Department of Chemistry, University of British Columbia, Vancouver, British Columbia V6T 1Z1, Canada.
Pharmaceutical Sciences Department, University of Kentucky, Lexington, Kentucky 40506, United States.
Biochemistry. 2023 Sep 5;62(17):2611-2621. doi: 10.1021/acs.biochem.3c00216. Epub 2023 Aug 9.
Pyridoxal phosphate-dependent enzymes able to use oxygen as a co-substrate have emerged in multiple protein families. Here, we use crystallography to solve the 2.40 Å resolution crystal structure of Cap15, a nucleoside biosynthetic enzyme that catalyzes the oxidative decarboxylation of glycyl uridine. Our structural study captures the internal aldimine, pinpointing the active site lysine as K230 and showing the site of phosphate binding. Our docking studies reveal how Cap15 is able to catalyze a stereoselective deprotonation reaction, and bioinformatic analysis reveals active site residues that distinguish Cap15 from the structurally related d-glucosaminate-6-phosphate ammonia lyase and l-seryl-tRNA(Sec) selenium transferase (SelA). Our work provides the structural basis for further mechanistic investigation of a unique biosynthetic enzyme and provides a blueprint for understanding how oxygen reactivity emerged in the SelA-like protein family.
能够将氧气用作辅助底物的依赖吡哆醛磷酸的酶已经在多个蛋白质家族中出现。在这里,我们使用晶体学方法解决了 Cap15 的 2.40 Å 分辨率晶体结构,Cap15 是一种核苷生物合成酶,可催化甘氨酰尿嘧啶的氧化脱羧作用。我们的结构研究捕获了内部亚胺,精确定位了活性位点赖氨酸为 K230,并显示了磷酸盐结合位点。我们的对接研究揭示了 Cap15 如何能够催化立体选择性的去质子化反应,并且生物信息学分析揭示了区分 Cap15 与结构相关的 d-葡糖胺-6-磷酸氨裂解酶和 l-丝氨酰-tRNA(Sec)硒转移酶(SelA)的活性位点残基。我们的工作为进一步研究独特的生物合成酶的机制提供了结构基础,并为理解 SelA 样蛋白家族中氧气反应性的出现提供了蓝图。