Department of Agricultural Biotechnology, Seoul National University, Seoul, Korea.
Research Institute of Agriculture and Life Sciences, Seoul National University, Seoul, Korea.
RNA Biol. 2024 Jan;21(1):1-10. doi: 10.1080/15476286.2023.2293340. Epub 2023 Dec 20.
Pseudouridine is a noncanonical -nucleoside containing a C-C glycosidic linkage between uracil and ribose. In the two-step degradation of pseudouridine, pseudouridine 5'-monophosphate glycosylase (PUMY) is responsible for the second step and catalyses the cleavage of the C-C glycosidic bond in pseudouridine 5'-monophosphate (ΨMP) into uridine and ribose 5'-phosphate, which are recycled via other metabolic pathways. Structural features of PUMY have been reported, but the details of the substrate specificity of ΨMP were unknown. Here, we present three crystal structures of PUMY in different ligation states and a kinetic analysis of ΨMP degradation. The results indicate that Thr149 and Asn308, which are conserved in the PUMY family, are structural determinants for recognizing the nucleobase of ΨMP. The distinct binding modes of ΨMP and ribose 5'-phosphate also suggest that the nucleobase, rather than the phosphate group, of ΨMP dictates the substrate-binding mode. An open-to-close transition of the active site is essential for catalysis, which is mediated by two α-helices, α11 and α12, near the active site. Mutational analysis validates the proposed roles of the active site residues in catalysis. Our structural and functional analyses provide further insight into the enzymatic features of PUMY towards ΨMP.
假尿嘧啶核苷是一种非规范的核苷,其尿嘧啶和核糖之间存在 C-C 糖苷键连接。在假尿嘧啶核苷的两步降解过程中,假尿嘧啶 5'-单磷酸核苷糖基化酶(PUMY)负责第二步反应,催化假尿嘧啶 5'-单磷酸(ΨMP)中的 C-C 糖苷键断裂,生成尿嘧啶和核糖 5'-磷酸,这些产物通过其他代谢途径回收利用。已经报道了 PUMY 的结构特征,但 ΨMP 的底物特异性的细节尚不清楚。在这里,我们展示了 PUMY 在不同连接状态下的三个晶体结构和对 ΨMP 降解的动力学分析。结果表明,PUMY 家族中保守的 Thr149 和 Asn308 是识别 ΨMP 碱基的结构决定因素。ΨMP 和核糖 5'-磷酸的不同结合模式也表明,决定底物结合模式的是 ΨMP 的碱基,而不是磷酸基团。活性位点的开-合转变对于催化至关重要,这是由靠近活性位点的两个α-螺旋,α11 和 α12 介导的。突变分析验证了活性位点残基在催化中的作用。我们的结构和功能分析为 PUMY 对 ΨMP 的酶促特征提供了进一步的深入了解。