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在资源匮乏的环境中生存:酿酒酵母对营养可用性的适应。

Life in the midst of scarcity: adaptations to nutrient availability in Saccharomyces cerevisiae.

机构信息

Laboratory of Functional Biology, Katholieke Universiteit Leuven, Kasteelpark Arenberg 31, Box 2433, 3001 Heverlee, Belgium.

出版信息

Curr Genet. 2010 Feb;56(1):1-32. doi: 10.1007/s00294-009-0287-1.

Abstract

Cells of all living organisms contain complex signal transduction networks to ensure that a wide range of physiological properties are properly adapted to the environmental conditions. The fundamental concepts and individual building blocks of these signalling networks are generally well-conserved from yeast to man; yet, the central role that growth factors and hormones play in the regulation of signalling cascades in higher eukaryotes is executed by nutrients in yeast. Several nutrient-controlled pathways, which regulate cell growth and proliferation, metabolism and stress resistance, have been defined in yeast. These pathways are integrated into a signalling network, which ensures that yeast cells enter a quiescent, resting phase (G0) to survive periods of nutrient scarceness and that they rapidly resume growth and cell proliferation when nutrient conditions become favourable again. A series of well-conserved nutrient-sensory protein kinases perform key roles in this signalling network: i.e. Snf1, PKA, Tor1 and Tor2, Sch9 and Pho85-Pho80. In this review, we provide a comprehensive overview on the current understanding of the signalling processes mediated via these kinases with a particular focus on how these individual pathways converge to signalling networks that ultimately ensure the dynamic translation of extracellular nutrient signals into appropriate physiological responses.

摘要

所有活细胞都包含复杂的信号转导网络,以确保广泛的生理特性适应环境条件。这些信号网络的基本概念和单个组成部分从酵母到人都普遍保守;然而,在高等真核生物中,生长因子和激素在信号级联调控中的核心作用是由酵母中的营养物质来执行的。酵母中已经定义了几种营养物质调控的途径,这些途径调节细胞生长和增殖、代谢和应激抗性。这些途径被整合到一个信号网络中,该网络确保酵母细胞进入静止、休眠阶段(G0)以在营养匮乏时期存活,并在营养条件再次变得有利时迅速恢复生长和细胞增殖。一系列保守的营养感应蛋白激酶在这个信号网络中发挥关键作用:即 Snf1、PKA、Tor1 和 Tor2、Sch9 和 Pho85-Pho80。在这篇综述中,我们全面概述了这些激酶介导的信号转导过程的最新理解,特别关注这些不同途径如何汇聚到信号网络,最终确保细胞外营养信号的动态转化为适当的生理反应。

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