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前药激活肽酶的结构与功能。

Structure and function of prodrug-activating peptidases.

机构信息

Department of Molecular and Cellular Biology, Harvard University, 52 Oxford St, Cambridge, MA, 02138, USA.

Department of Chemistry and Chemical Biology, Harvard University, 38 Oxford St, Cambridge, MA, USA.

出版信息

Biochimie. 2023 Feb;205:124-135. doi: 10.1016/j.biochi.2022.07.019. Epub 2022 Nov 8.

Abstract

Bacteria protect themselves from the toxicity of antimicrobial metabolites they produce through several strategies. In one resistance mechanism, bacteria assemble a non-toxic precursor on an N-acyl-d-asparagine prodrug motif in the cytoplasm, then export it to the periplasm where a dedicated d-amino peptidase hydrolyzes the prodrug motif. These prodrug-activating peptidases contain an N-terminal periplasmic S12 hydrolase domain and C-terminal transmembrane domains (TMDs) of varying lengths: type I peptidases contain three transmembrane helices, and type II peptidases have an additional C-terminal ABC half-transporter. We review studies which have addressed the role of the TMD in function, the substrate specificity, and the biological assembly of ClbP, the type I peptidase that activates colibactin. We use modeling and sequence analyses to extend those insights to other prodrug-activating peptidases and ClbP-like proteins which are not part of prodrug resistance gene clusters. These ClbP-like proteins may play roles in the biosynthesis or degradation of other natural products, including antibiotics, may adopt different TMD folds, and have different substrate specificity compared to prodrug-activating homologs. Finally, we review the data supporting the long-standing hypothesis that ClbP interacts with transporters in the cell and that this association is important for the export of other natural products. Future investigations of this hypothesis as well as of the structure and function of type II peptidases will provide a complete account of the role of prodrug-activating peptidases in the activation and secretion of bacterial toxins.

摘要

细菌通过几种策略来保护自己免受其产生的抗菌代谢物的毒性。在一种抵抗机制中,细菌在细胞质中的 N-酰基-D-天冬酰胺前体药物模体上组装无毒前体,然后将其输出到周质,在那里专门的 D-氨基肽酶水解前体药物模体。这些前体药物激活肽酶包含一个 N 端周质 S12 水解酶结构域和长度不同的 C 端跨膜结构域 (TMD):I 型肽酶包含三个跨膜螺旋,而 II 型肽酶在 C 端具有额外的 ABC 半转运蛋白。我们综述了研究这些 TMD 在功能、底物特异性和生物组装中的作用的研究,ClbP 是激活大肠菌素的 I 型肽酶。我们使用建模和序列分析将这些见解扩展到其他不属于前体药物抗性基因簇的前体药物激活肽酶和 ClbP 样蛋白。这些 ClbP 样蛋白可能在其他天然产物(包括抗生素)的生物合成或降解中发挥作用,与前体药物激活同源物相比,它们可能采用不同的 TMD 折叠,并且具有不同的底物特异性。最后,我们综述了支持 ClbP 与细胞中的转运蛋白相互作用的长期假设的相关数据,并且这种关联对于其他天然产物的输出很重要。对该假说以及 II 型肽酶的结构和功能的未来研究将为前体药物激活肽酶在细菌毒素的激活和分泌中的作用提供完整的解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c200/10030199/fedd94a3f8ac/nihms-1878778-f0001.jpg

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本文引用的文献

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Nat Chem Biol. 2023 Feb;19(2):151-158. doi: 10.1038/s41589-022-01142-z. Epub 2022 Oct 17.
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