Molecular Biology Program, Sloan-Kettering Institute, New York, NY 10065, USA.
Structural Biology Program, Sloan-Kettering Institute, New York, NY 10065, USA.
Nucleic Acids Res. 2019 Feb 20;47(3):1428-1439. doi: 10.1093/nar/gky1275.
Fungal tRNA ligase (Trl1) is an essential enzyme that repairs RNA breaks with 2',3'-cyclic-PO4 and 5'-OH ends inflicted during tRNA splicing and non-canonical mRNA splicing in the fungal unfolded protein response. Trl1 is composed of C-terminal cyclic phosphodiesterase (CPD) and central GTP-dependent polynucleotide kinase (KIN) domains that heal the broken ends to generate the 3'-OH,2'-PO4 and 5'-PO4 termini required for sealing by an N-terminal ATP-dependent ligase domain (LIG). Here we report crystal structures of the Trl1-LIG domain from Chaetomium thermophilum at two discrete steps along the reaction pathway: the covalent LIG-(lysyl-Nζ)-AMP•Mn2+ intermediate and a LIG•ATP•(Mn2+)2 Michaelis complex. The structures highlight a two-metal mechanism whereby a penta-hydrated metal complex stabilizes the transition state of the ATP α phosphate and a second metal bridges the β and γ phosphates to help orient the pyrophosphate leaving group. A LIG-bound sulfate anion is a plausible mimetic of the essential RNA terminal 2'-PO4. Trl1-LIG has a distinctive C-terminal domain that instates fungal Trl1 as the founder of an Rnl6 clade of ATP-dependent RNA ligase. We discuss how the Trl1-LIG structure rationalizes the large body of in vivo structure-function data for Saccharomyces cerevisiae Trl1.
真菌 tRNA 连接酶 (Trl1) 是一种必需的酶,可修复 tRNA 剪接和真菌未折叠蛋白反应中非规范 mRNA 剪接过程中造成的具有 2'、3'-环磷酸和 5'-OH 末端的 RNA 断裂。Trl1 由 C 端环状磷酸二酯酶 (CPD) 和中央 GTP 依赖性多核苷酸激酶 (KIN) 结构域组成,这些结构域修复断裂末端,生成 3'-OH、2'-PO4 和 5'-PO4 末端,为 N 端 ATP 依赖性连接酶结构域 (LIG) 的封闭提供必需条件。在这里,我们报告了嗜热毛壳菌 Trl1-LIG 结构域在反应途径的两个离散步骤中的晶体结构:共价 LIG-(赖氨酸-Nζ)-AMP•Mn2+ 中间体和 LIG•ATP•(Mn2+)2 米氏复合物。这些结构突出了一种双金属机制,其中五水合金属络合物稳定了 ATP α 磷酸的过渡态,第二个金属桥接β和γ 磷酸以帮助定向焦磷酸离去基团。LIG 结合的硫酸盐阴离子可能是必需 RNA 末端 2'-PO4 的合理模拟物。Trl1-LIG 具有独特的 C 端结构域,使真菌 Trl1 成为 ATP 依赖性 RNA 连接酶 Rnl6 类的创始人。我们讨论了 Trl1-LIG 结构如何合理化酿酒酵母 Trl1 的大量体内结构功能数据。