Maes Laila, Mares-Mejía Israel, Martin Ella, Bickel David, Claeys Siemen, Vranken Wim, Fislage Marcus, Galicia Christian, Versées Wim
Structural Biology Brussels, Vrije Universiteit Brussel, Pleinlaan 2, Brussels 1050, Belgium.
VIB-VUB Center for Structural Biology, VIB, Pleinlaan 2, Brussels 1050, Belgium.
Nucleic Acids Res. 2025 Aug 27;53(16). doi: 10.1093/nar/gkaf824.
MnmE and MnmG form a conserved protein complex responsible for the addition of a 5-carboxymethylaminomethyl (cmnm5) group onto the wobble uridine of several transfer RNAs (tRNAs). Within this complex, both proteins collaborate intensively to catalyze a tRNA modification reaction that involves glycine as a substrate in addition to three different cofactors, with FAD and NADH binding to MnmG and methylenetetrahydrofolate (5,10-CH2-THF) to MnmE. Without structures of the MnmEG complex, it remained enigmatic how these substrates and co-factors can be brought together in a concerted manner. Prior small angle X-ray scattering data suggested that the MnmE (α2) and MnmG (β2) homo-dimers can adopt either an α2β2 or α4β2 complex, depending on the nucleotide state of MnmE. Here, we report the cryo-EM structures of the MnmEG complex in the α2β2 and α4β2 oligomeric states. These structures reveal that MnmE undergoes large conformational changes upon interaction with MnmG, resulting in an asymmetric MnmE dimer. In particular, the functionally important C-terminal helix of MnmE relocates from the 5,10-CH2-THF-binding pocket of MnmE to the FAD-binding pocket of MnmG, thus suggesting a mechanism for the transfer of an activated methylene group from one active site to the other. Together, these findings provide crucial new insights into the MnmEG-catalyzed reaction.
MnmE和MnmG形成一种保守的蛋白质复合物,负责在几种转运RNA(tRNA)的摆动尿苷上添加一个5-羧甲基氨基甲基(cmnm5)基团。在这个复合物中,两种蛋白质密切协作,催化一种tRNA修饰反应,该反应除了三种不同的辅因子外,还涉及甘氨酸作为底物,其中FAD和NADH与MnmG结合,亚甲基四氢叶酸(5,10-CH2-THF)与MnmE结合。在没有MnmEG复合物结构的情况下,这些底物和辅因子如何协同作用仍不清楚。先前的小角X射线散射数据表明,MnmE(α2)和MnmG(β2)同型二聚体可以形成α2β2或α4β2复合物,这取决于MnmE的核苷酸状态。在这里,我们报告了处于α2β2和α4β2寡聚状态的MnmEG复合物的冷冻电镜结构。这些结构表明,MnmE与MnmG相互作用时会发生大的构象变化,导致形成不对称的MnmE二聚体。特别是,MnmE功能上重要的C末端螺旋从MnmE的5,10-CH2-THF结合口袋转移到MnmG的FAD结合口袋,从而揭示了一个将活化亚甲基从一个活性位点转移到另一个活性位点的机制。总之,这些发现为MnmEG催化的反应提供了至关重要的新见解。