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蛋白水解加工诱导了一个构象开关,这是抗菌毒素传递所必需的。

Proteolytic processing induces a conformational switch required for antibacterial toxin delivery.

机构信息

Department of Chemistry and Biochemistry, University of California, Santa Barbara, CA, USA.

Midwest Center for Structural Genomics, Argonne National Laboratory, Lemont, IL, USA.

出版信息

Nat Commun. 2022 Aug 29;13(1):5078. doi: 10.1038/s41467-022-32795-y.

Abstract

Many Gram-negative bacteria use CdiA effector proteins to inhibit the growth of neighboring competitors. CdiA transfers its toxic CdiA-CT region into the periplasm of target cells, where it is released through proteolytic cleavage. The N-terminal cytoplasm-entry domain of the CdiA-CT then mediates translocation across the inner membrane to deliver the C-terminal toxin domain into the cytosol. Here, we show that proteolysis not only liberates the CdiA-CT for delivery, but is also required to activate the entry domain for membrane translocation. Translocation function depends on precise cleavage after a conserved VENN peptide sequence, and the processed ∆VENN entry domain exhibits distinct biophysical and thermodynamic properties. By contrast, imprecisely processed CdiA-CT fragments do not undergo this transition and fail to translocate to the cytoplasm. These findings suggest that CdiA-CT processing induces a critical structural switch that converts the entry domain into a membrane-translocation competent conformation.

摘要

许多革兰氏阴性菌使用 CdiA 效应蛋白来抑制邻近竞争者的生长。CdiA 将其毒性的 CdiA-CT 区域转移到靶细胞的周质中,在那里通过蛋白水解切割释放。然后,CdiA-CT 的 N 端细胞质进入域介导穿过内膜的易位,将 C 端毒素域递送到细胞质中。在这里,我们表明蛋白水解不仅释放了用于递送的 CdiA-CT,而且对于进入域的膜易位激活也是必需的。易位功能取决于在保守的 VENN 肽序列之后进行精确切割,并且处理后的 ∆VENN 进入域表现出不同的生物物理和热力学特性。相比之下,不精确处理的 CdiA-CT 片段不会经历这种转变,并且无法易位到细胞质中。这些发现表明,CdiA-CT 加工诱导了关键的结构转换,将进入域转化为具有膜易位能力的构象。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9602/9424206/c84a1ece6627/41467_2022_32795_Fig1_HTML.jpg

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