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Adaptive mutations in the JC virus protein capsid are associated with progressive multifocal leukoencephalopathy
Shamil R Sunyaev1, Alexey Lugovskoy, Kenneth Simon
1Division of Genetics, Department of Medicine, Brigham and Women's Hospital, Boston, Massachusetts, USA. sunyaev@rics.bwh.harvard.edu
Abstract:
PML is a progressive and mostly fatal demyelinating disease caused by JC virus infection and destruction of infected oligodendrocytes in multiple brain foci of susceptible individuals. While JC virus is highly prevalent in the human population, PML is a rare disease that exclusively afflicts only a small percentage of immunocompromised individuals including those affected by HIV (AIDS) or immunosuppressive drugs. Viral- and/or host-specific factors, and not simply immune status, must be at play to account for the very large discrepancy between viral prevalence and low disease incidence. Here, we show that several amino acids on the surface of the JC virus capsid protein VP1 display accelerated evolution in viral sequences isolated from PML patients but not in sequences isolated from healthy subjects. We provide strong evidence that at least some of these mutations are involved in binding of sialic acid, a known receptor for the JC virus. Using statistical methods of molecular evolution, we performed a comprehensive analysis of JC virus VP1 sequences isolated from 55 PML patients and 253 sequences isolated from the urine of healthy individuals and found that a subset of amino acids found exclusively among PML VP1 sequences is acquired via adaptive evolution. By modeling of the 3-D structure of the JC virus capsid, we showed that these residues are located within the sialic acid binding site, a JC virus receptor for cell infection. Finally, we go on to demonstrate the involvement of some of these sites in receptor binding by demonstrating a profound reduction in hemagglutination properties of viral-like particles made of the VP1 protein carrying these mutations. Collectively, these results suggest that a more virulent PML causing phenotype of JC virus is acquired via adaptive evolution that changes viral specificity for its cellular receptor(s).
Insights
JC virus adaptive evolution in its capsid protein VP1 drives a more virulent PML-causing phenotype by altering receptor binding. This explains why PML is rare despite widespread JC virus infection.
Area of Science:
- Virology
- Molecular Evolution
- Neuroimmunology
Background:
- Progressive multifocal leukoencephalopathy (PML) is a rare, fatal demyelinating disease caused by JC virus (JCV) infection.
- JCV is highly prevalent, yet PML predominantly affects immunocompromised individuals, suggesting non-immune factors are crucial.
Purpose of the Study:
- Investigate the molecular basis for the discrepancy between JCV prevalence and PML incidence.
- Identify viral factors contributing to JCV's ability to cause PML.
Main Methods:
- Comparative analysis of JCV VP1 capsid protein sequences from PML patients and healthy individuals.
- Statistical methods of molecular evolution and 3-D structural modeling of the JCV capsid.
- Functional assays using viral-like particles to assess receptor binding.
Main Results:
- Accelerated evolution of specific amino acids on the JCV VP1 surface in PML patients.
- These mutated residues are located in the sialic acid binding site, a key JCV receptor.
- Mutations significantly reduced hemagglutination properties, indicating altered receptor binding.
Conclusions:
- Adaptive evolution of JCV VP1 contributes to a more virulent PML-causing phenotype.
- Changes in viral specificity for cellular receptors are driven by these adaptive mutations.
- This provides insight into the pathogenesis of PML in susceptible individuals.
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