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酶催化卤化反应的分子机制。

Molecular mechanisms of enzyme-catalysed halogenation.

作者信息

Anderson J L Ross, Chapman Stephen K

机构信息

School of Chemistry, University of Edinburgh, West Mains Road, Edinburgh, UK.

出版信息

Mol Biosyst. 2006 Aug;2(8):350-7. doi: 10.1039/b607813c. Epub 2006 Jun 30.

Abstract

Since their discovery, halogenated metabolites have been somewhat of a biological peculiarity and it is only now that we are beginning to realize the full extent of their medicinal value. With the exception of the well characterized haloperoxidases, most of the biosynthetic enzymes and mechanisms responsible for the halogenations have remained elusive. The crystal structures of two functionally diverse halogenases have been recently solved, providing us with new and exciting mechanistic detail. This new insight has the potential to be used both in the development of biomimetic halogenation catalysts and in engineering halogenases, and related enzymes, to halogenate new substrates. Interestingly, these new structures also illustrate how the evolution of these enzymes mirrors that of the monooxygenases, where the cofactor is selected for its ability to generate a powerful oxygenating species. In this highlight article we will examine the proposed catalytic mechanisms of the halogenases and how these relate to their structures. In addition, we will consider how this chemistry might be harnessed and developed to produce novel enzymatic activity.

摘要

自卤代代谢物被发现以来,它们在生物学上一直有些独特之处,直到现在我们才开始充分认识到它们的药用价值。除了特征明确的卤过氧化物酶外,大多数负责卤化反应的生物合成酶和机制仍然不明。最近解析了两种功能不同的卤化酶的晶体结构,为我们提供了新的、令人兴奋的机制细节。这一新见解有可能用于仿生卤化催化剂的开发以及对卤化酶和相关酶进行工程改造,以卤化新的底物。有趣的是,这些新结构还说明了这些酶的进化如何反映单加氧酶的进化,在单加氧酶中,辅因子因其产生强大氧化物种的能力而被选择。在这篇亮点文章中,我们将研究卤化酶的催化机制及其与结构的关系。此外,我们将考虑如何利用和开发这种化学反应以产生新的酶活性。

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