Dynamics of polymer ejection from capsid
R.P. Linna, J.E. Moisio, P.M. Suhonen, K. Kaski

TL;DR
This study investigates the dynamics of polymer ejection from capsids through nanoscale pores, revealing the effects of pore asymmetry and polymer density on ejection efficiency and scaling behavior, with implications for biological and biotechnological processes.
Contribution
It introduces a detailed Langevin dynamics simulation of capsid ejection, highlighting the impact of pore asymmetry and initial monomer density on ejection scaling laws and process completion.
Findings
Pore asymmetry dramatically enhances ejection.
Ejection times scale with polymer length as $ au \\sim N^\alpha$.
Ejection process shares features with driven polymer translocation.
Abstract
Polymer ejection from a capsid through a nanoscale pore is an important biological process with relevance to modern biotechnology. Here, we study generic capsid ejection using Langevin dynamics. We show that even when the ejection takes place within the drift-dominated region there is a very high probability for the ejection process not to be completed. Introducing a small aligning force at the pore entrance enhances ejection dramatically. Such a pore asymmetry is a candidate for a mechanism by which a viral ejection is completed. By detailed high-resolution simulations we show that such capsid ejection is an out-of-equilibrium process that shares many common features with the much studied driven polymer translocation through a pore in a wall or a membrane. We find that the escape times scale with polymer length, . We show that for the pore without the asymmetry the…
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Taxonomy
TopicsBacteriophages and microbial interactions · Microtubule and mitosis dynamics · Evolution and Genetic Dynamics
