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通过插入-缺失策略构建核苷磷酸化酶的底物杂泛性

Engineering Substrate Promiscuity of Nucleoside Phosphorylase Via an Insertions-Deletions Strategy.

作者信息

Liu Gaofei, Wang Jialing, Chu Jianlin, Jiang Tianyue, Qin Song, Gao Zhen, He Bingfang

机构信息

College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, Nanjing 211800, China.

School of Pharmaceutical Sciences, Nanjing Tech University, Nanjing 211800, China.

出版信息

JACS Au. 2024 Jan 13;4(2):454-464. doi: 10.1021/jacsau.3c00581. eCollection 2024 Feb 26.

Abstract

Nucleoside phosphorylases (NPs) are the key enzymes in the nucleoside metabolism pathway and are widely employed for the synthesis of nucleoside analogs, which are difficult to access via conventional synthetic methods. NPs are generally classified as purine nucleoside phosphorylase (PNP) and pyrimidine or uridine nucleoside phosphorylase (PyNP/UP), based on their substrate preference. Here, based on the evolutionary information on the NP-I family, we adopted an insertions-deletions (InDels) strategy to engineer the substrate promiscuity of nucleoside phosphorylase PNPΔ2, which exhibits both PNP and UP activities from a trimeric PNP (PNP) of . Furthermore, the PNPΔ2 exerted phosphorylation activities toward arabinose nucleoside, fluorosyl nucleoside, and dideoxyribose, thereby broadening the unnatural-ribose nucleoside substrate spectrum of PNP. Finally, six purine nucleoside analogues were successfully synthesized, using the engineered PNPΔ2 instead of the traditional "two-enzymes PNP/UP" approach. These results provide deep insights into the catalytic mechanisms of the PNP and demonstrate the benefits of using the InDels strategy to achieve substrate promiscuity in an enzyme, as well as broadening the substrate spectrum of the enzyme.

摘要

核苷磷酸化酶(NPs)是核苷代谢途径中的关键酶,广泛应用于核苷类似物的合成,而这些核苷类似物难以通过传统合成方法获得。根据底物偏好,NPs通常分为嘌呤核苷磷酸化酶(PNP)和嘧啶或尿苷核苷磷酸化酶(PyNP/UP)。在此,基于NP-I家族的进化信息,我们采用插入缺失(InDels)策略来改造核苷磷酸化酶PNPΔ2的底物选择性,该酶从三聚体PNP(PNP)表现出PNP和UP活性。此外,PNPΔ2对阿拉伯糖核苷、氟代核苷和双脱氧核糖具有磷酸化活性,从而拓宽了PNP的非天然核糖核苷底物谱。最后,使用工程化的PNPΔ2替代传统的“双酶PNP/UP”方法,成功合成了六种嘌呤核苷类似物。这些结果为PNP的催化机制提供了深入见解,并证明了使用InDels策略在酶中实现底物选择性以及拓宽酶底物谱的益处。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6755/10900210/72e0adbf05e5/au3c00581_0006.jpg

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