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计算糖生物学:糖基化酶的机制研究及其抑制剂设计的意义。

Computational Glycobiology: Mechanistic Studies of Carbohydrate-Active Enzymes and Implication for Inhibitor Design.

机构信息

School of Chemistry, Faculty of Science, Medicine and Health, University of Wollongong, Wollongong, NSW, Australia.

School of Chemistry, Faculty of Science, Medicine and Health, University of Wollongong, Wollongong, NSW, Australia; Centre for Medical and Molecular Bioscience, University of Wollongong, Wollongong, NSW, Australia.

出版信息

Adv Protein Chem Struct Biol. 2017;109:25-76. doi: 10.1016/bs.apcsb.2017.04.003. Epub 2017 May 19.

Abstract

Carbohydrate-active enzymes (CAZymes) are families of essential and structurally related enzymes, which catalyze the creation, modification, and degradation of glycosidic bonds in carbohydrates to maintain essentially all kingdoms of life. CAZymes play a key role in many biological processes underpinning human health and diseases (e.g., cancer, diabetes, Alzheimer's diseases, AIDS) and have thus emerged as important drug targets in the fight against pathogenesis. The realization of the full potential of CAZymes remains a significant challenge, relying on a deeper understanding of the molecular mechanisms of catalysis. Considering numerous unsettled questions in the literature, while with a large amount of structural, kinetic, and mutagenesis data available for CAZymes, there is a pressing need and an abundant opportunity for collaborative computational and experimental investigations with the aim to unlock the secrets of CAZyme catalysis at an atomic level. In this review, we briefly survey key methodology development in computational studies of CAZyme catalysis. This is complemented by selected case studies highlighting mechanistic insights provided by computational glycobiology. Implication for inhibitor design by mimicking the transition state is also illustrated for both glycoside hydrolases and glycosyltransferases. The challenges for such studies will be noted and finally an outlook for future directions will be provided.

摘要

碳水化合物活性酶(CAZymes)是一系列必需的、结构相关的酶,能够催化糖苷键在碳水化合物中的生成、修饰和降解,从而维持生命的基本所有领域。CAZymes 在许多支撑人类健康和疾病(如癌症、糖尿病、阿尔茨海默病、艾滋病)的生物学过程中发挥着关键作用,因此已成为对抗发病机制的重要药物靶点。要充分发挥 CAZymes 的潜力仍然是一个重大挑战,需要更深入地了解催化的分子机制。考虑到文献中存在许多悬而未决的问题,尽管有大量的结构、动力学和诱变数据可用于 CAZymes,但仍迫切需要和大量机会开展合作的计算和实验研究,旨在从原子水平上揭示 CAZyme 催化的秘密。在这篇综述中,我们简要地概述了 CAZyme 催化计算研究中的关键方法学发展。同时,还通过选择的案例研究强调了计算糖生物学提供的机制见解。还说明了通过模拟过渡态对糖苷水解酶和糖基转移酶进行抑制剂设计的应用。将指出此类研究的挑战,并最终提供未来方向的展望。

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