It's Better To Be Lucky Than Smart.

IF 12.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Annual review of biochemistry Pub Date : 2021-06-20 Epub Date: 2021-01-20 DOI:10.1146/annurev-biochem-011520-105008
H R Kaback
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引用次数: 5

Abstract

Bacterial cytoplasmic membrane vesicles provide a unique experimental system for studying active transport. Vesicles are prepared by lysis of osmotically sensitized cells (i.e., protoplasts or spheroplasts) and comprise osmotically intact, unit-membrane-bound sacs that are approximately 0.5-1.0 μm in diameter and devoid of internal structure. Their metabolic activities are restricted to those provided by the enzymes of the membrane itself, and each vesicle is functional. The energy source for accumulation of a particular substrate can be determined by studying which compounds or experimental conditions drive solute accumulation, and metabolic conversion of the transported substrate or the energy source is minimal. These properties of the vesicle system constitute a considerable advantage over intact cells, as the system provides clear definition of the reactions involved in the transport process. This discussion is not intended as a general review but is concerned with respiration-dependent active transport in membrane vesicles from Escherichia coli. Emphasis is placed on experimental observations demonstrating that respiratory energy is converted primarily into work in the form of a solute concentration gradient that is driven by a proton electrochemical gradient, as postulated by the chemiosmotic theory of Peter Mitchell.

聪明不如幸运。
细菌细胞质膜囊泡为研究主动转运提供了一个独特的实验系统。囊泡是通过裂解渗透致敏细胞(即原生质体或球质体)制备的,由渗透性完整的、单位膜结合的囊泡组成,直径约为0.5-1.0 μm,没有内部结构。它们的代谢活动受限于膜本身的酶提供的代谢活动,并且每个囊泡都是功能性的。特定底物积累的能量来源可以通过研究哪些化合物或实验条件驱动溶质积累来确定,并且运输的底物或能量来源的代谢转换是最小的。囊泡系统的这些特性与完整细胞相比具有相当大的优势,因为该系统对运输过程中涉及的反应提供了清晰的定义。本文的讨论不是一般性的综述,而是关于大肠杆菌膜囊中呼吸依赖的主动转运。重点放在实验观察上,证明呼吸能量主要以溶质浓度梯度的形式转化为功,这是由质子电化学梯度驱动的,正如彼得·米切尔的化学渗透理论所假设的那样。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Annual review of biochemistry
Annual review of biochemistry 生物-生化与分子生物学
CiteScore
33.90
自引率
0.00%
发文量
31
期刊介绍: The Annual Review of Biochemistry, in publication since 1932, sets the standard for review articles in biological chemistry and molecular biology. Since its inception, these volumes have served as an indispensable resource for both the practicing biochemist and students of biochemistry.
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