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谷胱甘肽在大肠杆菌周质氧化还原平衡和氧化蛋白折叠中的作用。

The role of glutathione in periplasmic redox homeostasis and oxidative protein folding in Escherichia coli.

机构信息

Ruhr University Bochum, Institute of Biochemistry and Pathobiochemistry, Microbial Biochemistry, Bochum, Germany.

Institute of Biochemistry, Centre for Human and Molecular Biology (ZHMB), Saarland University, 66123, Saarbrücken, Germany.

出版信息

Redox Biol. 2023 Aug;64:102800. doi: 10.1016/j.redox.2023.102800. Epub 2023 Jun 26.

Abstract

The thiol redox balance in the periplasm of E. coli depends on the DsbA/B pair for oxidative power and the DsbC/D system as its complement for isomerization of non-native disulfides. While the standard redox potentials of those systems are known, the in vivo "steady state" redox potential imposed onto protein thiol disulfide pairs in the periplasm remains unknown. Here, we used genetically encoded redox probes (roGFP2 and roGFP-iL), targeted to the periplasm, to directly probe the thiol redox homeostasis in this compartment. These probes contain two cysteine residues that are virtually completely reduced in the cytoplasm, but once exported into the periplasm, can form a disulfide bond, a process that can be monitored by fluorescence spectroscopy. Even in the absence of DsbA, roGFP2, exported to the periplasm, was almost fully oxidized, suggesting the presence of an alternative system for the introduction of disulfide bonds into exported proteins. However, the absence of DsbA shifted the steady state periplasmic thiol-redox potential from -228 mV to a more reducing -243 mV and the capacity to re-oxidize periplasmic roGFP2 after a reductive pulse was significantly decreased. Re-oxidation in a DsbA strain could be fully restored by exogenous oxidized glutathione (GSSG), while reduced GSH accelerated re-oxidation of roGFP2 in the WT. In line, a strain devoid of endogenous glutathione showed a more reducing periplasm, and was significantly worse in oxidatively folding PhoA, a native periplasmic protein and substrate of the oxidative folding machinery. PhoA oxidative folding could be enhanced by the addition of exogenous GSSG in the WT and fully restored in a ΔdsbA mutant. Taken together this suggests the presence of an auxiliary, glutathione-dependent thiol-oxidation system in the bacterial periplasm.

摘要

大肠杆菌周质中的硫醇氧化还原平衡依赖于 DsbA/B 对提供氧化能力,以及 DsbC/D 系统作为其非天然二硫键异构化的补充。虽然这些系统的标准氧化还原电位是已知的,但周质中蛋白质硫醇二硫键对的体内“稳态”氧化还原电位仍然未知。在这里,我们使用遗传编码的氧化还原探针(roGFP2 和 roGFP-iL),靶向周质,直接探测该隔室中的硫醇氧化还原平衡。这些探针包含两个半胱氨酸残基,在细胞质中几乎完全还原,但一旦被运送到周质,就可以形成二硫键,这一过程可以通过荧光光谱监测。即使在没有 DsbA 的情况下,运送到周质的 roGFP2 几乎完全被氧化,这表明存在替代系统将二硫键引入到输出的蛋白质中。然而,缺乏 DsbA 将周质的稳态硫醇氧化还原电位从 -228 mV 转移到更还原的 -243 mV,并且重新氧化还原脉冲后周质 roGFP2 的能力显著降低。在 DsbA 菌株中,外源性氧化型谷胱甘肽(GSSG)可以完全恢复重新氧化,而还原型谷胱甘肽(GSH)在 WT 中加速了 roGFP2 的重新氧化。与此一致,缺乏内源性谷胱甘肽的菌株显示出更还原的周质,并且在氧化折叠 PhoA 方面明显较差,PhoA 是一种天然的周质蛋白和氧化折叠机制的底物。在 WT 中,添加外源性 GSSG 可以增强 PhoA 的氧化折叠,并且在 DsbA 突变体中可以完全恢复。综上所述,这表明细菌周质中存在一种辅助的、依赖谷胱甘肽的硫醇氧化系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec50/10344953/6541ee308948/gr1.jpg

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