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Molecular dynamics simulations reveal structural insights into inhibitor binding modes and mechanism of casein kinase II inhibitors

机译:分子动力学模拟揭示酪蛋白激酶II抑制剂抑制剂结合模式和机理的结构见解

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摘要

Casein kinase-II, a member of protein kinase family, plays significant role in different cellular processes such as cell growth, differentiation, proliferation, gene expression, and embryogenesis. Being a potent suppressor of apoptosis, it serves as a significant link for its association with various types of malignancies such as colorectal and breast cancer. To overcome its pathological role in various cancerous diseases, CK-II procures great consideration as a therapeutic target. This study aimed at understanding the binding mechanism and structural properties of benzimidazole derivatives by utilizing various computational tools including docking simulation, three-dimensional quantitative structure activity relationships and molecular dynamic simulation. Structure-based 3D-QSAR techniques such as CoMFA and CoMSIA models, were established from the conformations gained by protein-ligand docking approach. The attained models have showed a good extrapolative power for internal as well as external validation. Moreover, MD simulation was carried out to explain the detailed binding mechanism and the comparison of inhibitor's binding mode with diverse biological activities. A good correlation was observed among docking studies, MD results, and contour map analysis. Interestingly new molecules were designed using detail structural information from MD simulation, showed higher potency of inhibition (pIC5o 7.6-7.7) compare to the most active compound of the series.
机译:酪蛋白激酶-II,蛋白激酶家族的成员,在不同的细胞过程中起重要作用,例如细胞生长,分化,增殖,基因表达和胚胎发生。作为细胞凋亡的有效抑制,它用作其与各种类型的恶性肿瘤如结肠直肠癌和乳腺癌的关联的重要环节。克服其在各种癌症疾病中的病理作用,CK-II可获得伟大的考虑作为治疗目标。该研究旨在通过利用包括对接模拟,三维定量结构活动关系和分子动态模拟的各种计算工具来了解苯并咪唑衍生物的结合机制和结构性质。基于结构的3D QSAR技术,例如COMFA和COMSIA模型,从通过蛋白质配体对接方法获得的构象建立。达到的模型对内部以及外部验证表现出良好的外推权力。此外,进行了MD模拟以解释具有多种生物活性的详细结合机制和抑制剂结合模式的比较。在对接研究,MD结果和轮廓图分析中观察到良好的相关性。使用来自MD模拟的细节结构信息设计有趣的新分子,显示出与该系列最活跃的化合物相比的抑制效力较高(PIC5O 7.6-7.7)。

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