4.6 Article

Constant pH molecular dynamics of porcine circovirus 2 capsid protein reveals a mechanism for capsid assembly

期刊

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
卷 23, 期 43, 页码 24617-24626

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1cp02874j

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资金

  1. JSPS International Research Fellowship [PE17023]
  2. NIH National Institute of General Medical Sciences
  3. National institute of Allergy and Infectious Diseases [5SC1AI114843]
  4. National Institute on Minority Health and Health Disparities [5G12MD007603-30]
  5. Simons Foundation [349247]
  6. NYSTAR
  7. NIH National Institute of General Medical Sciences [GM103310]
  8. programme H2020-MSCA-RISE-2018 [823922]

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The study found that pure PCV2 capsid proteins require acidic conditions to assemble into empty capsids in vitro in the absence of nucleic acids. Molecular dynamics simulation revealed that an appropriate protonation configuration is necessary for driving capsid assembly, with assembly being prohibited at neutral pH due to electrostatic repulsion.
Spatiotemporal regulation of viral capsid assembly ensures the selection of the viral genome for encapsidation. The porcine circovirus 2 is the smallest autonomously replicating pathogenic virus, yet how PCV2 capsid assembly is regulated to occur within the nucleus remains unknown. We report that pure PCV2 capsid proteins, in the absence of nucleic acids, require acidic conditions to assemble into empty capsids in vitro. By employing constant pH replica exchange molecular dynamics, we unveil the atomistic mechanism of pH-dependency for capsid assembly. The results show that an appropriate protonation configuration for a cluster of acidic amino acids is necessary to appropriately position the GH-loop for driving the capsid assembly. We demonstrate that assembly is prohibited at neutral pH because deprotonation of these residues results in their electrostatic repulsion, shifting the GH-loop to a position incompatible with capsid assembly. We propose that encapsulation of nucleic acids overcomes this repulsion to suitably position the GH-loop. Our findings provide the first atomic resolution mechanism of capsid assembly regulation. These findings are useful for the development of therapeutics that inhibit PCV2 self-assembly.

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