Department of Physics, Chemistry and Pharmacy, University of Southern Denmark, Odense, Denmark.
MOE Key Laboratory of Protein Sciences, Beijing Frontier Research Center for Biological Structure, School of Medicine, Tsinghua-Peking Center for Life Sciences, Tsinghua University, Beijing, China.
Protein Sci. 2022 May;31(5):e4305. doi: 10.1002/pro.4305.
Actin histidine N -methylation by histidine methyltransferase SETD3 plays an important role in human biology and diseases. Here, we report integrated synthetic, biocatalytic, biostructural, and computational analyses on human SETD3-catalyzed methylation of actin peptides possessing histidine and its structurally and chemically diverse mimics. Our enzyme assays supported by biostructural analyses demonstrate that SETD3 has a broader substrate scope beyond histidine, including N-nucleophiles on the aromatic and aliphatic side chains. Quantum mechanical/molecular mechanical molecular dynamics and free-energy simulations provide insight into binding geometries and the free energy barrier for the enzymatic methyl transfer to histidine mimics, further supporting experimental data that histidine is the superior SETD3 substrate over its analogs. This work demonstrates that human SETD3 has a potential to catalyze efficient methylation of several histidine mimics, overall providing mechanistic, biocatalytic, and functional insight into actin histidine methylation by SETD3.
组蛋白甲基转移酶 SETD3 对肌动蛋白组氨酸 N-甲基化在人类生物学和疾病中起着重要作用。在这里,我们报告了人类 SETD3 催化具有组氨酸及其结构和化学上不同模拟物的肌动蛋白肽甲基化的综合合成、生物催化、生物结构和计算分析。我们的酶促分析得到生物结构分析的支持,表明 SETD3 的底物范围超出了组氨酸,包括芳香族和脂肪族侧链上的 N-亲核试剂。量子力学/分子力学分子动力学和自由能模拟提供了对酶促甲基转移到组氨酸模拟物的结合几何形状和自由能障碍的深入了解,进一步支持了实验数据,即组氨酸是 SETD3 优于其类似物的优越底物。这项工作表明,人类 SETD3 有可能催化几种组氨酸模拟物的有效甲基化,总体上为 SETD3 对肌动蛋白组氨酸甲基化提供了机制、生物催化和功能见解。