Multiscale Modeling of Hepatitis B Virus Capsid Assembly and Its Dimorphism

N/ACitations
Citations of this article
31Readers
Mendeley users who have this article in their library.
Get full text

Abstract

Hepatitis B virus (HBV) is an endemic, chronic virus that leads to 800000 deaths per year. Central to the HBV lifecycle, the viral core has a protein capsid assembled from many copies of a single protein. The capsid protein adopts different (quasi-equivalent) conformations to form icosahedral capsids containing 180 or 240 proteins: T = 3 or T = 4, respectively, in Caspar-Klug nomenclature. HBV capsid assembly has become an important target for recently developed antivirals; nonetheless, the assembly pathways and mechanisms that control HBV dimorphism remain unclear. We describe computer simulations of the HBV assembly, using a coarse-grained model that has parameters learned from all-atom molecular dynamics simulations of a complete HBV capsid and yet is computationally tractable. Dynamical simulations with the resulting model reproduce experimental observations of HBV assembly pathways and products. By constructing Markov state models and employing transition path theory, we identify pathways leading to T = 3, T = 4, and other experimentally observed capsid morphologies. The analysis shows that capsid polymorphism is promoted by the low HBV capsid bending modulus, where the key factors controlling polymorphism are the conformational energy landscape and protein-protein binding affinities.

Cite

CITATION STYLE

APA

Mohajerani, F., Tyukodi, B., Schlicksup, C. J., Hadden-Perilla, J. A., Zlotnick, A., & Hagan, M. F. (2022). Multiscale Modeling of Hepatitis B Virus Capsid Assembly and Its Dimorphism. ACS Nano, 16(9), 13845–13859. https://doi.org/10.1021/acsnano.2c02119

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free