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The α-subunit of the rice heterotrimeric G protein RGA1 regulates drought tolerance during the vegetative phase in the dwarf rice mutant d1

机译:水稻异三聚体G蛋白RGA1的α亚基调节矮化水稻突变体d1在营养期的耐旱性

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摘要

Essential in the Green Revolution was the development of high-yielding dwarf varieties of rice (Oryza sativa L.), but their selection was not based on responses to water limitation. We studied physiological responses to progressive drought of the dwarf rice mutant, d1, in which the RGA1 gene, which encodes the GTP-binding α-subunit of the heterotrimeric G protein, is non-functional. Wild-type (WT) plants cease net carbon fixation 11 days after water is withheld, while d1 plants maintain net photosynthesis for an additional week. During drought, d1 plants exhibit greater stomatal conductance than the WT, but both genotypes exhibit the same transpirational water loss per unit leaf area. This is explained by a smaller driving force for water loss in d1 owing to its lower leaf temperatures, consistent with its more erect architecture. As drought becomes more severe, WT plants show an accelerated decline in photosynthesis, which may be exacerbated by the higher leaf temperatures in the WT. We thus show how a rice mutant with dwarf and erect leaves has a decreased susceptibility to water stress. Accordingly, it may be useful to incorporate RGA1 mutation in breeding or biotechnological strategies for development of drought-resistant rice.
机译:在绿色革命中必不可少的是开发高产矮化水稻品种(Oryza sativa L.),但其选择并非基于对水分限制的响应。我们研究了矮水稻突变体d1对进行性干旱的生理反应,其中编码异源三聚体G蛋白GTP结合α亚基的RGA1基因无功能。禁水11天后,野生型(WT)植物停止了净碳固定,而d1植物又保持了净光合作用一周。在干旱期间,d1植物比WT表现出更大的气孔导度,但是两种基因型在每单位叶面积上表现出相同的蒸腾失水。这是由于较低的叶片温度导致d1中水分流失的驱动力较小,这与其更直立的结构一致。随着干旱变得更加严重,野生型植物显示出光合作用的加速下降,而野生型中较高的叶片温度可能加剧这种情况。因此,我们证明了矮化和直立叶片的水稻突变体对水分胁迫的敏感性降低。因此,将RGA1突变掺入用于开发抗旱水稻的育种或生物技术策略中可能是有用的。

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