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A Deep Dive into the Conformational Dynamics of CYP3A4 Understanding the Binding of Homotropic and Non-homotropic Ligands for Mitigating Drug-Drug interaction (DDI)

机译:深入研究CYP3A4的构象动力学理解同型和非同性恋配体的结合,以减轻药物 - 药物相互作用(DDI)

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摘要

Cytochrome P450 (CYP) enzymes are well known for metabolism of drugs. The present study attempts to understand the homotropic cooperativity of CYP3A4 inhibitor Ketoconazole (KLN) and the plasticity of the active site upon binding to different drug chemotypes. To understand this, molecular dynamic (MD) simulation studies of four systems of CYP3A4 have been undertaken followed by structural analysis of the crystallographic structures bound to five drug molecules. Unlike earlier reports, our study revealed that the region following helix F and G - helix H and preceding I- exhibited RMSF values in the range of 4-6 A. The binding pattern of inhibitors may involve an initial binding at the peripheral site followed by their coordination with heme. Binding of KLN at the heme binding site was energetically more stable as compared to the KLN bound at other positions. The number of non-bonded interactions appeared to increase between the ligands and the CYP3A4 residues when both the sites were occupied. Involvement of hydrophobic residues (I300, I301, F304, A305, T309) increased during the homotropic cooperativity of ligands. Binding of the ligand at the heme binding site followed by binding at the peripheral site induces homo cooperativity effect. We also report here that 3D volume occupancy of ligands determines the phenomenon of homotropic versus non-homotropic effect which was observed from the binding mode analysis of KLN (homotropic ligand) and Ritonavir (non-homotropic ligand).
机译:细胞色素P450(CYP)酶以药物代谢而闻名。本研究试图了解CYP3A4抑制剂酮康唑(KLN)的同型合作性以及与不同药物化学型结合后,活性位点的可塑性。为了理解这一点,已经进行了四个CYP3A4系统的分子动力学(MD)模拟研究,然后对结合五个药物分子结合的晶体学结构进行结构分析。与较早的报道不同,我们的研究表明,螺旋F和G-g-Helix H和先前I-在4-6 A范围内显示RMSF值的区域A。抑制剂的结合模式可能涉及外周部位的初始结合,然后在他们与血红素的协调。与其他位置的KLN相比,KLN在血红素结合位点的结合在能量上更稳定。当两个位点被占据时,配体和CYP3A4残基之间的非键相互作用的数量似乎增加了。在配体的同型合作期间,疏水残基(I300,I301,F304,A305,T309)的参与增加。配体在血红素结合位点的结合,然后在周围位点结合诱导同性合作效应。我们还在这里报告说,配体的3D体积占用率决定了同型与非摩托体效应的现象,这是从KLN(同型配体)和利托纳维尔(非荷疗法)的结合模式分析中观察到的。

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  • 来源
    《Chemistry Select》 |2022年第17期|共10页
  • 作者单位

    High Performance Computing - Medical and Bioinformatics Applications Group, Centre for Development of Advanced Computing, C-DAC Innovation Park, Panchawati, Pashan, Pune 411 008, India;

    Lupin Limited (Research Park), Nande Village, Pune-412115, India;

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  • 正文语种 英语
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