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嗜热菌的应激反应生理学。

Stress response physiology of thermophiles.

作者信息

Ranawat Preeti, Rawat Seema

机构信息

Department of Botany and Microbiology, Hemvati Nandan Bahuguna Garhwal University, Srinagar (Garhwal), Uttrakhand, India.

出版信息

Arch Microbiol. 2017 Apr;199(3):391-414. doi: 10.1007/s00203-016-1331-4. Epub 2017 Jan 17.

DOI:10.1007/s00203-016-1331-4
PMID:28097384
Abstract

Thermo (or hyperthermo) philic microorganisms are ubiquitous having a wide range of habitats from freshly fallen snow to pasteurized milk to geothermal areas like hot springs. The variations in physicochemical conditions, viz., temperature, pH, nutrient availability and light intensity in the habitats always pose stress conditions for the inhabitants leading to slow growth or cell death. The industrial processes used for harvesting secondary metabolites such as enzymes, toxins and organic acids also create stressed environments for thermophiles. The production of DNA-binding proteins, activation of reactive oxygen species detoxification system, compatible solute accumulation, expression of heat shock proteins and alterations in morphology are a few examples of physiological changes demonstrated by these microscopic lifeforms in stress. These microorganisms exhibit complex genetic and physiological changes to minimize, adapt to and repair damage caused by extreme environmental disturbances. These changes are termed as 'stress responses' which enable them to stabilize their homeostasis. The exploration of important thermophilic factors would pave the way in engineering the microbial strains for various biotechnological applications. This review article presents a picture of physiological responses of thermophiles against various stress conditions as their mechanisms to respond to stress make them model organisms to further explore them for basic and applied biology purposes.

摘要

嗜热(或超嗜热)微生物无处不在,其栖息地范围广泛,从新降的雪到巴氏杀菌牛奶,再到温泉等地热区域。栖息地中物理化学条件的变化,即温度、pH值、养分可用性和光照强度,总是给栖息生物带来压力条件,导致生长缓慢或细胞死亡。用于收获酶、毒素和有机酸等次级代谢产物的工业过程也会给嗜热菌创造压力环境。产生DNA结合蛋白、激活活性氧解毒系统、积累相容性溶质、表达热休克蛋白以及形态改变,是这些微观生命形式在压力下所表现出的一些生理变化实例。这些微生物表现出复杂的遗传和生理变化,以最小化、适应和修复由极端环境干扰造成的损害。这些变化被称为“应激反应”,使它们能够稳定体内平衡。探索重要的嗜热因素将为工程改造用于各种生物技术应用的微生物菌株铺平道路。这篇综述文章展示了嗜热菌对各种压力条件的生理反应情况,因为它们应对压力的机制使它们成为用于基础生物学和应用生物学目的进一步探索的模式生物。

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