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通过对接和相关突变分析预测模块化聚酮合酶的结构域间相互作用。

Prediction of inter domain interactions in modular polyketide synthases by docking and correlated mutation analysis.

机构信息

National Institute of Immunology, Aruna Asaf Ali Marg, New Delhi, 110067, India.

出版信息

J Biomol Struct Dyn. 2013;31(1):17-29. doi: 10.1080/07391102.2012.691342. Epub 2012 Jul 18.

Abstract

Polyketide synthases (PKSs) are huge multi-enzymatic protein complexes involved in the biosynthesis of one of the largest families of bioactive natural products, namely polyketides. The specificity of interactions between various catalytic domains of these megasynthases is one of the pivotal factors which control the precise order in which the extender units are joined during the biosynthetic process. Hence, understanding the molecular details of protein-protein interactions in the PKS megasynthases would be crucial for rational design of novel polyketides by domain swapping experiments involving engineered combinations of PKS catalytic domains. We have developed a computational method for exploring the binding interface between two proteins, and used it to identify the interacting residue pairs, which govern the specificity of recognition between acyl carrier protein (ACP) domain and two core catalytic domains, namely the ketosynthase (KS) and acyl transferase (AT). Both of these domain interactions i.e. the KS-ACP and the AT-ACP, are likely to play a major role in channelling of substrates and control of specificity during polyketide biosynthesis. The method, called interface scan, uses a combination of geometric docking and evolutionary information for the identification of the most appropriate mode of association between two proteins. The parameters of interface scan have been standardized based on analysis of contacts in the crystal structure of ACP in complex with ACP synthase (AcpS). Many of the contacts predicted for PKS domains are in agreement with available experiments.

摘要

聚酮合酶(PKSs)是参与生物合成最大的生物活性天然产物家族之一聚酮的巨大多酶蛋白复合物。这些巨型合酶的各种催化结构域之间相互作用的特异性是控制生物合成过程中延伸单元连接精确顺序的关键因素之一。因此,了解 PKS 巨型合酶中蛋白质-蛋白质相互作用的分子细节对于通过涉及工程改造的 PKS 催化结构域组合的结构域交换实验理性设计新型聚酮至关重要。我们开发了一种用于探索两种蛋白质之间结合界面的计算方法,并使用该方法确定了控制酰基载体蛋白(ACP)结构域与两个核心催化结构域,即酮合酶(KS)和酰基转移酶(AT)之间特异性识别的相互作用残基对。这两种结构域相互作用,即 KS-ACP 和 AT-ACP,很可能在聚酮生物合成过程中对底物的通道化和特异性控制发挥主要作用。该方法称为界面扫描,它结合了几何对接和进化信息来识别两种蛋白质之间最合适的结合模式。界面扫描的参数是基于 ACP 与 ACP 合酶(AcpS)复合物中 ACP 的晶体结构分析接触来标准化的。许多预测的 PKS 结构域的接触与现有实验结果一致。

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