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Epstein-Barr virus in multiple sclerosis pathogenesis: The path towards mechanistically faithful models
Kathryn Mizzi1, Ruben J Cauchi1
1Department of Physiology and Biochemistry, Faculty of Medicine and Surgery, University of Malta, Msida, Malta; Centre for Molecular Medicine and Biobanking, Biomedical Sciences Building, University of Malta, Msida, Malta.
Abstract:
Multiple Sclerosis (MS) is a chronic, disabling autoimmune disease of the central nervous system (CNS). While its aetiology is multifactorial, compelling evidence now implicates Epstein-Barr virus (EBV) as a primary aetiological agent. This review summarises the extensive epidemiological and mechanistic data supporting a causal link between EBV infection and MS. Epidemiological studies demonstrate that EBV infection confers >30-fold increased risk for MS, with seroconversion preceding the onset of neuroaxonal damage. The leading proposed mechanism is molecular mimicry, where antibodies and T cells targeting the EBV nuclear antigen 1 (EBNA1) cross-react with CNS proteins, such as GlialCAM, initiating autoimmune-mediated demyelination. This process is modulated by synergistic interactions with genetic risk factors, and environmental factors like smoking and adolescent obesity. A critical evaluation of the experimental models used to investigate this connection is presented. In vitro systems using patient-derived cells have confirmed dysregulated immune responses to EBV antigens, while in vivo models - ranging from murine experimental autoimmune encephalomyelitis (EAE) and humanised mice to non-human primate models with homologous γ-herpesviruses - have been instrumental in demonstrating the role of EBV in breaking immune tolerance and driving neuroinflammation. Despite their utility, each model possesses limitations, underscoring the need for next-generation model systems that more accurately recapitulate the complex interplay between the virus, host genetics, and the CNS environment. Future research focused on refining these models is crucial for developing targeted EBV-based therapeutics, such as vaccines or antiviral agents, to prevent or treat MS.
Insights
Epstein-Barr virus (EBV) infection significantly increases multiple sclerosis (MS) risk, potentially through molecular mimicry. Research highlights EBV
Area of Science:
- Neuroimmunology
- Virology
- Autoimmune Diseases
Background:
- Multiple Sclerosis (MS) is a chronic, disabling central nervous system (CNS) autoimmune disease.
- The etiology of MS is multifactorial, with increasing evidence implicating Epstein-Barr virus (EBV).
Purpose of the Study:
- To review epidemiological and mechanistic data supporting a causal link between EBV infection and MS.
- To critically evaluate experimental models used in MS-EBV research.
Main Methods:
- Epidemiological analysis of EBV seroconversion and MS onset.
- Mechanistic studies exploring molecular mimicry (EBNA1 targeting CNS proteins like GlialCAM).
- In vitro and in vivo experimental models (EAE, humanized mice, non-human primates).
Main Results:
- EBV infection confers a >30-fold increased risk for MS.
- Molecular mimicry is a leading proposed mechanism, involving cross-reactivity between EBV antigens and CNS proteins.
- Experimental models demonstrate EBV's role in breaking immune tolerance and driving neuroinflammation.
Conclusions:
- Strong evidence supports a causal role for EBV in MS etiology.
- Genetic and environmental factors modulate the EBV-MS relationship.
- Refinement of experimental models is crucial for developing targeted EBV-based MS therapeutics.
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