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Updated: Jun 11, 2025

Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
MDA5 ISGylation is crucial for immune signaling to control viral replication and pathogenesis
Lucky Sarkar1, GuanQun Liu1, Dhiraj Acharya1
1Florida Research and Innovation Center, Cleveland Clinic, Port St. Lucie, FL 34987, USA.
Abstract:
The posttranslational modification (PTM) of innate immune sensor proteins by ubiquitin or ubiquitin-like proteins is crucial for regulating antiviral host responses. The cytoplasmic dsRNA receptor melanoma differentiation-associated protein 5 (MDA5) undergoes several PTMs including ISGylation within its first caspase activation and recruitment domain (CARD), which promotes MDA5 signaling. However, the relevance of MDA5 ISGylation for antiviral immunity in an infected organism has been elusive. Here, we generated knock-in mice (MDA5 ) in which the two major ISGylation sites, K23 and K43, in MDA5 were mutated. Primary cells derived from MDA5 mice exhibited abrogated endogenous MDA5 ISGylation and an impaired ability of MDA5 to form oligomeric assemblies leading to blunted cytokine responses to MDA5 RNA-agonist stimulation or infection with encephalomyocarditis virus (EMCV) or West Nile virus. Phenocopying MDA5 -/- mice, the MDA5 mice infected with EMCV displayed increased mortality, elevated viral titers, and an ablated induction of cytokines and chemokines compared to WT mice. Molecular studies identified human HERC5 (and its functional murine homolog HERC6) as the primary E3 ligases responsible for MDA5 ISGylation and activation. Taken together, these findings establish the importance of CARD ISGylation for MDA5-mediated RNA virus restriction, promoting potential avenues for immunomodulatory drug design for antiviral or anti-inflammatory applications.
Insights
Posttranslational modification (PTM) of melanoma differentiation-associated protein 5 (MDA5) via ISGylation is vital for antiviral immunity. Mutating MDA5 ISGylation sites in mice impaired immune responses and increased mortality from viral infections.
Area of Science:
- Immunology
- Molecular Biology
- Virology
Background:
- Posttranslational modification (PTM) of innate immune sensors regulates antiviral responses.
- Melanoma differentiation-associated protein 5 (MDA5) ISGylation in its CARD domain promotes signaling, but its in vivo relevance was unclear.
Purpose of the Study:
- To investigate the in vivo role of MDA5 ISGylation in antiviral immunity.
- To identify the E3 ligases responsible for MDA5 ISGylation.
Main Methods:
- Generated knock-in mice with mutated MDA5 ISGylation sites (K23, K43).
- Assessed cellular responses to RNA agonists and viral infections (EMCV, WNV).
- Analyzed mouse survival, viral loads, and cytokine/chemokine induction.
- Identified E3 ligases using molecular studies.
Main Results:
- MDA5 ISGylation-deficient cells showed impaired MDA5 oligomerization and blunted cytokine responses.
- MDA5 ISGylation-deficient mice exhibited increased mortality, higher viral titers, and reduced cytokine/chemokine induction upon EMCV infection.
- HERC5 and HERC6 were identified as the primary E3 ligases for MDA5 ISGylation.
Conclusions:
- CARD ISGylation is essential for MDA5-mediated restriction of RNA viruses.
- These findings highlight MDA5 ISGylation as a target for antiviral and anti-inflammatory drug development.
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