Modeling the effect of ion-induced shock waves and DNA breakage with the reactive CHARMM force field
arXiv:2107.03736 · doi:10.1002/jcc.26399
Abstract
Ion-induced DNA damage is an important effect underlying ion-beam cancer therapy. This paper introduces the methodology of modeling DNA damage induced by a shock wave caused by a projectile ion. Specifically, it is demonstrated how single- and double-strand breaks in a DNA molecule could be described by the reactive CHARMM (rCHARMM) force field implemented in the program MBN Explorer. The entire workflow of performing the shock wave simulations, including obtaining the crucial simulation parameters, is described in seven steps. Two exemplary analyses are provided for a case study simulation serving to (i) quantify the shock wave propagation and (ii) describe the dynamics of the formation of DNA breaks. The paper concludes by discussing the computational cost of the simulations and revealing the possible maximal computational time for different simulation setups.
11 pages, 6 figures. Originally submitted version of the manuscript
Cited by in corpus (8)
- Condensed Matter Systems Exposed to Radiation: Multiscale Theory, Simulations, and Experiment
- Lethal DNA damages caused by ion-induced shock waves in cells
- Irradiation driven molecular dynamics: A review
- Atomistic simulation of the FEBID-driven growth of iron-based nanostructures
- Irradiation driven molecular dynamics simulation of the FEBID process for Pt(PF)
- Role of the molecular environment in quenching the irradiation-driven fragmentation of Fe(CO): a reactive molecular dynamics study
- Advances in multiscale modeling for novel and emerging technologies
- A molecular dynamics simulation of the abrupt changes in the thermodynamic properties of water after formation of nano-bubbles / nano-cavities induced by passage of charged particles