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水气交换的守护者:气孔发育与模式形成的适应性动力学

Guardians of Water and Gas Exchange: Adaptive Dynamics of Stomatal Development and Patterning.

作者信息

Giannoutsou Eleni, Adamakis Ioannis-Dimosthenis S, Samakovli Despina

机构信息

Section of Botany, Biology Department, National and Kapodistrian University of Athens, 15701 Athens, Greece.

出版信息

Plants (Basel). 2025 Aug 3;14(15):2405. doi: 10.3390/plants14152405.

Abstract

Stomata, highly specialized structures that evolved on the aerial surfaces of plants, play a crucial role in regulating hydration, mitigating the effects of abiotic stress. Stomatal lineage development involves a series of coordinated events, such as initiation, stem cell proliferation, and cell fate determination, ultimately leading to the differentiation of guard cells. While core transcriptional regulators and signaling pathways controlling stomatal cell division and fate determination have been characterized over the past twenty years, the molecular mechanisms linking stomatal development to dynamic environmental cues remain poorly understood. Therefore, stomatal development is considered an active and compelling frontier in plant biology research. On the one hand, this review aims to provide an understanding of the molecular networks governing stomatal ontogenesis, which relies on the activation and function of the transcription factors SPEECHLESS (SPCH), MUTE, and FAMA; the EPF-TMM and ERECTA receptor systems; and downstream MAPK signaling. On the other hand, it synthesizes current discoveries of how hormonal signaling pathways regulate stomatal development in response to environmental changes. As the climate crisis intensifies, the understanding of the complex interplay between stress stimuli and key factors regulating stomatal development may reveal key mechanisms that enhance plant resilience under adverse environmental conditions.

摘要

气孔是在植物地上表面进化出的高度特化结构,在调节水分平衡、减轻非生物胁迫影响方面发挥着关键作用。气孔谱系发育涉及一系列协调事件,如起始、干细胞增殖和细胞命运决定,最终导致保卫细胞分化。尽管在过去二十年中已经鉴定出控制气孔细胞分裂和命运决定的核心转录调节因子和信号通路,但将气孔发育与动态环境线索联系起来的分子机制仍知之甚少。因此,气孔发育被认为是植物生物学研究中一个活跃且引人注目的前沿领域。一方面,本综述旨在阐述控制气孔发生的分子网络,这依赖于转录因子无口(SPCH)、沉默(MUTE)和法玛(FAMA)的激活与功能;EPF-TMM和ERECTA受体系统;以及下游的MAPK信号传导。另一方面,它综合了当前关于激素信号通路如何响应环境变化调节气孔发育的发现。随着气候危机加剧,对胁迫刺激与调节气孔发育的关键因子之间复杂相互作用的理解,可能揭示出在不利环境条件下增强植物恢复力的关键机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db74/12349482/11c689184efb/plants-14-02405-g001.jpg

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