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对铝霉素生物合成中糖苷合酶的重新研究揭示了碳-碳键形成的保守机制。

Reinvestigation of the -Glycoside Synthase in Alnumycin Biosynthesis Reveals a Conserved Mechanism of C-C Bond Formation.

作者信息

Ren Daan, Lee Yu-Hsuan, Liu Hung-Wen

机构信息

Division of Chemical Biology and Medicinal Chemistry, College of Pharmacy, University of Texas at Austin, Austin, Texas 78712, United States.

Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

J Am Chem Soc. 2025 Jun 18;147(24):20571-20581. doi: 10.1021/jacs.5c03469. Epub 2025 Jun 4.

Abstract

-Nucleosides are defined by their unusual C-C glycosidic linkage between the nucleobase and the monosaccharide moiety, which distinguishes them from common -nucleosides. Several enzymes have been identified to catalyze this atypical C-C bond formation. For instance, YeiN catalyzes the reversible cleavage of pseudouridine 5'-phosphate, yielding ribose 5-phosphate (R5P) and uracil via a Schiff base intermediate formed between R5P and an active-site lysine residue. In alnumycin biosynthesis, the C-C glycosidic bond between R5P and a naphthoquinone heterocycle, prealnumycin, has been shown to be installed by AlnA. While AlnA shares 41% sequence identity with YeiN, a distinct mechanism involving an ene-diol tautomer of R5P had been proposed based on previous biochemical studies and X-ray crystallography. Herein, the mechanism of AlnA is reevaluated using juglone (5-hydroxy-1,4-naphthalenedione) as a prealnumycin analog. By employing isotopologues and protein mass spectrometry, the involvement of an ene-diol intermediate and an alternative Morita-Baylis-Hillman mechanism in AlnA catalysis can both be ruled out. Further analysis of juglone reactivity showed that it can be reduced either enzymatically when coupled to glucose oxidase or nonenzymatically through autoreduction yielding 1,4,5-naphthalenetriol. This hydroquinone derivative of juglone serves as the true substrate of AlnA such that the -glycosylation mechanism is no different from that of YeiN. These findings unravel the correct substrate of the -glycoside synthase AlnA and unify the mechanisms of AlnA, YeiN, and other -glycoside synthases. These results highlight that accurate substrate identification is essential for mechanistic study of enzyme catalysis and call for a reevaluation of the biosynthetic pathway of alnumycin and other naphthoquinone-derived natural products.

摘要

核苷是由其在核碱基与单糖部分之间不寻常的C-C糖苷键所定义的,这使它们有别于普通核苷。已鉴定出几种酶可催化这种非典型C-C键的形成。例如,YeiN催化假尿苷5'-磷酸的可逆裂解,通过R5P与活性位点赖氨酸残基之间形成的席夫碱中间体产生5-磷酸核糖(R5P)和尿嘧啶。在链格孢霉素生物合成中,R5P与萘醌杂环前链格孢霉素之间的C-C糖苷键已被证明是由AlnA安装的。虽然AlnA与YeiN有41%的序列同一性,但基于先前的生化研究和X射线晶体学,已提出了一种涉及R5P的烯二醇互变异构体的独特机制。在此,使用胡桃醌(5-羟基-1,4-萘二酮)作为前链格孢霉素类似物重新评估AlnA的机制。通过使用同位素异构体和蛋白质质谱法,可以排除烯二醇中间体和替代的莫里塔-贝利斯-希尔曼机制参与AlnA催化。对胡桃醌反应性的进一步分析表明,当与葡萄糖氧化酶偶联时,它可以被酶促还原;或者通过自动还原非酶促地产生1,4,5-萘三醇。胡桃醌的这种对苯二酚衍生物是AlnA的真正底物,使得β-糖基化机制与YeiN的机制没有区别。这些发现揭示了β-糖苷合酶AlnA的正确底物,并统一了AlnA、YeiN和其他β-糖苷合酶的机制。这些结果强调,准确的底物鉴定对于酶催化机制的研究至关重要,并呼吁重新评估链格孢霉素和其他萘醌衍生天然产物的生物合成途径。

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