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Inhibition of MALT1 Decreases Neuroinflammation and Pathogenicity of Virulent Rabies Virus in Mice
E Kip1,2,3, J Staal2,3, H G Tima4
1National Reference Center of Rabies, Viral diseases, Infectious Diseases in Humans, Sciensano, Brussels, Belgium.
Abstract:
Rabies virus is a neurovirulent RNA virus, which causes about 59,000 human deaths each year. Treatment for rabies does not exist due to incomplete understanding of the pathogenesis. MALT1 mediates activation of several immune cell types and is involved in the proliferation and survival of cancer cells. MALT1 acts as a scaffold protein for NF-κB signaling and a cysteine protease that cleaves substrates, leading to the expression of immunoregulatory genes. Here, we examined the impact of genetic or pharmacological MALT1 inhibition in mice on disease development after infection with the virulent rabies virus strain CVS-11. Morbidity and mortality were significantly delayed in Malt1-/- compared to Malt1+/+ mice, and this effect was associated with lower viral load, proinflammatory gene expression, and infiltration and activation of immune cells in the brain. Specific deletion of Malt1 in T cells also delayed disease development, while deletion in myeloid cells, neuronal cells, or NK cells had no effect. Disease development was also delayed in mice treated with the MALT1 protease inhibitor mepazine and in knock-in mice expressing a catalytically inactive MALT1 mutant protein, showing an important role of MALT1 proteolytic activity. The described protective effect of MALT1 inhibition against infection with a virulent rabies virus is the precise opposite of the sensitizing effect of MALT1 inhibition that we previously observed in the case of infection with an attenuated rabies virus strain. Together, these data demonstrate that the role of immunoregulatory responses in rabies pathogenicity is dependent on virus virulence and reveal the potential of MALT1 inhibition for therapeutic intervention.IMPORTANCE Rabies virus is a neurotropic RNA virus that causes encephalitis and still poses an enormous challenge to animal and public health. Efforts to establish reliable therapeutic strategies have been unsuccessful and are hampered by gaps in the understanding of virus pathogenicity. MALT1 is an intracellular protease that mediates the activation of several innate and adaptive immune cells in response to multiple receptors, and therapeutic MALT1 targeting is believed to be a valid approach for autoimmunity and MALT1-addicted cancers. Here, we study the impact of MALT1 deficiency on brain inflammation and disease development in response to infection of mice with the highly virulent CVS-11 rabies virus. We demonstrate that pharmacological or genetic MALT1 inhibition decreases neuroinflammation and extends the survival of CVS-11-infected mice, providing new insights in the biology of MALT1 and rabies virus infection.
Insights
Inhibiting MALT1 protease in mice significantly delayed rabies virus disease progression and mortality. This finding highlights MALT1
Area of Science:
- Virology
- Immunology
- Neuroscience
Background:
- Rabies virus is a deadly neurotropic RNA virus causing approximately 59,000 human deaths annually.
- Current rabies treatment is lacking due to an incomplete understanding of its pathogenesis.
- Mucosa-Associated Lymphoid Tissue Lymphoma Translocation protein 1 (MALT1) is crucial for immune cell activation and cancer cell survival.
Purpose of the Study:
- To investigate the impact of MALT1 inhibition on rabies virus disease development in mice.
- To explore the role of MALT1's proteolytic activity in rabies pathogenesis.
- To assess MALT1 inhibition as a potential therapeutic strategy against rabies.
Main Methods:
- Used genetic MALT1 inhibition (Malt1-/- mice, T cell-specific deletion) and pharmacological inhibition (mepazine).
- Infected mice with the virulent rabies virus strain CVS-11.
- Analyzed disease progression, viral load, gene expression, and immune cell infiltration in the brain.
Main Results:
- Malt1-/- mice and T cell-MALT1 deficient mice showed significantly delayed morbidity and mortality.
- MALT1 inhibition reduced viral load, pro-inflammatory gene expression, and immune cell activation in the brain.
- Pharmacological MALT1 inhibition and use of a catalytically inactive MALT1 mutant also delayed disease.
Conclusions:
- MALT1 proteolytic activity plays a critical role in rabies virus pathogenesis.
- MALT1 inhibition demonstrates a protective effect against virulent rabies virus infection.
- The role of MALT1 in rabies is dependent on virus virulence, suggesting therapeutic potential.
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