Structural pierce into molecular mechanism underlying Clostridium perfringens Epsilon toxin function

被引:25
作者
Khalili, Saeed [1 ]
Jahangiri, Abolfazl [1 ]
Hashemi, Zahra Sadat [2 ]
Khalesi, Bahman [3 ]
Mard-Soltani, Maysam [4 ]
Amani, Jafar [1 ]
机构
[1] Baqiyatallah Univ Med Sci, Appl Microbiol Res Ctr, Molla Sadra Str, Tehran 193955487, Iran
[2] Univ Tehran Med Sci, Sch Adv Med Technol, Dept Med Biotechnol, Tehran, Iran
[3] Razi Vaccine & Serum Res Inst, Poultry Viral Vaccines Res & Prod Dept, Karaj, Iran
[4] Dezful Univ Med Sci, Sch Paramed, Dept Lab Sci, Dezful, Iran
关键词
Clostridium perfringens; Epsilon toxin; Structure modeling; Molecular dynamics; Protein docking; RAFT-ASSOCIATED PROTEIN; DNA VACCINE; DYNAMICS; PORE; TOXICITY; MUTANT; IDENTIFICATION; SIMULATIONS; EXPRESSION; SOLVATION;
D O I
10.1016/j.toxicon.2017.01.010
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Epsilon toxin of the Clostridium perfringens garnered a lot of attention due to its potential for toxicity in humans, extreme potency for cytotoxicity in mice and lack of any approved therapeutics prescribed for human. However, the intricacies of the Epsilon toxin action mechanism are yet to be understood. In this regard, various in silico tools have been exploited to model and refine the 3D structure of the toxin and its two receptors. The receptor proteins were embedded into designed lipid membranes within an aqueous and ionized environment. Thereafter, the modeled structures subjected to series of consecutive molecular dynamics runs to achieve the most natural like coordination for each model. Ultimately, protein-protein interaction analyses were performed to understand the probable action mechanism. The obtained results successfully confirmed the accuracy of employed methods to achieve high quality models for the toxin and its receptors within their lipid bilayers. Molecular dynamics analyses lead the structures to a more native like coordination. Moreover, the results of previous empirical studies were confirmed, while new insights for action mechanisms including the detailed roles of Hepatitis A virus cellular receptor 1 (HAVCR1) and Myelin and lymphocyte protein (MAL) proteins were achieved. In light of previous and our observations, we suggested novel models which elucidated the existing interplay between potential players of Epsilon toxin action mechanism with detailed structural evidences. These models would pave the way to have more robust understanding of the Epsilon toxin biology, more precise vaccine construction and more successful drug (inhibitor) design. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:90 / 99
页数:10
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