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粪肠球菌中的ATP驱动钠泵。

ATP-driven sodium pump in Streptococcus faecalis.

作者信息

Heefner D L, Harold F M

出版信息

Proc Natl Acad Sci U S A. 1982 May;79(9):2798-802. doi: 10.1073/pnas.79.9.2798.

Abstract

Sodium extrusion by bacteria is generally attributed to secondary antiport of Na+ for H+ energized by the proton circulation. Streptococcus faecalis is an exception, in that sodium expulsion from intact cells requires the generation of ATP but does not depend on the protonmotive force. Unfortunately, studies with everted membrane vesicles failed to reveal the expected sodium pump; instead, the vesicles contained a conventional secondary Na+/H+ antiporter. We report here that everted membrane vesicles prepared in the presence of protease inhibitors retain an ATP-driven sodium transport system. The evidence includes the findings that (i) accumulation of 22Na+ by these vesicles is resistant to reagents that dissipate the protonmotive force but requires ATP and (ii) the vesicles contain a sodium-stimulated ATPase that is distinct from F1F0 ATPase, and whose presence is correlated with sodium transport activity. Sodium movements appear to be electroneutral and are accompanied by movement of H+ in the opposite direction. When membranes are incubated in the absence of protease inhibitors, a secondary Na+/H+ antiport activity emerges, possibly by degradation of the sodium pump. We suggest that S. faecalis expels Na+ by means of an ATP-driven primary transport system that mediates exchange of Na+ for H+. The Na+/H+ antiporter seen in earlier membrane preparation is an artefact of proteolytic degradation.

摘要

细菌排出钠通常归因于由质子循环提供能量的 Na⁺与 H⁺的继发性反向转运。粪肠球菌是个例外,因为完整细胞排出钠需要生成 ATP,但不依赖质子动力。遗憾的是,对外翻膜囊泡的研究未能揭示预期的钠泵;相反,这些囊泡含有一种常规的继发性 Na⁺/H⁺反向转运体。我们在此报告,在蛋白酶抑制剂存在下制备的外翻膜囊泡保留了一种由 ATP 驱动的钠转运系统。证据包括以下发现:(i) 这些囊泡对耗散质子动力的试剂具有抗性,但需要 ATP 才能积累²²Na⁺;(ii) 囊泡含有一种与 F₁F₀ ATP 酶不同的钠刺激型 ATP 酶,其存在与钠转运活性相关。钠的移动似乎是电中性的,并且伴随着 H⁺向相反方向的移动。当在没有蛋白酶抑制剂的情况下孵育膜时,可能由于钠泵的降解而出现继发性 Na⁺/H⁺反向转运活性。我们认为粪肠球菌通过一种由 ATP 驱动的初级转运系统排出 Na⁺,该系统介导 Na⁺与 H⁺的交换。早期膜制备中看到的 Na⁺/H⁺反向转运体是蛋白水解降解的产物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/21ad/346293/42deac62c322/pnas00448-0065-a.jpg

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