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Heat stress in crop plants: its nature, impacts and integrated breeding strategies to improve heat tolerance

机译:作物热应激:其性质,影响和综合育种策略,以提高耐热性

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摘要

Increasing severity of high temperature worldwide presents an alarming threat to the humankind. As evident by massive yield losses in various food crops, the escalating adverse impacts of heat stress (HS) are putting the global food as well as nutritional security at great risk. Intrinsically, plants respond to high temperature stress by triggering a cascade of events and adapt by switching on numerous stress-responsive genes. However, the complex and poorly understood mechanism of heat tolerance (HT), limited access to the precise phenotyping techniques, and above all, the substantial GxE effects offer major bottlenecks to the progress of breeding for improving HT. Therefore, focus should be given to assess the crop diversity, and targeting the adaptive/morpho-physiological traits while making selections. Equally important is the rapid and precise introgression of the HT-related gene(s)/QTLs to the heat-susceptible cultivars to recover the genotypes with enhanced HT. Therefore, the progressive tailoring of the heat-tolerant genotypes demands a rational integration of molecular breeding, functional genomics and transgenic technologies reinforced with the next-generation phenomics facilities.
机译:全球范围内日益严重的高温对人类构成了令人震惊的威胁。各种粮食作物的大量减产证明,热应激(HS)日益严重的不利影响使全球粮食和营养安全面临巨大风险。本质上,植物通过触发一系列事件来响应高温胁迫,并通过打开许多胁迫响应基因来适应。然而,耐热性(HT)的机制复杂且鲜为人知,使用精确表型技术的机会有限,最重要的是,显着的GxE效应为提高HT的育种进展提供了主要瓶颈。因此,应重点评估作物多样性,并在选择时针对适应性/形态生理性状。同样重要的是,将与HT相关的基因/ QTL快速准确地渗入热敏感品种,以恢复具有增强HT的基因型。因此,对耐热基因型进行渐进式剪裁需要对分子育种,功能基因组学和转基因技术进行合理整合,并结合下一代表观学设施。

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