DNA methylation mediates the multiple sclerosis onset risk associated with HHV-6 DNA positivity

Alex Eisner1, Steve Simpson-Yap1,2,3, Daniel J Park4,5

  • 1The Florey Institute of Neuroscience and Mental Health, The University of Melbourne, Parkville, 3010, Australia.

Insights

Human herpesvirus-6 (HHV-6) DNA positivity is linked to multiple sclerosis (MS) risk through DNA methylation (DNAm) pathways. This study identifies a specific DNAm module (A2) mediating this association, offering insights into epigenetic mechanisms in MS.

Area of Science:

  • Neuroimmunology
  • Epigenetics
  • Virology

Background:

  • Epstein-Barr virus (EBV) associations with multiple sclerosis (MS) are partly mediated by DNA methylation (DNAm).
  • Human herpesvirus-6 (HHV-6) DNA is linked to increased MS risk, but underlying mechanisms are unclear.
  • Investigating human herpesvirus involvement in MS through epigenetic pathways is crucial.

Purpose of the Study:

  • To examine associations between various human herpesvirus indices and MS-onset risk.
  • To determine if HHV-6 DNA contributes to MS onset via DNA methylation pathways.
  • To identify specific DNA methylation modules involved in human herpesvirus-associated MS.

Main Methods:

  • Collected serological and viral load data for EBV, HHV-6, CMV, and VZV.
  • Measured DNA methylation (DNAm) from whole blood using Illumina EPIC array.
  • Derived DNAm module scores and performed mediation analysis for MS onset risk.

Main Results:

  • HHV-6 DNA positivity associated with the A2 DNAm module; higher CMV IgG associated with the A4 module.
  • Counterfactual mediation analysis revealed 45% of HHV-6 DNA positivity's MS risk association was mediated by the A2 module.
  • The A2 module was enriched for lymphatic and immune pathways.

Conclusions:

  • A distinct DNAm module (A2) provides a plausible mechanism linking HHV-6 to MS onset.
  • Epigenetic pathways mediate associations between human herpesviruses (beyond EBV) and MS.
  • Findings illuminate how environmental factors, like human herpesviruses, may influence MS through epigenetic programming.

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