Deciphering the Vulnerability of Pollen to Heat Stress for Securing Crop Yields in a Warming Climate.

IF 6 1区 生物学 Q1 PLANT SCIENCES
Neeta Lohani, Mohan B Singh, Prem L Bhalla
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Abstract

Climate change is leading to more frequent and severe extreme temperature events, negatively impacting agricultural productivity and threatening global food security. Plant reproduction, the process fundamental to crop yield, is highly susceptible to heatwaves, which disrupt pollen development and ultimately affect seed-set and crop yields. Recent research has increasingly focused on understanding how pollen grains from various crops react to heat stress at the molecular and cellular levels. This surge in interest over the last decade has been driven by advances in genomic technologies, such as single-cell RNA sequencing, which holds significant potential for revealing the underlying regulatory reprogramming triggered by heat stress throughout the various stages of pollen development. This review focuses on how heat stress affects gene regulatory networks, including the heat stress response, the unfolded protein response, and autophagy, and discusses the impact of these changes on various stages of pollen development. It highlights the potential of pollen selection as a key strategy for improving heat tolerance in crops by leveraging the genetic variability among pollen grains. Additionally, genome-wide association studies and population screenings have shed light on the genetic underpinnings of traits in major crops that respond to high temperatures during male reproductive stages. Gene-editing tools like CRISPR/Cas systems could facilitate precise genetic modifications to boost pollen heat resilience. The information covered in this review is valuable for selecting traits and employing molecular genetic approaches to develop heat-tolerant genotypes.

破译花粉对热胁迫的脆弱性,以确保气候变暖下的作物产量。
气候变化导致极端温度事件更加频繁和严重,对农业生产力产生负面影响,并威胁到全球粮食安全。植物繁殖是作物产量的基础过程,极易受到热浪的影响,热浪会破坏花粉发育,最终影响结实率和作物产量。最近的研究越来越关注于了解不同作物花粉粒在分子和细胞水平上对热胁迫的反应。在过去的十年中,这种兴趣的激增是由基因组技术的进步所驱动的,例如单细胞RNA测序,它具有揭示花粉发育各个阶段由热胁迫引发的潜在调节重编程的巨大潜力。本文综述了热胁迫对花粉基因调控网络的影响,包括热胁迫反应、未折叠蛋白反应和自噬,并讨论了这些变化对花粉发育各个阶段的影响。这突出了花粉选择作为利用花粉粒间遗传变异性提高作物耐热性的关键策略的潜力。此外,全基因组关联研究和种群筛选揭示了主要作物在雄性生殖阶段对高温作出反应的性状的遗传基础。像CRISPR/Cas系统这样的基因编辑工具可以促进精确的基因修改,以提高花粉的耐热性。本文综述的信息对利用分子遗传方法选育耐热基因型具有一定的参考价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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