Kinetics versus thermodynamics in virus capsid polymorphism

Publication date

2016-07-07

Authors

Moerman, Pepijn GerbenISNI 0000000393096795
van der Schoot, PaulISNI 0000000389454246
Kegel, WillemISNI 0000000388841893

Editors

Advisors

Supervisors

Document Type

Article
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License

taverne

Abstract

Virus coat proteins spontaneously self-assemble into empty shells in aqueous solution under the appropriate physicochemical conditions, driven by an interaction free energy per bond on the order of 2-5 times the thermal energy kBT. For this seemingly modest interaction strength, each protein building block nonetheless gains a very large binding free energy, between 10 and 20 kBT. Because of this, there is debate about whether the assembly process is reversible or irreversible. Here we discuss capsid polymorphism observed in in vitro experiments from the perspective of nucleation theory and of the thermodynamics of mass action. We specifically consider the potential contribution of a curvature free energy term to the effective interaction potential between the proteins. From these models, we propose experiments that may conclusively reveal whether virus capsid assembly into a mixture of polymorphs is a reversible or an irreversible process.

Keywords

Taverne, Surfaces, Coatings and Films, Physical and Theoretical Chemistry, Materials Chemistry

Citation

Moerman, P, Van Der Schoot, P & Kegel, W 2016, 'Kinetics versus thermodynamics in virus capsid polymorphism', Journal of Physical Chemistry B, vol. 120, no. 26, pp. 6003-6009. https://doi.org/10.1021/acs.jpcb.6b01953