环氯丁羟化酶CctR揭示DUF3328是铜依赖的金属酶家族

Wentao Huang, Jakob K. Reinhardt, Anru Tian, Xiao Zhang, Binghui Li, Noah Gould, Sashirekha Nallapati, Alexander R. Ivanov, Yi Wang, Jason J. Guo, David E. Budil, Jing-Ke Weng
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引用次数: 0

摘要

DUF3328是一个广泛存在于真菌天然产物生物合成途径中的蛋白家族。虽然DUF3328蛋白长期以来一直参与惰性C(sp3)─H键的各种修饰,包括卤化,羟基化和大环化,但DUF3328蛋白的生化特性和催化机制仍不清楚。在这里,我们报道了DUF3328蛋白CctR的表征,该蛋白催化真菌环肽环氯丁的C(sp3)─H羟基化。通过AlphaFold模型、体外生化表征和光谱分析,我们证明CctR是一种膜相关的铜依赖酶,具有同型二聚体的功能。CctR的二聚化是由其跨膜螺旋、四螺旋螺旋和c端二硫键介导的。DUF3328超家族的保守的HxxHC(x)nHxxHC基序锚定在二聚化界面上,形成双核铜配位中心。此外,我们发现CctR是双氧依赖的,并且需要电子输入来进行羟基化反应。总之,这些发现将DUF3328定义为一个以前未被认识的双核铜依赖金属酶家族,能够催化多种化学转化,并为未来在这一广泛存在的酶类中发现新的生物催化剂奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cyclochlorotine Hydroxylase CctR Reveals DUF3328 as a Family of Copper-Dependent Metalloenzymes

Cyclochlorotine Hydroxylase CctR Reveals DUF3328 as a Family of Copper-Dependent Metalloenzymes

DUF3328 is a protein family widely found in fungal natural product biosynthesis pathways. Although DUF3328 proteins have long been implicated in diverse modifications of inert C(sp3)─H bonds, including halogenation, hydroxylation, and macrocyclization, the biochemical properties and catalytic mechanisms of DUF3328 proteins remain elusive. Here, we report the characterization of the DUF3328 protein CctR, which catalyzes C(sp3)─H hydroxylation of fungal cyclic peptide cyclochlorotine. Through AlphaFold modeling, in vitro biochemical characterization, and spectroscopic analysis, we demonstrate that CctR is a membrane-associated copper-dependent enzyme that functions as a homodimer. The dimerization of CctR is mediated by its transmembrane helix, a four-helix coiled coil, and C-terminal disulfide bonds. The conserved HxxHC(x)nHxxHC motif, characteristic of the DUF3328 superfamily, is anchored on the dimerization interface and forms a binuclear copper coordination center. Moreover, we show that CctR is dioxygen-dependent and requires electron input for the hydroxylation reaction. Together, these findings define DUF3328 as a previously unrecognized family of binuclear copper-dependent metalloenzymes, capable of catalyzing diverse chemical transformations, and lay the groundwork for future discovery of novel biocatalysts within this widespread enzyme class.

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来源期刊
Angewandte Chemie
Angewandte Chemie 化学科学, 有机化学, 有机合成
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