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卡米霉素 4-甲基转移酶 DnrK 的生化和结构研究。

Biochemical and Structural Studies of the Carminomycin 4--Methyltransferase DnrK.

机构信息

Department of Biosciences, Rice University, Houston, Texas 77030, United States.

Markey Cancer Center, Department of Pharmacology and Nutritional Sciences, College of Medicine, University of Kentucky, Lexington, Kentucky 40536, United States.

出版信息

J Nat Prod. 2024 Apr 26;87(4):798-809. doi: 10.1021/acs.jnatprod.3c00947. Epub 2024 Feb 27.

Abstract

Structural and functional studies of the carminomycin 4--methyltransferase DnrK are described, with an emphasis on interrogating the acceptor substrate scope of DnrK. Specifically, the evaluation of 100 structurally and functionally diverse natural products and natural product mimetics revealed an array of pharmacophores as productive DnrK substrates. Representative newly identified DnrK substrates from this study included anthracyclines, angucyclines, anthraquinone-fused enediynes, flavonoids, pyranonaphthoquinones, and polyketides. The ligand-bound structure of DnrK bound to a non-native fluorescent hydroxycoumarin acceptor, 4-methylumbelliferone, along with corresponding DnrK kinetic parameters for 4-methylumbelliferone and native acceptor carminomycin are also reported for the first time. The demonstrated unique permissivity of DnrK highlights the potential for DnrK as a new tool in future biocatalytic and/or strain engineering applications. In addition, the comparative bioactivity assessment (cancer cell line cytotoxicity, 4E-BP1 phosphorylation, and axolotl embryo tail regeneration) of a select set of DnrK substrates/products highlights the ability of anthracycline 4--methylation to dictate diverse functional outcomes.

摘要

本文描述了卡米霉素 4-甲基转移酶 DnrK 的结构和功能研究,重点探讨了 DnrK 的接受底物范围。具体而言,对 100 种结构和功能多样的天然产物和天然产物类似物进行评估,揭示了一系列药效团作为 DnrK 的有效底物。本研究中首次从代表性的新鉴定的 DnrK 底物中鉴定出蒽环类、蒽环类、蒽醌融合烯二炔、黄酮类、吡喃萘醌和聚酮类。还首次报道了 DnrK 与非天然荧光羟基香豆素接受体 4-甲基伞形酮结合的配体结合结构,以及相应的 DnrK 对 4-甲基伞形酮和天然接受体卡米霉素的动力学参数。DnrK 表现出的独特的允许性突出了 DnrK 作为未来生物催化和/或菌株工程应用的新工具的潜力。此外,一组选定的 DnrK 底物/产物的比较生物活性评估(癌细胞系细胞毒性、4E-BP1 磷酸化和蝾螈胚胎尾再生)突出了蒽环类 4-甲基化决定多样化功能结果的能力。

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