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Enterovirus 3C Protease Cleaves TRIM7 To Dampen Its Antiviral Activity
Wenchun Fan1, Matthew B McDougal1, John W Schoggins1
1Department of Microbiology, UT Southwestern Medical Center, Dallas, Texas, USA.
Abstract:
Mammalian TRIM7 is an antiviral protein that inhibits multiple human enteroviruses by degrading the viral 2BC protein. Whether TRIM7 is reciprocally targeted by enteroviruses is not known. Here, we report that the 3C protease (3Cpro) from two enteroviruses, coxsackievirus B3 (CVB3) and poliovirus, targets TRIM7 for cleavage. CVB3 3Cpro cleaves TRIM7 at glutamine 24 (Q24), resulting in a truncated TRIM7 that fails to inhibit CVB3 due to dampened E3 ubiquitin ligase activity. TRIM7 Q24 is highly conserved across mammals, except in marsupials, which instead have a naturally occurring histidine (H24) that is not subject to 3Cpro cleavage. Marsupials also express two isoforms of TRIM7, and the two proteins from koalas have distinct antiviral activities. The longer isoform contains an additional exon due to alternate splice site usage. This additional exon contains a unique 3Cpro cleavage site, suggesting that certain enteroviruses may have evolved to target marsupial TRIM7 even if the canonical Q24 is missing. Combined with computational analyses indicating that TRIM7 is rapidly evolving, our data raise the possibility that TRIM7 may be targeted by enterovirus evasion strategies and that evolution of TRIM7 across mammals may have conferred unique antiviral properties. IMPORTANCE Enteroviruses are significant human pathogens that cause viral myocarditis, pancreatitis, and meningitis. Knowing how the host controls these viruses and how the viruses may evade host restriction is important for understanding fundamental concepts in antiviral immunity and for informing potential therapeutic interventions. In this study, we demonstrate that coxsackievirus B3 uses its virally encoded protease to target the host antiviral protein TRIM7 for cleavage, suggesting a potential mechanism of viral immune evasion. We additionally show that TRIM7 has evolved in certain mammalian lineages to express protein variants with distinct antiviral activities and susceptibilities to viral protease-mediated cleavage.
Insights
Enteroviruses target the antiviral TRIM7 protein using their protease. TRIM7 evolution in mammals creates variants with different antiviral activities and susceptibility to viral attack.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Mammalian TRIM7 protein exhibits antiviral properties against enteroviruses by degrading viral 2BC protein.
- The reciprocal targeting of TRIM7 by enteroviruses remains unexplored.
Purpose of the Study:
- To investigate whether enteroviruses target TRIM7.
- To elucidate the mechanism of TRIM7 cleavage by viral proteases.
- To explore the evolutionary adaptations of TRIM7 in response to viral pressure.
Main Methods:
- Protease assays using coxsackievirus B3 (CVB3) and poliovirus 3C proteases.
- Site-directed mutagenesis to identify cleavage sites on TRIM7.
- Analysis of TRIM7 isoforms and their antiviral activity in marsupials.
- Computational analysis of TRIM7 evolution.
Main Results:
- CVB3 and poliovirus 3C proteases cleave mammalian TRIM7 at glutamine 24 (Q24).
- Cleavage results in truncated TRIM7 with reduced E3 ubiquitin ligase activity, impairing antiviral function.
- Marsupial TRIM7, with histidine at position 24 (H24), is resistant to cleavage.
- Marsupial TRIM7 exhibits distinct isoforms with varying antiviral activities and sensitivities to cleavage.
Conclusions:
- Enteroviruses employ 3C proteases to evade TRIM7-mediated antiviral defense.
- TRIM7 has evolved diverse mechanisms, including alternative splicing and altered cleavage sites, to confer resistance against viral evasion strategies.
- The rapid evolution of TRIM7 suggests a continuous arms race between host antiviral factors and viral pathogens.
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