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Aqueous Molecular Dynamics Simulations of the M. tuberculosis Enoyl-ACP Reductase-NADH System and Its Complex with a Substrate Mimic or Diphenyl Ethers Inhibitors

机译:结核分枝杆菌烯酰-ACP还原酶-NADH体系及其与底物模拟物或二苯醚抑制剂的配合物的水分子动力学模拟

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Molecular dynamics (MD) simulations of 12 aqueous systems of the NADH-dependent enoyl-ACP reductase from Mycobacterium tuberculosis (InhA) were carried out for up to 20–40 ns using the GROMACS 4.5 package. Simulations of the holoenzyme, holoenzyme-substrate, and 10 holoenzyme-inhibitor complexes were conducted in order to gain more insight about the secondary structure motifs of the InhA substrate-binding pocket. We monitored the lifetime of the main intermolecular interactions: hydrogen bonds and hydrophobic contacts. Our MD simulations demonstrate the importance of evaluating the conformational changes that occur close to the active site of the enzyme-cofactor complex before and after binding of the ligand and the influence of the water molecules. Moreover, the protein-inhibitor total steric (ELJ) and electrostatic (EC) interaction energies, related to Gly96 and Tyr158, are able to explain 80% of the biological response variance according to the best linear equation, pKi = 7.772 − 0.1885 × Gly96 + 0.0517 × Tyr158 (R2 = 0.80; n = 10), where interactions with Gly96, mainly electrostatic, increase the biological response, while those with Tyr158 decrease. These results will help to understand the structure-activity relationships and to design new and more potent anti-TB drugs.
机译:使用GROMACS 4.5软件包对12种来自结核分枝杆菌(InhA)的NADH依赖性烯酰ACP还原酶的水性体系的分子动力学(MD)模拟进行了长达20–40 ns。进行了全酶,全酶底物和10种全酶抑制剂复合物的模拟,以了解InhA底物结合口袋的二级结构基序。我们监测了主要分子间相互作用的寿命:氢键和疏水性接触。我们的MD模拟表明,评估在配体结合和水分子的影响之前和之后靠近酶辅因子复合物活性位点发生的构象变化非常重要。此外,与Gly96和Tyr158相关的蛋白质抑制剂总空间(E LJ )和静电(E C )相互作用能能够解释80%的生物根据最佳线性方程的响应方差pK i = 7.772 − 0.1885×Gly96 + 0.0517×Tyr158(R 2 = 0.80; n = 10),其中与Gly96相互作用,主要是静电的,增加生物反应,而带有Tyr158的减少。这些结果将有助于理解结构-活性的关系,并设计出新的和更有效的抗结核药物。

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