arrow
返回

Markov State Model Approach to Simulate Self-Assembly

delete2024-12-10
delete0
delete
OA
AI
A
Anthony Trubiano *
M
Michael F. Hagan
DOI:10.1103/PhysRevX.14.041063delete
delete原文链接
delete原文求助
delete分享
delete收藏
摘要

摘要

En 中文
Computational modeling of assembly is challenging for many systems, because their timescales can vastly exceed those accessible to simulations. This article describes the multiMSM, which is a general framework that uses Markov state models (MSMs) to enable simulating self-assembly and self-organization of finite- sized structures on timescales that are orders of magnitude longer than those accessible to brute-force dynamics simulations. As with traditional MSM approaches, the method efficiently overcomes free energy barriers and other dynamical bottlenecks. In contrast to previous MSM approaches to simulating assembly, the framework describes simultaneous assembly of many clusters and the consequent depletion of free subunits or other small oligomers. The algorithm accounts for changes in transition rates as concentrations of monomers and intermediates evolve over the course of the reaction. Using two model systems, we show that the multiMSM accurately predicts the concentrations of the full ensemble of intermediates on timescales required to reach equilibrium. Importantly, after constructing a multiMSM for one system concentration, yields at other concentrations can be approximately calculated without any further sampling. This capability allows for orders of magnitude additional speedup. In addition, the method enables highly efficient calculation of quantities such as free energy profiles, nucleation timescales, flux along the ensemble of assembly pathways, and entropy production rates. Identifying contributions of individual transitions to entropy production rates reveals sources of kinetic traps. The method is broadly applicable to systems with equilibrium or nonequilibrium dynamics and is trivially parallelizable and, thus, highly scalable.
Keyword:
PROTEIN-PROTEIN INTERACTIONS
TRANSITION-PATH THEORY
DIMENSIONALITY REDUCTION
CONFORMATIONAL DYNAMICS
ALLOSTERIC TRANSITION
EQUILIBRIUM STRUCTURE
ENERGY LANDSCAPES
FOLDING PATHWAYS
KINETICS
BINDING

期刊

Physical Review X 封面图
Physical Review X
IF:
15.7
论文数:
2.7K
被引数:
3.4W

机构

B
Brandeis University
学者数:
4.0K
论文数: 3.8K
被引数: 5.3K
引用论文

引用论文

Patterns of intranidal temperature fluctuation forMelipona beecheiicolonies in natural nesting cavities
err2015-03-24
err0
PREAI
errHumberto Moo-Valle; José Javier G Quezada-Euán; Jorge Navarro; Luis A Rodriguez-Carvajal
err分享
err收藏
MicroRNA Expression Profiles in C6 Glioblastoma Cell Line Treated with Antipsychotics
err2020-01-01
err0
errOAAI
errT. S. Wang; Y. C. Chen; F. M. Tsai; Y. Y. Chang; Y. H. Chen; C. Y. Kuo; M. L. Chen
err分享
err收藏
Hydroquinone Bleaching
err1961-07-01
err0
PREAI
errMALCOLM C. SPENCER
err分享
err收藏
Attitudes Toward Cancer Clinical Trial Participation in Young Adults with a History of Cancer and a Healthy College Student Sample: A Preliminary Investigation
err2014-03-01
err0
errOAAI
errTimothy J. Grigsby; Erin E. Kent; Michael J. Montoya; Leonard S. Sender; Rebecca A. Morris; Argyrios Ziogas; Hoda Anton-Culver
err分享
err收藏
学者 查看更多内容