Combined Classical and Flooding Molecular Dynamics Simulations of The Mip-Rapamycin and FKBP12-Rapamycin Complexes

E. Widjajakusuma, Monica Frederica, Kornelius Kaweono
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引用次数: 0

Abstract

Macrophage infectivity potentiator (Mip) protein, an essential virulence factor encoded by pathogenic bacteria such as Legionella pneumophila, arises as an interesting new therapeutic target for novel antimicrobials. However, Mip- ligands also interact with FKBP12 protein, a human FKBP exhibiting immunosuppressive effects. Therefore, these ligands are unsuitable antibiotics. Understanding the dynamics and conformations of proteins in the binding pocket is important to predict binding properties and to design new binders for different FKBPs. We performed the 40 ns combined classical and flooding molecular dynamics simulations using additional flooding potential for Mip-rapamycin and FKBP12-rapamycin complexes. Both complexes have different flexibilities and dihedral angle principal component analysis calculated from MD trajectories. As a result, the Mip-rapamycin complex had more conformations than the FKBP12-rapamycin complex. These different features of both complexes at the binding pocket will provide new dues for the design of selective inhibitors of Mip proteins
Mip-Rapamycin 和 FKBP12-Rapamycin 复合物的经典和淹没联合分子动力学模拟
巨噬细胞感染性增效因子(Mip)蛋白是嗜肺军团菌等病原菌编码的一种重要毒力因子,是新型抗菌药物的一个有趣的新治疗靶点。然而,Mip 配体也与 FKBP12 蛋白相互作用,后者是一种具有免疫抑制作用的人类 FKBP。因此,这些配体不适合作为抗生素。了解蛋白质在结合袋中的动态和构象对于预测结合特性和为不同的 FKBP 设计新的结合剂非常重要。我们使用额外的淹没势对 Mip- 拉帕霉素和 FKBP12- 拉帕霉素复合物进行了 40 ns 的经典和淹没分子动力学模拟。这两种复合物具有不同的挠性,并根据 MD 轨迹计算出二面角主成分分析。因此,Mip-拉帕霉素复合物比 FKBP12-拉帕霉素复合物有更多的构象。两种复合物在结合口袋处的这些不同特征将为设计 Mip 蛋白的选择性抑制剂提供新的线索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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36
审稿时长
17 weeks
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