应激诱导的转录激活。

W. Mager, A. D. Kruijff
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引用次数: 345

摘要

活细胞,无论是原核生物还是真核生物,都利用特定的感觉和信号系统从环境中获取和传递信息,以调节细胞的代谢、生长和发育以适应环境的变化。触发这种分子通讯的外部因素包括营养物质、离子、药物和其他化合物,以及温度和压力等物理参数。人们可以把施加在细胞上的压力看作是对正常生长条件的任何干扰,甚至是对最佳生长环境的任何偏离。区分具体的和一般的压力情况可能是值得的。从这个角度推理,广泛研究的热应激反应一方面是细胞在超优温度挑战下的特定反应。这种反应利用了在正常蛋白质折叠和周转过程中发挥作用的复杂的陪伴机制。这种反应主要是为了保护和修复细胞成分,部分是为了获得耐热性。此外,热应激条件与其他代谢不良环境(如氧化应激或渗透应激)导致生理扰动一样,会引起一般反应。此外,很明显,必需营养素的限制,如葡萄糖或酵母的氨基酸,导致了这样的代谢反应。一般反应的目的可能是促进从紧张状态中迅速恢复并恢复正常生长。本文综述了细胞受到胁迫时基因表达的变化,重点介绍了所涉及的转录因子、它们的同源启动子元件以及它们在胁迫信号转导中的活性调节。关于热休克引起的变化,原核生物和真核生物,包括酵母,都有丰富的信息。就一般(代谢)应激反应的概念而言,主要关注的是酿酒酵母。
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Stress-induced transcriptional activation.
Living cells, both prokaryotic and eukaryotic, employ specific sensory and signalling systems to obtain and transmit information from their environment in order to adjust cellular metabolism, growth, and development to environmental alterations. Among external factors that trigger such molecular communications are nutrients, ions, drugs and other compounds, and physical parameters such as temperature and pressure. One could consider stress imposed on cells as any disturbance of the normal growth condition and even as any deviation from optimal growth circumstances. It may be worthwhile to distinguish specific and general stress circumstances. Reasoning from this angle, the extensively studied response to heat stress on the one hand is a specific response of cells challenged with supra-optimal temperatures. This response makes use of the sophisticated chaperoning mechanisms playing a role during normal protein folding and turnover. The response is aimed primarily at protection and repair of cellular components and partly at acquisition of heat tolerance. In addition, heat stress conditions induce a general response, in common with other metabolically adverse circumstances leading to physiological perturbations, such as oxidative stress or osmostress. Furthermore, it is obvious that limitation of essential nutrients, such as glucose or amino acids for yeasts, leads to such a metabolic response. The purpose of the general response may be to promote rapid recovery from the stressful condition and resumption of normal growth. This review focuses on the changes in gene expression that occur when cells are challenged by stress, with major emphasis on the transcription factors involved, their cognate promoter elements, and the modulation of their activity upon stress signal transduction. With respect to heat shock-induced changes, a wealth of information on both prokaryotic and eukaryotic organisms, including yeasts, is available. As far as the concept of the general (metabolic) stress response is concerned, major attention will be paid to Saccharomyces cerevisiae.
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