Systematic Quantum Mechanical Region Determination in QM/MM Simulation
Maria Karelina, Heather J. Kulik

TL;DR
This paper develops two methods, CSA and FSA, for systematically determining the optimal size of QM regions in QM/MM enzyme simulations, addressing slow convergence issues caused by charge transfer effects.
Contribution
It introduces and validates two complementary, scalable methods for unbiased, quantitative identification of essential QM regions in large enzyme systems.
Findings
FSA and CSA methods are consistent across three enzyme test cases.
Both methods are sensitive to geometric and electronic structure parameters.
The approaches enable systematic, atom-economical QM region selection.
Abstract
Hybrid quantum mechanical-molecular mechanical (QM/MM) simulations are widely used in enzyme simulation. Over ten convergence studies of QM/MM methods have revealed over the past several years that key energetic and structural properties approach asymptotic limits with only very large (ca. 500-1000 atom) QM regions. This slow convergence has been observed to be due in part to significant charge transfer between the core active site and surrounding protein environment, which cannot be addressed by improvement of MM force fields or the embedding method employed within QM/MM. Given this slow convergence, it becomes essential to identify strategies for the most atom-economical determination of optimal QM regions and to gain insight into the crucial interactions captured only in large QM regions. Here, we extend and develop two methods for quantitative determination of QM regions. First, in…
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