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首页> 外文期刊>Journal of Computer-Aided Molecular Design >Insight into microtubule destabilization mechanism of 3,4,5-trimethoxyphenyl indanone derivatives using molecular dynamics simulation and conformational modes analysis
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Insight into microtubule destabilization mechanism of 3,4,5-trimethoxyphenyl indanone derivatives using molecular dynamics simulation and conformational modes analysis

机译:利用分子动力学模拟和构象模式分析,深入了解3,4,5-三甲氧基苯基吲哚酮衍生物的微管稳定机理

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摘要

Colchicine site inhibitors are microtubule destabilizers having promising role in cancer therapeutics. In the current study, four such indanone derivatives (t1, t9, t14 and t17) with 3,4,5-trimethoxyphenyl fragment (ring A) and showing significant microtubule destabilization property have been explored. The interaction mechanism and conformational modes triggered by binding of these indanone derivatives and combretastatin at colchicine binding site (CBS) of alpha beta-tubulin dimer were studied using molecular dynamics (MD) simulation, principle component analysis and free energy landscape analysis. In the MD results, t1 showed binding similar to colchicine interacting in the deep hydrophobic core at the CBS. While t9, t14 and t17 showed binding conformation similar to combretastatin, with ring A superficially binding at the CBS. Results demonstrated that ring A played a vital role in binding via hydrophobic interactions and got anchored between the S8 and S9 sheets, H8 helix and T7 loop at the CBS. Conformational modes study revealed that twisting and bending conformational motions (as found in the apo system) were nearly absent in the ligand bound systems. Absence of twisting motion might causes loss of lateral contacts in microtubule, thus promoting microtubule destabilization. This study provides detailed account of microtubule destabilization mechanism by indanone ligands and combretastatin, and would be helpful for designing microtubule destabilizers with higher activity.
机译:血氯化氨酸位点抑制剂是微管稳定剂,其在癌症治疗中具有有希望的作用。在目前的研究中,已经探讨了具有3,4,5-三甲氧基苯基片段(环A)并显示出显着的微管稳定性的茚满酮衍生物(T1,T9,T14和T17)。使用分子动力学(MD)模拟,原理分析分析和自由能景观分析,研究了通过αβ-微管蛋白二聚体的Colcanicine结合位点(CBS)的结合而引发的相互作用机理和构象模式。在MD结果中,T1显示与在CBS的深疏水芯中相互作用的结合。虽然T9,T14和T17显示了与彗塔替代肽相似的结合构象,但在CBS处具有环状结合。结果证明,环A通过疏水相互作用在结合中发挥了至关重要的作用,并在CBS的S8和S9纸张,H8螺旋和T7环之间锚定。构象模式研究表明,在配体结合系统中几乎不存在扭曲和弯曲构象运动(如APO系统中的发现)。没有扭曲运动可能导致微管中的横向接触丧失,从而促进微管稳定化。本研究通过吲哚酮配体和组合和组合蛋白酶提供了微管稳定机制的详细描述,并且有助于设计具有更高活动的微管稳定剂。

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