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与紧密连接蛋白4相互作用的细胞毒性肠毒素中涉及的氨基酸预测

prediction of amino acids involved in cCPE interaction with claudin 4.

作者信息

Sharafi Yousef, Mirhosseini Seyed Ali, Amani Jafar

机构信息

Applied Microbiology Research Center, Systems Biology and Poisonings Institute, Baqiyatallah University of Medical Sciences, Tehran, Iran.

出版信息

Vet Res Forum. 2022;13(4):501-506. doi: 10.30466/vrf.2021.527750.3161. Epub 2022 Dec 15.

Abstract

Among the 26 human claudin proteins, the food-poisoning bacterium produces an enterotoxin (~ 35.00 kDa) that specifically targets human claudin 4, causing diarrhea by fluid accumulation in the intestinal cavity. The enterotoxin (CPE) C-terminal domain (cCPE ~ 15.00 kDa) tightly binds to claudin 4 and disrupts the tight junction barriers in the intestines. In this study, we aimed to determine the contribution and type of amino acid interactions involved in association between claudin 4 and the C-terminal CPE. First, the three-dimensional format of claudin 4 was downloaded from RCSB. Then, during 60.00 nanoseconds (nsec), molecular dynamics simulation was conducted using the GROMACS package on CPE of crystallographic structure. The results indicated that the simulations performed well during the simulation times and there were no noticeable problems or artifacts. We found that Coulombic (glycine 317, proline 311 and serine 313) and Lennard-Jones (tyrosine 310, leucine 315, serine 313 and glycine 317) interactions played a significant role in complex stability. This information localized the C-terminal of CPE as a linear sequence sufficient for recognition and binding to the eukaryotic CPE receptor. A detailed description of the dissociation process brings valuable insight into the interaction of the claudin 4-cCPE complexes, which could help in the future to design more potent drugs.

摘要

在26种人类紧密连接蛋白中,这种食物中毒细菌产生一种肠毒素(约35.00 kDa),它特异性靶向人类紧密连接蛋白4,通过肠腔积液导致腹泻。肠毒素(CPE)的C末端结构域(cCPE约15.00 kDa)与紧密连接蛋白4紧密结合,并破坏肠道中的紧密连接屏障。在本研究中,我们旨在确定紧密连接蛋白4与C末端CPE结合中涉及的氨基酸相互作用的贡献和类型。首先,从RCSB下载紧密连接蛋白4的三维结构。然后,在60.00纳秒(nsec)内,使用GROMACS软件包对晶体结构的CPE进行分子动力学模拟。结果表明,模拟在模拟时间内运行良好,没有明显问题或伪影。我们发现库仑相互作用(甘氨酸317、脯氨酸311和丝氨酸313)和 Lennard-Jones相互作用(酪氨酸310、亮氨酸315、丝氨酸313和甘氨酸317)在复合物稳定性中起重要作用。这些信息将CPE的C末端定位为足以识别和结合真核CPE受体的线性序列。对解离过程的详细描述为紧密连接蛋白4-cCPE复合物的相互作用提供了有价值的见解,这可能有助于未来设计更有效的药物。

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