水稻代谢物介导的干旱反应的共性和特异性遗传基础

Zilong Guo, Shouchuang Wang, Feng Zhang, Denghao Xiang, Jun Yang, Dong Li, Baowei Bai, Mingqiu Dai, Jie Luo, Lizhong Xiong
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引用次数: 0

摘要

植物在新陈代谢水平上协调干旱响应,但水稻的遗传基础仍然难以捉摸。本研究在一个由 510 个不同品种组成的大型水稻群体中对 233 种干旱响应代谢物(DRMs)进行了定量分析。研究发现,干旱响应的代谢差异很大,干旱和正常条件下的代谢水平几乎没有相关性。有趣的是,这些 DRMs 中的大多数都能高精度地预测抗旱性。全基因组关联研究揭示了 233 个 DRMs 的 2522 个显著关联信号,其中 98% 的信号(2471/2522)与同一群体中干旱相关表型性状的关联位点或其他群体中抗旱性的连锁 QTLs 共同定位。共为 9 个 DRMs 有效鉴定出 10 个候选基因,其中 7 个基因在干旱条件下具有顺式 QTL。基于对水稻和玉米(代表灌溉作物和高地作物)常见抗旱基因的全球基因组分析比较,我们在这两种作物中发现了三对与三个抗旱基因相关的同源基因。在这些同源基因中,一个负责 N-feruloylputrescine 代谢变异的转移酶基因被证实赋予了水稻更强的抗旱性。我们的研究不仅提供了水稻对干旱胁迫的代谢反应的遗传结构,还提供了代谢数据资源,揭示了不同作物由代谢物介导的共同和特异的干旱反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Common and specific genetic basis of metabolite-mediated drought responses in rice.

Plants orchestrate drought responses at metabolic level but the genetic basis remains elusive in rice. In this study, 233 drought-responsive metabolites (DRMs) were quantified in a large rice population comprised of 510 diverse accessions at the reproductive stage. Large metabolic variations in drought responses were detected, and little correlation of metabolic levels between drought and normal conditions were observed. Interestingly, most of these DRMs could predict drought resistance in high accuracy. Genome-wide association study revealed 2522 significant association signals for 233 DRMs, and 98% (2471/2522) of the signals were co-localized with the association loci for drought-related phenotypic traits in the same population or the linkage-mapped QTLs for drought resistance in other populations. Totally, 10 candidate genes were efficiently identified for nine DRMs, seven of which harbored cis-eQTLs under drought condition. Based on comparative GWAS of common DRMs in rice and maize, representing irrigated and upland crops, we have identified three pairs of homologous genes associated with three DRMs between the two crops. Among the homologous genes, a transferase gene responsible for metabolic variation of N-feruloylputrescine was confirmed to confer enhanced drought resistance in rice. Our study provides not only genetic architecture of metabolic responses to drought stress in rice but also metabolic data resources to reveal the common and specific metabolite-mediated drought responses in different crops.

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