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极端条件下的生物能量学与溶质摄取

Bioenergetics and solute uptake under extreme conditions.

作者信息

Albers S V, Van de Vossenberg J L, Driessen A J, Konings W N

机构信息

Department of Microbiology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Kerklaan 30, 9751 NN Haren, The Netherlands.

出版信息

Extremophiles. 2001 Oct;5(5):285-94. doi: 10.1007/s007920100214.

Abstract

The ion and particularly the proton and sodium ion permeabilities of cytoplasmic membranes play crucial roles in the bioenergetics of microorganisms. The proton and sodium permeabilities of membranes increase with temperature. Psychrophilic and mesophilic bacteria and mesophilic, (hyper)thermophilic, and halophilic archaea are capable of adjusting the lipid composition of their membranes in such a way that the proton permeability at the respective growth temperature remains constant (homeoproton permeability). Thermophilic bacteria are an exception. They rely on the less permeable sodium ions to generate a sodium motive force, which is subsequently used to drive energy-requiring membrane-bound processes. Transport of solutes across bacterial and archaeal membranes is mainly catalyzed by primary ATP-driven transport systems or by proton- or sodium-motive-force-driven secondary transport systems. Unlike most bacteria, hyperthermophilic bacteria and archaea prefer primary uptake systems. Several high-affinity ATP-binding cassette (ABC) transporters for sugars from hyperthermophiles have been identified and characterized. The activities of these ABC transporters allow these organisms to thrive in their nutrient-poor environments.

摘要

细胞质膜的离子通透性,特别是质子和钠离子通透性,在微生物的生物能量学中起着关键作用。膜的质子和钠离子通透性随温度升高而增加。嗜冷菌和嗜温菌以及嗜温、(超)嗜热和嗜盐古菌能够以这样一种方式调节其膜的脂质组成,即在各自的生长温度下质子通透性保持恒定(同源质子通透性)。嗜热菌是个例外。它们依靠通透性较低的钠离子来产生钠动力势,随后该动力势被用于驱动需要能量的膜结合过程。溶质跨细菌和古菌膜的运输主要由初级ATP驱动的运输系统或由质子或钠动力势驱动的次级运输系统催化。与大多数细菌不同,超嗜热菌和古菌更喜欢初级摄取系统。已经鉴定并表征了几种来自超嗜热菌的用于糖类的高亲和力ATP结合盒(ABC)转运蛋白。这些ABC转运蛋白的活性使这些生物体能够在营养贫乏的环境中茁壮成长。

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