Understanding Pollen Behaviour under High Temperature for Climate Resilient Breeding

Aisha Renju N.A, Roy Stephen
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Abstract

Global warming raise challenges for plant reproduction as pollen development and functioning are the most heat-sensitive processes. Hence, it is crucial to understand the mechanisms and processes underlying heat-related male sterility in order to maintain food security. Elevated temperatures elicit acclimation responses that permit pollen development under restricted heat stress conditions; physiological injury leading to pollen development and functioning failure occurs at higher temperature stress. Pollen and the surrounding anther tissues respond to increased temperature at the transcriptome, proteome, and metabolome levels. To counteract the damaging effect of misfolded proteins under heat stress, HSPs (Heat Shock Proteins) accumulate in the cytoplasm and organelles to stabilize, resolubilize, and refold proteins. The pathways leading to the production of carbohydrates, amino acids, phenolic compounds, polyamines, hormones and lipids are interconnected and contribute to the metabolic homeostasis required for the growth and viability of the pollen. The pathways leading to the production of carbohydrates, amino acids, phenolic compounds, polyamines, hormones and lipids are interconnected and contribute to the metabolic homeostasis required for growth and viability of the pollen. Using molecular markers to access specific genomic regions associated with a specific trait along with QTL (Quantitative Trait Loci) fine mapping can identify several candidate genes associated with thermo-tolerance.  A deep understanding of the molecular mechanisms and metabolic processes involved in the stress response to high temperatures in flowers and particularly in the male reproductive organs will be a major step towards developing of effective breeding strategies for high and stable production in crop plants.
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了解花粉在高温下的行为,促进适应气候的育种工作
全球变暖给植物繁殖带来了挑战,因为花粉的发育和功能是对热最敏感的过程。因此,了解与热有关的雄性不育的基本机制和过程对于维护粮食安全至关重要。温度升高会引起适应反应,使花粉在有限的热胁迫条件下得以发育;温度胁迫越高,生理损伤越严重,导致花粉发育和功能失效。花粉和周围的花药组织会在转录组、蛋白质组和代谢组水平上对温度升高做出反应。为了抵消热胁迫下错误折叠蛋白质的破坏作用,HSP(热休克蛋白)会在细胞质和细胞器中积累,以稳定、溶解和重新折叠蛋白质。产生碳水化合物、氨基酸、酚类化合物、多胺、激素和脂质的途径相互关联,有助于花粉生长和存活所需的代谢平衡。生产碳水化合物、氨基酸、酚类化合物、多胺、激素和脂质的途径相互关联,有助于花粉生长和存活所需的代谢平衡。利用分子标记访问与特定性状相关的特定基因组区域,并进行 QTL(定量性状位点)精细绘图,可以确定与耐热性相关的多个候选基因。 深入了解花卉尤其是雄性生殖器官对高温的应激反应所涉及的分子机制和代谢过程,将是为作物高产稳产制定有效育种战略的重要一步。
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