Karki Ramesh, Hennek Jacquelyn T, Chen Wen, Frantom Patrick A
Department of Chemistry & Biochemistry, The University of Alabama, Tuscaloosa, Alabama 35487, United States.
Biochemistry. 2023 Sep 5;62(17):2645-2657. doi: 10.1021/acs.biochem.3c00338. Epub 2023 Aug 17.
Glycosyltransferases (GTs) are well-characterized with respect to static 3D structures and molecular dynamics simulations, but there is a lack of reports on in-solution dynamics on time scales relevant to turnover. Here, backbone amide hydrogen/deuterium exchange followed by mass spectrometry (HDX-MS) was used to investigate the in-solution dynamics of the model retaining GT MshA from (CgMshA). CgMshA has a GT-B fold and catalyzes the transfer of -acetyl-glucosamine (GlcNAc) from UDP-GlcNAc to l--inositol-1-phosphate in the first step in mycothiol biosynthesis. HDX-MS results identify several key regions of conformational changes in response to UDP-GlcNAc binding, including residues 159-198 in the N-terminal domain and residues 323-354 in the C-terminal domain. These regions also exhibited substrate-dependent EX1 exchange kinetics consistent with conformational tension on the milliseconds to seconds time scale. A potential source of this conformational change is the flexible β4/α5 loop in the C-terminal domain, which sits at the interface of the two domains and likely interacts with the GlcNAc ring of UDP-GlcNAc. In contrast to UDP-GlcNAc, the UDP-CgMshA product complex exhibited severe decreases in deuterium incorporation, suggesting a less dynamic conformation. The HDX-MS results are complemented by solvent viscosity effects of 1.8-2.3 on the CgMshA value, which are consistent with product release as a rate-determining step and possibly a direct role for protein dynamics in catalysis. The identification of in-solution dynamics that are sensitive to substrate binding allows for the proposal of a more detailed mechanism in CgMshA including conformation tension between the donor sugar and the flexible C-terminal domain β4/α5 loop providing sufficient conformational sampling for substrate-assisted catalysis to occur.
糖基转移酶(GTs)在静态三维结构和分子动力学模拟方面已有充分研究,但缺乏与周转相关时间尺度上的溶液内动力学报道。在此,采用 backbone 酰胺氢/氘交换结合质谱法(HDX-MS)研究了来自(CgMshA)的模型保留型 GT MshA 的溶液内动力学。CgMshA 具有 GT-B 折叠结构,在麦角硫因生物合成的第一步中催化 UDP-GlcNAc 上的 N-乙酰葡糖胺(GlcNAc)转移至 l-肌醇-1-磷酸。HDX-MS 结果确定了响应 UDP-GlcNAc 结合的几个关键构象变化区域,包括 N 端结构域中的 159 - 198 位残基和 C 端结构域中的 323 - 354 位残基。这些区域还表现出与毫秒到秒时间尺度上的构象张力一致的底物依赖性 EX1 交换动力学。这种构象变化的一个潜在来源是 C 端结构域中灵活的β4/α5 环,它位于两个结构域的界面处,可能与 UDP-GlcNAc 的 GlcNAc 环相互作用。与 UDP-GlcNAc 相反,UDP-CgMshA 产物复合物的氘掺入显著减少,表明构象动态性较低。HDX-MS 结果得到了 1.8 - 2.3 的溶剂粘度对 CgMshA 值影响的补充,这与产物释放作为速率决定步骤一致,并且可能蛋白质动力学在催化中起直接作用。对底物结合敏感的溶液内动力学的鉴定使得能够提出 CgMshA 中更详细的机制,包括供体糖与灵活的 C 端结构域β4/α5 环之间的构象张力,为底物辅助催化的发生提供足够的构象采样。