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通过合理调节糖基转移酶的化学选择性,构建高效的 C-糖苷合成平台。

An efficient C-glycoside production platform enabled by rationally tuning the chemoselectivity of glycosyltransferases.

机构信息

Key Laboratory of Chemical Biology and Traditional Chinese Medicine Research (Ministry of Education) and Key Laboratory of Phytochemical R&D of Hunan Province, College of Chemistry and Chemical Engineering, Hunan Normal University, 410081, Changsha, P. R. China.

Department of Microbiology, Zhejiang University School of Medicine, Hangzhou, 310058, P. R. China.

出版信息

Nat Commun. 2024 Oct 15;15(1):8893. doi: 10.1038/s41467-024-53209-1.

Abstract

Despite the broad potential applications of C-glycosides, facile synthetic methods remain scarce. Transforming glycosyltransferases with promiscuous or natural O-specific chemoselectivity to C-glycosyltransferases is challenging. Here, we employ rational directed evolution of the glycosyltransferase MiCGT to generate MiCGT-QDP and MiCGT-ATD mutants which either enhance C-glycosylation or switch to O-glycosylation, respectively. Structural analysis and computational simulations reveal that substrate binding mode govern C-/O-glycosylation selectivity. Notably, directed evolution and mechanism analysis pinpoint the crucial residues dictating the binding mode, enabling the rational design of four enzymes with superior non-inherent chemoselectivity, despite limited sequence homology. Moreover, our best mutants undergo testing with 34 substrates, demonstrating superb chemoselectivities, regioselectivities, and activities. Remarkably, three C-glycosides and an O-glycoside are produced on a gram scale, demonstrating practical utility. This work establishes a highly selective platform for diverse glycosides, and offers a practical strategy for creating various types of glycosylation platforms to access pharmaceutically and medicinally interesting products.

摘要

尽管 C-糖苷具有广泛的潜在应用,但简单的合成方法仍然很少。将具有混杂或天然 O-特异性化学选择性的糖基转移酶转化为 C-糖基转移酶具有挑战性。在这里,我们采用理性定向进化的方法对糖基转移酶 MiCGT 进行改造,生成了 MiCGT-QDP 和 MiCGT-ATD 突变体,它们分别增强了 C-糖苷化或分别切换到 O-糖苷化。结构分析和计算模拟表明,底物结合模式决定了 C-/O-糖苷化选择性。值得注意的是,定向进化和机制分析确定了决定结合模式的关键残基,从而能够在有限的序列同源性下,对具有优越非固有化学选择性的四种酶进行合理设计。此外,我们最好的突变体在 34 种底物上进行了测试,表现出极好的化学选择性、区域选择性和活性。值得注意的是,三种 C-糖苷和一种 O-糖苷在克级规模上进行了生产,展示了实际应用价值。这项工作建立了一个高度选择性的糖苷平台,并提供了一种实用的策略,用于创建各种类型的糖基化平台,以获得具有药用和医学价值的产品。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e514/11480083/e7aa3858aef9/41467_2024_53209_Fig3_HTML.jpg

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