TY - JOUR
T1 - SEEKR2
T2 - Versatile Multiscale Milestoning Utilizing the OpenMM Molecular Dynamics Engine
AU - Votapka, Lane W.
AU - Stokely, Andrew M.
AU - Ojha, Anupam A.
AU - Amaro, Rommie E.
N1 - Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/7/11
Y1 - 2022/7/11
N2 - We present SEEKR2 (simulation-enabled estimation of kinetic rates version 2)─the latest iteration in the family of SEEKR programs for using multiscale simulation methods to computationally estimate the kinetics and thermodynamics of molecular processes, in particular, ligand-receptor binding. SEEKR2 generates equivalent, or improved, results compared to the earlier versions of SEEKR but with significant increases in speed and capabilities. SEEKR2 has also been built with greater ease of usability and with extensible features to enable future expansions of the method. Now, in addition to supporting simulations using NAMD, calculations may be run with the fast and extensible OpenMM simulation engine. The Brownian dynamics portion of the calculation has also been upgraded to Browndye 2. Furthermore, this version of SEEKR supports hydrogen mass repartitioning, which significantly reduces computational cost, while showing little, if any, loss of accuracy in the predicted kinetics.
AB - We present SEEKR2 (simulation-enabled estimation of kinetic rates version 2)─the latest iteration in the family of SEEKR programs for using multiscale simulation methods to computationally estimate the kinetics and thermodynamics of molecular processes, in particular, ligand-receptor binding. SEEKR2 generates equivalent, or improved, results compared to the earlier versions of SEEKR but with significant increases in speed and capabilities. SEEKR2 has also been built with greater ease of usability and with extensible features to enable future expansions of the method. Now, in addition to supporting simulations using NAMD, calculations may be run with the fast and extensible OpenMM simulation engine. The Brownian dynamics portion of the calculation has also been upgraded to Browndye 2. Furthermore, this version of SEEKR supports hydrogen mass repartitioning, which significantly reduces computational cost, while showing little, if any, loss of accuracy in the predicted kinetics.
UR - https://www.scopus.com/pages/publications/85134426414
U2 - 10.1021/acs.jcim.2c00501
DO - 10.1021/acs.jcim.2c00501
M3 - Article
C2 - 35759413
AN - SCOPUS:85134426414
SN - 1549-9596
VL - 62
SP - 3253
EP - 3262
JO - Journal of Chemical Information and Modeling
JF - Journal of Chemical Information and Modeling
IS - 13
ER -