2019 AIChE Annual Meeting
(225g) Implementation of Quantum Mechanics/Coarse-Grained Molecular Mechanics (QM/CG-MM)
Authors
Current classical AA and CG methods are inherently limited to processes that preserve the topology of molecules involved, and thus cannot describe chemical bond breaking and formation. This limitation has been partially lifted with the advent of the Quantum Mechanics/Molecular Mechanics (QM/MM) method, which treats a small region undergoing chemical transformations quantum mechanically, whereas the rest of the system is described classically. However, the large number of MM degrees of freedom together with the high computational cost of QM energy evaluations render this method unsuitable for large protein molecules.
Sinitskiy and Voth2 proposed the QM/CG-MM theory, which holds promise to surmount QM/MM limitations by coarse-graining the MM part. In this work, we evaluate one implementation of this method based on the MSCG theory. We consider two model systems: QM CCl4 embedded in (CG-) MM CCl4 (non-reactive non-polar system) and the reaction of tert-butyl hypochlorite with benzyl radical in (CG-)MM CCl4, for which the experimentally measured reaction rate constant is available3 to determine the methodâs accuracy. We assess the methodâs performance relative to QM/MM by comparing radial distribution functions and the potential of mean force. Finally, we discuss strategies to extend the method to polar solvents.
References:
- Izvekov, S., & Voth, G. A. (2005). A multiscale coarse-graining method for biomolecular systems. The Journal of Physical Chemistry B, 109(7), 2469-2473.
- Sinitskiy, A. V., & Voth, G. A. (2018). Quantum mechanics/coarse-grained molecular mechanics (QM/CG-MM). The Journal of chemical physics, 148(1), 014102.
- Zavitsas, A. A., & Blank John, D. (1972). Kinetics of the free-radical chain chlorination of hydrocarbons by tert-butyl hypochlorite. Journal of the American Chemical Society, 94(13), 4603-4608.