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Heat Priming During Early Reproductive Stages Enhances Thermo-Tolerance to Post-anthesis Heat Stress via Improving Photosynthesis and Plant Productivity in Winter Wheat (Triticum aestivum L.)

机译:早期生殖阶段的热灌注通过改善冬小麦(Triticum Aestivum L)的光合作用和植物生产率来增强对后性发育热应激的热耐受性

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摘要

Heat stress during grain filling substantially decreases wheat productivity; thus, to ensure food security, heat tolerance in wheat needs to be developed. In this study, we evaluated the effect of heat priming applied during the stem-elongation stage, booting and anthesis, followed by 5 days of severe heat stress (a 7.86°C rise in temperature) during the grain-filling stage on physiological activities and grain yield of winter wheat in pot experiments during the 2015-2017 growing seasons using the winter wheat cultivars Yangmai 18 (a vernal type) and Yannong 19 (a facultative type). Compared with the damage observed in non-primed plants, heat priming during the stem-elongation stage and booting significantly prevented the grain-yield damage caused by heat stress during grain filling. Heat-primed plants displayed higher sucrose contents and sucrose-phosphate activity in leaves and greater above-ground dry matter than non-primed plants. Priming during stem elongation and booting led to increased photosynthetic capacity, stomatal conductance and chlorophyll contents in comparison with non-priming. Improved tolerance to heat stress due to the enhanced activities of antioxidant enzymes superoxide dismutase and peroxidase and reductions in reactive oxygen species and malondialdehyde production was observed in primed plants compared with non-primed plants of both cultivars. The positive effect of heat priming on the response to heat stress during grain filling was more pronounced in plants primed at the booting stage than in those primed at the stem-elongation or anthesis stage. Moreover, the vernal-type Yangmai 18 benefited more from heat priming than did Yannong 19, as evidenced by its higher productivity. We conclude that heat priming during early reproductive-stage growth can improve post-anthesis heat tolerance in winter wheat.
机译:颗粒填充过程中的热应力显着降低小麦生产率;因此,为了确保食品安全,需要开发小麦的耐热性。在这项研究中,我们评估了在茎伸长型阶段,靴子和开花期间施加的热引发的效果,其次在生理活性的颗粒灌装阶段期间重度热应激(温度7.86℃上升)的5天2015 - 2017年盆栽实验中冬小麦冬小麦的粮食产量使用冬小麦品种杨梅18(春季型)和yannong 19(兼产类型)。与非灌注植物中观察到的损伤相比,茎伸长型阶段和靴子期间的热灌注显着防止了谷物填充过程中热应力引起的籽粒产量损伤。热灌注植物在叶片中显示出更高的蔗糖含量和蔗糖 - 磷酸盐,比非灌注植物更高的地面干物质。与非引发相比,茎伸长率和靴子引发导致光合容量增加,气孔电导和叶绿素含量增加。由于两种品种的非灌注植物,在灌注植物中观察到由于抗氧化酶超氧化物歧化酶和过氧化物酶的增强和过氧化物酶和过氧化物酶的减少而改善了对热应激的耐受性。热灌注对谷粒填充过程中热应激响应的响应的积极作用比在引导阶段的植物中更加明显,而不是在茎伸长或开花阶段的植物中的植物。此外,常春型yangmai 18从热灌注中受益于yannong 19的更多信息,如其更高的生产率所证明。我们得出结论,早期生殖阶段生长期间的热灌注可以改善冬小麦的开发后耐热性。

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