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Energy Signaling in the Regulation of Gene Expression during Stress

机译:应激中基因表达调控中的能量信号传递

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摘要

Maintenance of homeostasis is pivotal to all forms of life. In the case of plants, homeostasis is constantly threatened by the inability to escape environmental fluctuations, and therefore sensitive mechanisms must have evolved to allow rapid perception of environmental cues and concomitant modification of growth and developmental patterns for adaptation and survival. Re-establishment of homeostasis in response to environmental perturbations requires reprogramming of metabolism and gene expression to shunt energy sources from growth-related biosynthetic processes to defense, acclimation, and, ultimately, adaptation. Failure to mount an initial ‘emergency’ response may result in nutrient deprivation and irreversible senescence and cell death. Early signaling events largely determine the capacity of plants to orchestrate a successful adaptive response. Early events, on the other hand, are likely to be shared by different conditions through the generation of similar signals and before more specific responses are elaborated. Recent studies lend credence to this hypothesis, underpinning the importance of a shared energy signal in the transcriptional response to various types of stress. Energy deficiency is associated with most environmental perturbations due to their direct or indirect deleterious impact on photosynthesis and/or respiration. Several systems are known to have evolved for monitoring the available resources and triggering metabolic, growth, and developmental decisions accordingly. In doing so, energy-sensing systems regulate gene expression at multiple levels to allow flexibility in the diversity and the kinetics of the stress response.
机译:维持体内平衡对于所有形式的生活至关重要。就植物而言,体内稳态一直受到无法逃避环境波动的威胁,因此必须发展出敏感的机制,以使人们能够迅速感知环境线索,并伴随着生长和发育模式的改变,以适应和生存。为了响应环境干扰而重新建立动态平衡,需要对代谢和基因表达进行重新编程,以将能源从与生长相关的生物合成过程中转移到防御,适应和最终适应方面。未能做出初始“紧急”反应可能会导致营养缺乏,不可逆的衰老和细胞死亡。早期的信号事件很大程度上决定了植物协调成功的适应性反应的能力。另一方面,早期事件很可能在生成更具体的响应之前,通过生成相似信号在不同条件下共享。最近的研究为这一假设提供了依据,从而支持了在各种压力的转录反应中共享能量信号的重要性。能量缺乏与大多数环境扰动有关,因为它们对光合作用和/或呼吸有直接或间接的有害影响。已知已经开发出几种系统来监视可用资源并相应地触发新陈代谢,生长和发育决策。在这种情况下,能量传感系统可以在多个水平上调节基因表达,从而在应激反应的多样性和动力学方面具有灵活性。

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  • 来源
    《Molecular Plant》 |2010年第2期|p.300-313|共14页
  • 作者

    Elena Baena-González;

  • 作者单位

    To whom correspondence should be addressed. E-mail;

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  • 原文格式 PDF
  • 正文语种 eng
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