B. Nan, W. Yang, L. Nie, D. Wang, M. Xu, J. Niu, Y. Wang, W. Guan, Z. Chen, G. Zhuang, S. Gao, Y. Liu
Employed AlphaFold3 for de novo structural modeling of the AMT1 complex and validated key structural features by mutagenesis. Revealed the structural basis for DNA substrate recognition, base flipping, and catalysis in DNA N6-adenine methylation (6mA). Delineated the reaction pathway for processive methylation involving translocation of the AMT1 complex along the dsDNA.
As a transcription-associated epigenetic mark abundantly present in many unicellular eukaryotes, DNA N6-adenine methylation (6mA) is maintained by the AMT1 complex. However, the structure-function relationship of the AMT1 complex remains to be fully elucidated. Here, we employ AlphaFold3 (AF3) for de novo structural modeling of the AMT1 complex, complemented by molecular dynamics simulations. Functional relevance of key structural features, especially those of the AMT1 ternary complex with the double-stranded DNA (dsDNA) substrate and the cofactor, are validated by extensive mutagenesis, both in vivo and in vitro. Our analysis reveals the structural basis for DNA substrate recognition, base flipping, and catalysis in this prototypical eukaryotic DNA 6mA-methyltransferase. It also allows us to delineate the reaction pathway for processive methylation involving translocation of the AMT1 complex along the dsDNA. As the active site is conserved across the MT-A70 family of eukaryotic N6-adenine methyltransferases, the structural insight will facilitate rational design of specific inhibitors.