人Katanin六聚体对β-微管蛋白同型c端尾的差异结合亲和力的分子观察。

IF 1.6
Purva Khodke, Vibhuti Saxena, Pruthanka Patil, Bajarang Vasant Kumbhar
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引用次数: 0

摘要

Katanin是一种微管切断酶,对细胞分裂、迁移、信号传导和细胞稳态等细胞过程至关重要。Katanin是一种由p60和p80组成的异二聚体蛋白,在微管刺激下表现出atp酶活性,并在切断过程中负责去除微管蛋白亚基。这种切断功能需要将katanin组装成六聚体复合体。先前的研究表明,katanin对β-微管蛋白同型的c端尾(cts)具有差异的结合亲和力。然而,人类katanin六聚体与不同β-微管蛋白同型的相互作用动力学-特别是在各种癌症中过度表达的β-微管蛋白-在原子水平上仍然知之甚少。在本研究中,我们采用同源性建模、对接和分子动力学模拟的方法,研究了人角朊六聚体与β-微管蛋白5种同型(βI、βIIa、βIII、βIVb和βV)的CTTs的结合行为。我们的研究结果表明,卡他蛋白六聚体与每个同型表现出不同的相互作用模式,这归因于它们在ctt中的序列特异性变化。详细的MD分析,包括旋转半径、溶剂可及表面积、氢键、主成分分析和自由能景观分析,进一步支持了相互作用动力学中的这些同型特异性差异。结合自由能计算表明,六聚体对βIIa的亲和力最高,其次是βIII、βIVb和βV,与βI的相互作用最弱。这些计算的见解强调了人类角朊六聚体对β-微管蛋白CTTs的异构体特异性结合偏好的机制,强调了它们在特异性β-微管蛋白同型上调的癌症背景下治疗靶向的潜在意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular Insights Into the Differential Binding Affinity of Human Katanin Hexamer for C-Terminal Tails of β-Tubulin Isotypes.

Katanin is a microtubule-severing enzyme critical for cellular processes such as cell division, migration, signaling, and cellular homeostasis. Katanin, a heterodimeric protein composed of p60 and p80, exhibits ATPase activity that is stimulated by microtubules and is responsible for removing tubulin subunits during severing. This severing function requires the assembly of katanin into a hexameric complex. Previous studies have demonstrated that katanin has a differential binding affinity towards C-terminal tails (CTTs) of β-tubulin isotypes. However, the interaction dynamics of human katanin hexamer with different β-tubulin isotypes-especially those overexpressed in various carcinomas-remain poorly understood at the atomic level. In this study, we employed homology modeling, docking, and molecular dynamics simulations to examine the binding behavior of the human katanin hexamer with the CTTs of five β-tubulin isotypes, which include βI, βIIa, βIII, βIVb, and βV. Our findings reveal that the katanin hexamer exhibits distinct interaction patterns with each isotype, attributed to their sequence-specific variations in the CTTs. Detailed MD analyses, including radius of gyration, solvent-accessible surface area, hydrogen bonding, principal component analysis, and free energy landscape profiling, further support these isoform-specific differences in the interaction dynamics. Moreover, binding free energy calculations indicate that the hexamer shows the highest affinity for βIIa, followed by βIII, βIVb, and βV, with the weakest interaction observed for βI. These computational insights underscore the mechanism of isoform-specific binding preferences of the human katanin hexamer toward β-tubulin CTTs, highlighting their potential implications for therapeutic targeting in cancer contexts where specific β-tubulin isotypes are upregulated.

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