Fay,Felix B. Fritschi,Julie D. Jastrow,John Lloyd-Reilley,Juan Manuel Martínez-Reyna,Roser Matamala,Robert B. Mitchell,F. M. Rouquette,Pamela C. Ronald,Malay C. Saha,Christian M. Tobias,Michael K. Udvardi,Rod A. Wing,Yanqi Wu,Laura E. Bartley,Michael D. Casler,Katrien M. Devos,David B. Lowry,Daniel S. Rokhsar,Jane Grimwood,Thomas E. Juenger,Jeremy Schmutz
出处
期刊:Nature [Springer Nature]
卷期号:590 (7846): 438-444 被引量:126
标识
DOI:10.1038/s41586-020-03127-1
摘要

Long-term climate change and periodic environmental extremes threaten food and fuel security1 and global crop productivity2-4. Although molecular and adaptive breeding strategies can buffer the effects of climatic stress and improve crop resilience5, these approaches require sufficient knowledge of the genes that underlie productivity and adaptation6-knowledge that has been limited to a small number of well-studied model systems. Here we present the assembly and annotation of the large and complex genome of the polyploid bioenergy crop switchgrass (Panicum virgatum). Analysis of biomass and survival among 732 resequenced genotypes, which were grown across 10 common gardens that span 1,800 km of latitude, jointly revealed extensive genomic evidence of climate adaptation. Climate-gene-biomass associations were abundant but varied considerably among deeply diverged gene pools. Furthermore, we found that gene flow accelerated climate adaptation during the postglacial colonization of northern habitats through introgression of alleles from a pre-adapted northern gene pool. The polyploid nature of switchgrass also enhanced adaptive potential through the fractionation of gene function, as there was an increased level of heritable genetic diversity on the nondominant subgenome. In addition to investigating patterns of climate adaptation, the genome resources and gene-trait associations developed here provide breeders with the necessary tools to increase switchgrass yield for the sustainable production of bioenergy.
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