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Role of an Electrical Potential in the Coupling of Metabolic Energy to Active Transport by Membrane Vesicles of Escherichia coli

机译:电势在代谢能量与大肠杆菌膜囊泡主动转运的耦合中的作用

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摘要

Membrane vesicles from E. coli can oxidize D-lactate and other substrates and couple respiration to the active transport of sugars and amino acids. The present experiments bear on the nature of the link between respiration and transport.Respiring vesicles were found to accumulate dibenzyldimethylammonium ion, a synthetic lipid-soluble cation that serves as an indicator of an electrical potential. The results suggest that oxidation of D-lactate generates a membrane potential, vesicle interior negative, of the order of -100 mV. In vesicles lacking substrate, an electrical potential was created by induction of electrogenic efflux of K+ with the aid of the K+ ionophores, valinomycin and monactin. These conditions induced transient accumulation by the vesicles of [14C]proline and other metabolites. Experiments with inhibitors and ionophores indicate that neither ATP nor the respiratory chain is involved; the electrical potential generated by K+ efflux is coupled directly to the transport systems. The results verify two predictions derived from Mitchell's chemiosmotic hypothesis: respiring vesicles generate an electrical potential of the proper polarity and magnitude; and a membrane potential is in itself sufficient to drive the active transport of amino acids and other metabolites.
机译:大肠杆菌的膜囊泡可氧化D-乳酸和其他底物,并将呼吸作用与糖和氨基酸的主动转运相结合。本实验基于呼吸和运输之间的联系性质。发现呼吸小泡会积聚二苄基二甲基铵离子,这是一种合成的脂溶性阳离子,可作为电势的指标。结果表明,D-乳酸的氧化产生了膜电位,囊泡内部为负,约为-100 mV。在缺乏底物的囊泡中,借助于K + 离子载体,缬氨霉素和莫纳汀诱导K + 的电外排产生电势。这些条件诱导了[ 14 C]脯氨酸和其他代谢物的囊泡短暂积累。用抑制剂和离子载体进行的实验表明,ATP和呼吸链均不参与。 K + 外流产生的电势直接耦合到传输系统。结果证实了从米切尔的化学渗透假说得出的两个预测:呼吸小泡产生正确极性和大小的电势;膜电位本身足以驱动氨基酸和其他代谢物的主动转运。

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