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铜伴侣蛋白 CopZ 是荚膜红细菌铜稳态所必需的,并且影响细胞色素 cbb 氧化酶的组装。

The Cu chaperone CopZ is required for Cu homeostasis in Rhodobacter capsulatus and influences cytochrome cbb oxidase assembly.

机构信息

Faculty of Medicine, Institut für Biochemie und Molekularbiologie, ZBMZ, Albert-Ludwigs-Universität Freiburg, Stefan-Meier-Strasse 17, Freiburg, 79104, Germany.

Fakultät für Biologie, Albert-Ludwigs-Universität Freiburg, Freiburg, 79104, Germany.

出版信息

Mol Microbiol. 2019 Mar;111(3):764-783. doi: 10.1111/mmi.14190. Epub 2019 Jan 31.

DOI:10.1111/mmi.14190
PMID:30582886
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6417943/
Abstract

Cu homeostasis depends on a tightly regulated network of proteins that transport or sequester Cu, preventing the accumulation of this toxic metal while sustaining Cu supply for cuproproteins. In Rhodobacter capsulatus, Cu-detoxification and Cu delivery for cytochrome c oxidase (cbb -Cox) assembly depend on two distinct Cu-exporting P -type ATPases. The low-affinity CopA is suggested to export excess Cu and the high-affinity CcoI feeds Cu into a periplasmic Cu relay system required for cbb -Cox biogenesis. In most organisms, CopA-like ATPases receive Cu for export from small Cu chaperones like CopZ. However, whether these chaperones are also involved in Cu export via CcoI-like ATPases is unknown. Here we identified a CopZ-like chaperone in R. capsulatus, determined its cellular concentration and its Cu binding activity. Our data demonstrate that CopZ has a strong propensity to form redox-sensitive dimers via two conserved cysteine residues. A ΔcopZ strain, like a ΔcopA strain, is Cu-sensitive and accumulates intracellular Cu. In the absence of CopZ, cbb -Cox activity is reduced, suggesting that CopZ not only supplies Cu to P -type ATPases for detoxification but also for cuproprotein assembly via CcoI. This finding was further supported by the identification of a ~150 kDa CcoI-CopZ protein complex in native R. capsulatus membranes.

摘要

铜稳态依赖于一个严格调控的蛋白质网络,该网络可以运输或隔离 Cu,防止这种有毒金属的积累,同时为 cuproproteins 提供 Cu 供应。在荚膜红细菌中,Cu 解毒和细胞色素 c 氧化酶 (cbb -Cox) 组装的 Cu 供应依赖于两种不同的 Cu 输出 P 型 ATP 酶。低亲和力的 CopA 被认为可以输出多余的 Cu,而高亲和力的 CcoI 将 Cu 输送到 cbb -Cox 生物发生所需的周质 Cu 接力系统中。在大多数生物体中,CopA 样 ATP 酶从 CopZ 等小 Cu 伴侣蛋白接收用于输出的 Cu。然而,这些伴侣蛋白是否也参与通过 CcoI 样 ATP 酶进行 Cu 输出尚不清楚。在这里,我们在荚膜红细菌中鉴定了一种 CopZ 样伴侣蛋白,测定了其细胞浓度及其 Cu 结合活性。我们的数据表明,CopZ 通过两个保守的半胱氨酸残基强烈倾向于形成氧化还原敏感的二聚体。ΔcopZ 菌株与 ΔcopA 菌株一样对 Cu 敏感并在细胞内积累 Cu。在没有 CopZ 的情况下,cbb -Cox 活性降低,这表明 CopZ 不仅为 P 型 ATP 酶提供 Cu 以进行解毒,而且还通过 CcoI 为 cuproprotein 组装提供 Cu。这一发现得到了在天然荚膜红细菌膜中鉴定出的~150 kDa CcoI-CopZ 蛋白复合物的进一步支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc3e/6417943/54a1eb2c7461/nihms-1003739-f0008.jpg
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