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蛋白质酪氨酸磷酸酶1B的结构分析揭示了潜在的可成药变构结合位点。

Structural analysis of protein tyrosine phosphatase 1B reveals potentially druggable allosteric binding sites.

作者信息

Kumar Ammu Prasanna, Nguyen Minh N, Verma Chandra, Lukman Suryani

机构信息

Department of Chemistry, College of Arts and Sciences, Khalifa University of Science and Technology, Abu Dhabi, United Arab Emirates.

Bioinformatics Institute, Agency for Science, Technology and Research, Singapore.

出版信息

Proteins. 2018 Mar;86(3):301-321. doi: 10.1002/prot.25440. Epub 2018 Jan 3.

Abstract

Catalytic proteins such as human protein tyrosine phosphatase 1B (PTP1B), with conserved and highly polar active sites, warrant the discovery of druggable nonactive sites, such as allosteric sites, and potentially, therapeutic small molecules that can bind to these sites. Catalyzing the dephosphorylation of numerous substrates, PTP1B is physiologically important in intracellular signal transduction pathways in diverse cell types and tissues. Aberrant PTP1B is associated with obesity, diabetes, cancers, and neurodegenerative disorders. Utilizing clustering methods (based on root mean square deviation, principal component analysis, nonnegative matrix factorization, and independent component analysis), we have examined multiple PTP1B structures. Using the resulting representative structures in different conformational states, we determined consensus clustroids and used them to identify both known and novel binding sites, some of which are potentially allosteric. We report several lead compounds that could potentially bind to the novel PTP1B binding sites and can be further optimized. Considering the possibility for drug repurposing, we discovered homologous binding sites in other proteins, with ligands that could potentially bind to the novel PTP1B binding sites.

摘要

催化蛋白,如人类蛋白酪氨酸磷酸酶1B(PTP1B),具有保守且高度极性的活性位点,这使得发现可成药的非活性位点(如变构位点)以及潜在的能与这些位点结合的治疗性小分子成为可能。PTP1B催化多种底物的去磷酸化,在多种细胞类型和组织的细胞内信号转导途径中具有重要的生理意义。PTP1B异常与肥胖、糖尿病、癌症和神经退行性疾病相关。利用聚类方法(基于均方根偏差、主成分分析、非负矩阵分解和独立成分分析),我们研究了多个PTP1B结构。使用不同构象状态下得到的代表性结构,我们确定了共有聚类中心,并利用它们来识别已知和新的结合位点,其中一些可能是变构位点。我们报告了几种可能与新的PTP1B结合位点结合且可进一步优化的先导化合物。考虑到药物重新利用的可能性,我们在其他蛋白质中发现了同源结合位点,其配体可能与新的PTP1B结合位点结合。

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