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热应激转录因子作为中央分子变阻器,以优化植物对热应激的存活和恢复。

Heat stress transcription factors as the central molecular rheostat to optimize plant survival and recovery from heat stress.

机构信息

Institute of Molecular Biosciences, Plant Cell and Molecular Biology, Goethe University Frankfurt, 60438, Frankfurt am Main, Germany.

Botany Department, Faculty of Science, Ain Shams University, 11517, Cairo, Egypt.

出版信息

New Phytol. 2024 Oct;244(1):51-64. doi: 10.1111/nph.20017. Epub 2024 Jul 26.

DOI:10.1111/nph.20017
PMID:39061112
Abstract

Heat stress transcription factors (HSFs) are the core regulators of the heat stress (HS) response in plants. HSFs are considered as a molecular rheostat: their activities define the response intensity, incorporating information about the environmental temperature through a network of partner proteins. A prompted activation of HSFs is required for survival, for example the de novo synthesis of heat shock proteins. Furthermore, a timely attenuation of the stress response is necessary for the restoration of cellular functions and recovery from stress. In an ever-changing environment, the balance between thermotolerance and developmental processes such as reproductive fitness highlights the importance of a tightly tuned response. In many cases, the response is described as an ON/OFF mode, while in reality, it is very dynamic. This review compiles recent findings to update existing models about the HSF-regulated HS response and address two timely questions: How do plants adjust the intensity of cellular HS response corresponding to the temperature they experience? How does this adjustment contribute to the fine-tuning of the HS and developmental networks? Understanding these processes is crucial not only for enhancing our basic understanding of plant biology but also for developing strategies to improve crop resilience and productivity under stressful conditions.

摘要

热应激转录因子(HSFs)是植物热应激(HS)反应的核心调节剂。HSFs 被认为是分子变阻器:它们的活性决定了反应的强度,通过伴侣蛋白网络整合有关环境温度的信息。HSFs 的激活对于生存是必需的,例如热休克蛋白的从头合成。此外,及时衰减应激反应对于恢复细胞功能和从应激中恢复是必要的。在不断变化的环境中,耐热性和生殖适应性等发育过程之间的平衡突出了紧密调节反应的重要性。在许多情况下,反应被描述为 ON/OFF 模式,而实际上,它是非常动态的。本综述汇集了最近的发现,更新了关于 HSF 调节的 HS 反应的现有模型,并解决了两个及时的问题:植物如何根据其经历的温度来调整细胞 HS 反应的强度?这种调整如何有助于 HS 和发育网络的微调?了解这些过程不仅对于增强我们对植物生物学的基本理解至关重要,而且对于制定策略以提高作物在胁迫条件下的弹性和生产力也至关重要。

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