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Understanding the molecular events underpinning cultivar differences in the physiological performance and heat tolerance of cotton (Gossypium hirsutum).

机译:了解支持棉花生理特性和耐热性的栽培品种差异的分子事件。

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摘要

Diurnal or prolonged exposure to air temperatures above the thermal optimum for a plant can impair physiological performance and reduce crop yields. This study investigated the molecular response to heat stress of two high-yielding cotton (Gossypium hirsutum L.) cultivars with contrasting heat tolerance. Using global gene profiling, 575 of 21854 genes assayed were affected by heat stress, ~60% of which were induced. Genes encoding heat shock proteins, transcription factors and protein cleavage enzymes were induced, whereas genes encoding proteins associated with electron flow, photosynthesis, glycolysis, cell wall synthesis and secondary metabolism were generally repressed under heat stress. Cultivar differences for the expression profiles of a subset of heat-responsive genes analysed using quantitative PCR over a 7-h heat stress period were associated with expression level changes rather than the presence or absence of transcripts. Expression differences reflected previously determined differences for yield, photosynthesis, electron transport rate, quenching, membrane integrity and enzyme viability under growth cabinet and field-generated heat stress, and may explain cultivar differences in leaf-level heat tolerance. This study provides a platform for understanding the molecular changes associated with the physiological performance and heat tolerance of cotton cultivars that may aid breeding for improved performance in warm and hot field environments.
机译:昼夜或长时间暴露于高于植物热最适温度的空气中会损害生理性能并降低农作物产量。这项研究调查了两个具有高耐热性的高产棉(Gossypium hirsutum L.)品种对热胁迫的分子响应。使用全局基因分析,所分析的21854个基因中有575个受热胁迫影响,其中约60%的基因被诱导。诱导编码热激蛋白,转录因子和蛋白裂解酶的基因,而编码与电子流,光合作用,糖酵解,细胞壁合成和次级代谢相关的蛋白的基因通常在热胁迫下被抑制。使用定量PCR在7小时的热应激期间分析的热响应基因子集的表达谱的品种差异与表达水平变化相关,而不是与转录本的存在与否有关。表达差异反映了先前确定的在生长柜和田间产生的热胁迫下的产量,光合作用,电子传输速率,猝灭,膜完整性和酶活力的差异,并且可以解释叶片水平耐热性的品种差异。这项研究提供了一个平台,用于了解与棉花品种的生理性能和耐热性相关的分子变化,这些分子变化可能有助于育种,以改善在温暖和炎热的环境中的性能。

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