小型热休克蛋白、三卤糖和脂质参与了红球菌的热应力管理。

Cell Stress and Chaperones Pub Date : 2016-03-01 Epub Date: 2015-12-02 DOI:10.1007/s12192-015-0662-4
Attila Glatz, Ana-Maria Pilbat, Gergely L Németh, Katalin Vince-Kontár, Katalin Jósvay, Ákos Hunya, Andor Udvardy, Imre Gombos, Mária Péter, Gábor Balogh, Ibolya Horváth, László Vígh, Zsolt Török
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引用次数: 0

摘要

我们研究了小型热休克蛋白(sHsps)、三卤糖和脂质这三种在结构上和功能上不同的重要热保护分子在庞贝酵母(Schizosaccharomyces pombe)受热休克时的水平变化。长时间高温处理后,α-结晶素型 sHsps(Hsp15.8 和 Hsp16)都会被诱导,但其动力学特征不同。shsp无效突变体对热的敏感性较弱,但很显著,这表明它们在热应力管理中的重要性。在野生型细胞和对热敏感性高的三卤糖缺乏(tps1Δ)细胞中,sHsps的热诱导是不同的;然而,在shsp突变体中,三卤糖水平并没有发生显著变化。三卤糖积累和 sHsps 诱导时间的改变表明,二糖可能在热应激的早期阶段提供保护,而在后期阶段则需要大量的 sHsps。两种不同的温度适应野生型 S. pombe 细胞的细胞脂质组成也根据同黏适应规则发生了改变,表明它们在适应环境温度变化中起着关键作用。Hsp15.8和Hsp16都能与从S. pombe中分离出来的不同脂质结合,它们之间的相互作用可能会对热引起的膜损伤提供强有力的保护。我们的数据表明,所研究的三种热保护大分子在裂殖酵母的热应力管理过程中都发挥了关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Involvement of small heat shock proteins, trehalose, and lipids in the thermal stress management in Schizosaccharomyces pombe.

Changes in the levels of three structurally and functionally different important thermoprotectant molecules, namely small heat shock proteins (sHsps), trehalose, and lipids, have been investigated upon heat shock in Schizosaccharomyces pombe. Both α-crystallin-type sHsps (Hsp15.8 and Hsp16) were induced after prolonged high-temperature treatment but with different kinetic profiles. The shsp null mutants display a weak, but significant, heat sensitivity indicating their importance in the thermal stress management. The heat induction of sHsps is different in wild type and in highly heat-sensitive trehalose-deficient (tps1Δ) cells; however, trehalose level did not show significant alteration in shsp mutants. The altered timing of trehalose accumulation and induction of sHsps suggest that the disaccharide might provide protection at the early stage of the heat stress while elevated amount of sHsps are required at the later phase. The cellular lipid compositions of two different temperature-adapted wild-type S. pombe cells are also altered according to the rule of homeoviscous adaptation, indicating their crucial role in adapting to the environmental temperature changes. Both Hsp15.8 and Hsp16 are able to bind to different lipids isolated from S. pombe, whose interaction might provide a powerful protection against heat-induced damages of the membranes. Our data suggest that all the three investigated thermoprotectant macromolecules play a pivotal role during the thermal stress management in the fission yeast.

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