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Genetic Variation for Life History Sensitivity to Seasonal Warming in Arabidopsis thaliana

机译:拟南芥生活史对季节性变暖敏感性的遗传变异

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Climate change has altered life history events in many plant species; however, little is known about genetic variation underlying seasonal thermal response. In this study, we simulated current and three future warming climates and measured flowering time across a globally diverse set of Arabidopsis thaliana accessions. We found that increased diurnal and seasonal temperature (1°–3°) decreased flowering time in two fall cohorts. The early fall cohort was unique in that both rapid cycling and overwintering life history strategies were revealed; the proportion of rapid cycling plants increased by 3–7% for each 1° temperature increase. We performed genome-wide association studies (GWAS) to identify the underlying genetic basis of thermal sensitivity. GWAS identified five main-effect quantitative trait loci (QTL) controlling flowering time and another five QTL with thermal sensitivity. Candidate genes include known flowering loci; a cochaperone that interacts with heat-shock protein 90; and a flowering hormone, gibberellic acid, a biosynthetic enzyme. The identified genetic architecture allowed accurate prediction of flowering phenotypes ( R 2 0.95) that has application for genomic selection of adaptive genotypes for future environments. This work may serve as a reference for breeding and conservation genetic studies under changing environments.
机译:气候变化改变了许多植物物种的生活史事件;然而,关于季节性热反应的遗传变异知之甚少。在这项研究中,我们模拟了当前和未来三个变暖的气候,并测量了全球范围内各种拟南芥种质的开花时间。我们发现,在两个秋季队列中,昼夜和季节温度升高(1°–3°)会缩短开花时间。早期的秋季队列是独特的,因为它揭示了快速骑行和越冬的生活史策略。温度每升高1°C,快速循环植物的比例就会增加3–7%。我们进行了全基因组关联研究(GWAS),以确定热敏感性的潜在遗传基础。 GWAS确定了控制开花时间的五个主要效应数量性状基因座(QTL)和另外五个具有热敏感性的QTL。候选基因包括已知的开花基因座;与热激蛋白90相互作用的伴侣蛋白;还有一种开花激素,赤霉素,一种生物合成酶。鉴定出的遗传结构允许准确预测开花表型(R 2> 0.95),该表型已应用于未来环境的适应性基因型的基因组选择。这项工作可为不断变化的环境下的育种和保护遗传研究提供参考。

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