选择性 HDAC8 抑制的关键结构理解:选择性 HDAC8 抑制剂的常见药理、分子对接、分子动力学和锌粘合剂分析。

IF 1.9 4区 医学 Q3 CHEMISTRY, MEDICINAL
Kakali Sarkar, Sudhan Debnath, Debanjan Sen, Supratik Kar, Samir Kumar Sil
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引用次数: 0

摘要

背景:近几十年来,抑制 HDAC8 已成为一种有前景的治疗方法:本综述旨在通过分析66种已知选择性HDAC8抑制剂的结构支架及其对HDAC8和其他HDACs的IC50值,促进新型选择性HDAC8抑制剂的发现:方法:根据结构对称性对抑制剂进行聚类,并使用相位法确定每个聚类的共同药理作用。与所有 HDACs 进行分子对接,以确定结合亲和力和抑制 HDAC8 的关键相互作用残基。对每个群组中具有代表性的抑制剂进行了分子动力学模拟,以分析RMSD、RMSF、活性位点氨基酸残基以及抑制HDAC8的关键相互作用残基。研究回顾了所有 HDAC 的活性位点氨基酸信息、活性位点空腔以及 Zn2+ 结合基团的基本结构:结果:发现的常见药效基团包括 AADHR_1、AADDR_1、ADDR_1、ADHHR_1 和 AADRR_1。分子对接分析发现了关键的相互作用残基:主口袋中的 HIS- 142、GLY-151、HIS-143、PHE-152 和 PHE-20,以及次口袋中的 ARG-37、TYR-100、TYR-111 和 TYR-306。根据 MD 轨迹确定的稳定蛋白质配体的蛋白质 RMSD 和活性位点氨基酸残基 RMSF 分别小于 2.4 Å 和 1.0 Å。根据 MD 轨迹预测的分子力学广义玻恩表面积 (MMGBSA) ΔG 范围在 -15.8379 Å 和 -61.5017 Å kcal/mol 之间:结论:这些发现可能会加快选择性 HDAC8 抑制剂的快速发现,并对其进行实验评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crucial Structural Understanding for Selective HDAC8 Inhibition: Common Pharmacophores, Molecular Docking, Molecular Dynamics, and Zinc Binder Analysis of selective HDAC8 inhibitors.

Background: Overexpression of HDAC8 was observed in various cancers and inhibition of HDAC8 has emerged as a promising therapeutic approach in recent decades.

Objective: This review aims to facilitate the discovery of novel selective HDAC8 inhibitors by analyzing the structural scaffolds of 66 known selective HDAC8 inhibitors, along with their IC50 values against HDAC8 and other HDACs.

Methods: The inhibitors were clustered based on structural symmetry, and common pharmacophores for each cluster were identified using Phase. Molecular docking with all HDACs was performed to determine binding affinity and crucial interacting residues for HDAC8 inhibition. Representative inhibitors from each cluster were subjected to molecular dynamics simulation to analyze RMSD, RMSF, active site amino acid residues, and crucial interacting residues responsible for HDAC8 inhibition. The study reviewed the active site amino acid information, active site cavities of all HDACs, and the basic structure of Zn2+ binding groups.

Results: Common pharmacophores identified included AADHR_1, AADDR_1, ADDR_1, ADHHR_1, and AADRR_1. Molecular docking analysis revealed crucial interacting residues: HIS- 142, GLY-151, HIS-143, PHE-152, PHE-20 in the main pocket, and ARG-37, TYR-100, TYR-111, TYR-306 in the secondary pocket. The RMSD of protein and RMSF of active site amino acid residues for stable protein-ligand complexes were less than 2.4 Å and 1.0 Å, respectively, as identified from MD trajectories. The range of Molecular Mechanics Generalized Born Surface Area (MMGBSA) ΔG predicted from MD trajectories was between -15.8379 Å and -61.5017 Å kcal/mol.

Conclusion: These findings may expedite the rapid discovery of selective HDAC8 inhibitors subject to experimental evaluation.

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来源期刊
Medicinal Chemistry
Medicinal Chemistry 医学-医药化学
CiteScore
4.30
自引率
4.30%
发文量
109
审稿时长
12 months
期刊介绍: Aims & Scope Medicinal Chemistry a peer-reviewed journal, aims to cover all the latest outstanding developments in medicinal chemistry and rational drug design. The journal publishes original research, mini-review articles and guest edited thematic issues covering recent research and developments in the field. Articles are published rapidly by taking full advantage of Internet technology for both the submission and peer review of manuscripts. Medicinal Chemistry is an essential journal for all involved in drug design and discovery.
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