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探索助溶剂包裹的灰黄霉素药物与γ-微管蛋白的结合位点及结合机制。

Exploring the binding sites and binding mechanism for hydrotrope encapsulated griseofulvin drug on γ-tubulin protein.

作者信息

Das Shubhadip, Paul Sandip

机构信息

Department of Chemistry, Indian Institute of Technology Guwahati, Guwahati, Assam, India.

出版信息

PLoS One. 2018 Jan 11;13(1):e0190209. doi: 10.1371/journal.pone.0190209. eCollection 2018.

Abstract

The protein γ-tubulin plays an important role in centrosomal clustering and this makes it an attractive therapeutic target for treating cancers. Griseofulvin, an antifungal drug, has recently been used to inhibit proliferation of various types of cancer cells. It can also affect the microtubule dynamics by targeting the γ-tubulin protein. So far, the binding pockets of γ-tubulin protein are not properly identified and the exact mechanism by which the drug binds to it is an area of intense speculation and research. The aim of the present study is to investigate the binding mechanism and binding affinity of griseofulvin on γ-tubulin protein using classical molecular dynamics simulations. Since the drug griseofulvin is sparingly soluble in water, here we also present a promising approach for formulating and achieving delivery of hydrophobic griseofulvin drug via hydrotrope sodium cumene sulfonate (SCS) cluster. We observe that the binding pockets of γ-tubulin protein are mainly formed by the H8, H9 helices and S7, S8, S14 strands and the hydrophobic interactions between the drug and γ-tubulin protein drive the binding process. The release of the drug griseofulvin from the SCS cluster is confirmed by the coordination number analysis. We also find hydrotrope-induced alteration of the binding sites of γ-tubulin protein and the weakening of the drug-protein interactions.

摘要

蛋白质γ-微管蛋白在中心体聚集过程中发挥着重要作用,这使其成为治疗癌症颇具吸引力的治疗靶点。灰黄霉素是一种抗真菌药物,最近已被用于抑制各类癌细胞的增殖。它还可通过作用于γ-微管蛋白来影响微管动力学。到目前为止,γ-微管蛋白的结合口袋尚未得到确切识别,药物与该蛋白结合的确切机制仍是一个备受猜测和研究的领域。本研究的目的是使用经典分子动力学模拟来研究灰黄霉素与γ-微管蛋白的结合机制和结合亲和力。由于灰黄霉素药物在水中的溶解度很低,在此我们还提出了一种很有前景的方法,即通过助溶剂异丙苯磺酸钠(SCS)簇来配制和实现疏水性灰黄霉素药物的递送。我们观察到,γ-微管蛋白的结合口袋主要由H8、H9螺旋以及S7、S8、S14链形成,药物与γ-微管蛋白之间的疏水相互作用驱动了结合过程。通过配位数分析证实了灰黄霉素药物从SCS簇中的释放。我们还发现助溶剂诱导γ-微管蛋白结合位点发生改变以及药物与蛋白相互作用减弱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d36/5764265/8d88b2d8ccdb/pone.0190209.g005.jpg

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