PAPER / ARXIV:2609.09293
Meng Gao , Armin Shayesteh Zadeh , Aniruddha Seal , Siva Dasetty , Siddarth K. Achar , Misko Dzamba , Benjamin K. Miller , Leif D. Jacobson , C. Lawrence Zitnick , Brandon M. Wood , Zachary W. Ulissi , Daniel S. Levine , Andrew L. Ferguson
RESUMO
Electronic rearrangements associated with bond forming/breaking in catalytic enzymes require quantum mechanical (QM) treatment beyond classical molecular mechanics (MM). Hybrid QM/MM methods enable tractable simulations but require system-specific setup and are sensitive to the QM region choice and treatment of the QM/MM interface. We demonstrate quantum-accurate treatment of all-atom, complete enzymes in explicit solvent comprising up to 54k atoms and 1 microsecond of total simulation time using the machine-learned interatomic potential (MLIP) eSEN-omol. We reproduce experimental barrier trends for Claisen rearrangement in chorismate mutase, resolve critical intermediate states in PETase catalyzed polymer depolymerization, and distinguish mechanistic alternatives for metal-activated phosphoryl transfer in nucleoside diphosphate kinase. We realize 1000x speedups relative to typical QM/MM calculations without system-specific tuning. These results establish MLIPs as a practical route to QM-accurate simulations of enzyme catalysis.
NO MESMO MAPA