ACS Chem Biol. 2018 Oct 19;13(10):2989-2999. doi: 10.1021/acschembio.8b00668. Epub 2018 Sep 25.
N-methylation of nucleic acids, proteins, and peptides is a chemical modification with significant impact on biological regulation. Despite the simplicity of the structural change, N-methylation can influence diverse functions including epigenetics, protein complex formation, and microtubule stability. While there are limited examples of N-methylation of the α-amino group of bacterial and eukaryotic proteins, there are no examples of catalysts that carry out post-translation methylation of backbone amides in proteins or peptides. Recent studies have identified enzymes that catalyze backbone N-methylation on a peptide substrate, a reaction with little biochemical precedent, in a family of ribosomally synthesized natural products produced in basidiomycetes. Here, we describe the crystal structures of Dendrothele bispora dbOphMA, a methyltransferase that catalyzes multiple N-methylations on the peptide backbone. We further carry out biochemical studies of this catalyst to determine the molecular details that promote this unusual chemical transformation. The structural and biochemical framework described here could facilitate biotechnological applications of catalysts for the rapid production of backbone N-methylated peptides.
核酸、蛋白质和肽的 N-甲基化是一种对生物调控有重大影响的化学修饰。尽管结构变化简单,但 N-甲基化可以影响多种功能,包括表观遗传学、蛋白质复合物形成和微管稳定性。虽然细菌和真核蛋白质的 α-氨基组的 N-甲基化的例子有限,但没有能够对蛋白质或肽中的骨架酰胺进行翻译后甲基化的催化剂的例子。最近的研究在担子菌类产生的核糖体合成天然产物家族中发现了能够催化肽底物上骨架 N-甲基化的酶,这是一种具有很少生化先例的反应。在这里,我们描述了 Dendrothele bispora dbOphMA 的晶体结构,这是一种甲基转移酶,可催化肽骨架上的多种 N-甲基化。我们进一步进行了该催化剂的生化研究,以确定促进这种不寻常的化学转化的分子细节。这里描述的结构和生化框架可以促进用于快速生产骨架 N-甲基化肽的催化剂的生物技术应用。