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首页> 外文期刊>Journal of Molecular Biology >Structure of a C. perfringens enterotoxin mutant in complex with a modified claudin-2 extracellular loop 2
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Structure of a C. perfringens enterotoxin mutant in complex with a modified claudin-2 extracellular loop 2

机译:产气荚膜梭菌肠毒素突变体与修饰的claudin-2细胞外环2复合体的结构。

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摘要

CPE (Clostridium perfringens enterotoxin) is the major virulence determinant for C. perfringens type-A food poisoning, the second most common bacterial food-borne illness in the UK and USA. After binding to its receptors, which include particular human claudins, the toxin forms pores in the cell membrane. The mature pore apparently contains a hexamer of CPE, claudin and, possibly, occludin. The combination of high binding specificity with cytotoxicity has resulted in CPE being investigated, with some success, as a targeted cytotoxic agent for oncotherapy. In this paper, we present the X-ray crystallographic structure of CPE in complex with a peptide derived from extracellular loop 2 of a modified, CPE-binding Claudin-2, together with high-resolution native and pore-formation mutant structures. Our structure provides the first atomic-resolution data on any part of a claudin molecule and reveals that claudin's CPE-binding fingerprint (NPLVP) is in a tight turn conformation and binds, as expected, in CPE's C-terminal claudin-binding groove. The leucine and valine residues insert into the binding groove while the first residue, asparagine, tethers the peptide via an interaction with CPE's aspartate 225 and the two prolines are required to maintain the tight turn conformation. Understanding the structural basis of the contribution these residues make to binding will aid in engineering CPE to target tumor cells.
机译:CPE(产气荚膜梭菌肠毒素)是产气荚膜梭菌A型食物中毒的主要毒力决定因素,这是英国和美国第二大最常见的细菌性食源性疾病。与包含特定人类claudin的受体结合后,毒素在细胞膜上形成孔。成熟的孔显然包含CPE的六聚体,claudin和可能的occludin。高结合特异性与细胞毒性的结合已导致对CPE进行研究,并作为肿瘤治疗的靶向细胞毒剂取得了一些成功。在本文中,我们介绍了CPE的X射线晶体结构,该肽与衍生自修饰的CPE结合型Claudin-2的细胞外环2的肽复合,并具有高分辨率的天然和孔形成突变体结构。我们的结构提供了claudin分子任何部分的第一个原子分辨率数据,并揭示claudin的CPE结合指纹(NPLVP)呈紧密转弯构象,并按预期的方式结合在CPE的C端claudin结合槽中。亮氨酸和缬氨酸残基插入结合槽中,而第一个残基天冬酰胺通过与CPE天门冬氨酸225的相互作用而束缚肽,需要两个脯氨酸来维持转弯构象。了解这些残基对结合的贡献的结构基础将有助于工程CPE靶向肿瘤细胞。

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