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将交联呋喃修饰的 kisspeptin-10 与 KISS 受体结合。

Cross-Linking Furan-Modified Kisspeptin-10 to the KISS Receptor.

作者信息

Vannecke Willem, Ampe Christophe, Van Troys Marleen, Beltramo Massimiliano, Madder Annemieke

机构信息

Organic and Biomimetic Chemistry Research Group, Ghent University , Krijgslaan 281 S4, B-9000 Ghent, Belgium.

Department of Biochemistry, Faculty of Medicine and Health Sciences, Ghent University , B-9000 Ghent, Belgium.

出版信息

ACS Chem Biol. 2017 Aug 18;12(8):2191-2200. doi: 10.1021/acschembio.7b00396. Epub 2017 Jul 17.

Abstract

Chemical cross-linking is well-established for investigating protein-protein interactions. Traditionally, photo cross-linking is used but is associated with problems of selectivity and UV toxicity in a biological context. We here describe, with live cells and under normal growth conditions, selective cross-linking of a furan-modified peptide ligand to its membrane-presented receptor with zero toxicity, high efficiency, and spatio-specificity. Furan-modified kisspeptin-10 is covalently coupled to its glycosylated membrane receptor, GPR54(KISS1R). This newly expands the applicability of furan-mediated cross-linking not only to protein-protein cross-linking but also to cross-linking in situ. Moreover, in our earlier reports on nucleic acid interstrand cross-linking, furan activation required external triggers of oxidation (via addition of N-bromo succinimide or singlet oxygen). In contrast, we here show, for multiple cell lines, the spontaneous endogenous oxidation of the furan moiety with concurrent selective cross-link formation. We propose that reactive oxygen species produced by NADPH oxidase (NOX) enzymes form the cellular source establishing furan oxidation.

摘要

化学交联在研究蛋白质-蛋白质相互作用方面已得到广泛应用。传统上使用光交联,但在生物学环境中存在选择性和紫外线毒性问题。我们在此描述,在活细胞和正常生长条件下,呋喃修饰的肽配体与其膜上呈现的受体进行选择性交联,具有零毒性、高效率和空间特异性。呋喃修饰的 kisspeptin-10 与它的糖基化膜受体 GPR54(KISS1R)共价偶联。这不仅将呋喃介导的交联的适用性扩展到蛋白质-蛋白质交联,还扩展到原位交联。此外,在我们早期关于核酸链间交联的报道中,呋喃活化需要外部氧化触发因素(通过添加 N-溴代琥珀酰亚胺或单线态氧)。相比之下,我们在此表明,对于多种细胞系,呋喃部分会自发进行内源性氧化并同时形成选择性交联。我们提出,由NADPH氧化酶(NOX)产生的活性氧物种构成了导致呋喃氧化的细胞来源。

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