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Updated: Aug 16, 2025

Using the E1A Minigene Tool to Study mRNA Splicing Changes
Published on: April 22, 2021
Alternative splicing liberates a cryptic cytoplasmic isoform of mitochondrial MECR that antagonizes influenza virus
Steven F Baker1, Helene Meistermann2, Manuel Tzouros2
1Department of Medical Microbiology and Immunology, University of Wisconsin-Madison, Madison, Wisconsin, United States of America.
Abstract:
Viruses must balance their reliance on host cell machinery for replication while avoiding host defense. Influenza A viruses are zoonotic agents that frequently switch hosts, causing localized outbreaks with the potential for larger pandemics. The host range of influenza virus is limited by the need for successful interactions between the virus and cellular partners. Here we used immunocompetitive capture-mass spectrometry to identify cellular proteins that interact with human- and avian-style viral polymerases. We focused on the proviral activity of heterogenous nuclear ribonuclear protein U-like 1 (hnRNP UL1) and the antiviral activity of mitochondrial enoyl CoA-reductase (MECR). MECR is localized to mitochondria where it functions in mitochondrial fatty acid synthesis (mtFAS). While a small fraction of the polymerase subunit PB2 localizes to the mitochondria, PB2 did not interact with full-length MECR. By contrast, a minor splice variant produces cytoplasmic MECR (cMECR). Ectopic expression of cMECR shows that it binds the viral polymerase and suppresses viral replication by blocking assembly of viral ribonucleoprotein complexes (RNPs). MECR ablation through genome editing or drug treatment is detrimental for cell health, creating a generic block to virus replication. Using the yeast homolog Etr1 to supply the metabolic functions of MECR in MECR-null cells, we showed that specific antiviral activity is independent of mtFAS and is reconstituted by expressing cMECR. Thus, we propose a strategy where alternative splicing produces a cryptic antiviral protein that is embedded within a key metabolic enzyme.
Insights
Researchers discovered a cryptic antiviral protein within mitochondrial enoyl CoA-reductase (MECR) that suppresses influenza virus replication by blocking viral ribonucleoprotein complex assembly.
Area of Science:
- Virology
- Molecular Biology
- Cellular Biology
Background:
- Influenza A viruses are zoonotic, posing pandemic risks due to host range limitations.
- Viral replication requires host cell machinery while evading host defenses.
- Understanding virus-host interactions is key to controlling influenza spread.
Purpose of the Study:
- To identify cellular proteins interacting with influenza A viral polymerases.
- To investigate the proviral role of hnRNP UL1 and the antiviral role of MECR.
- To elucidate the mechanism by which MECR inhibits influenza virus replication.
Main Methods:
- Immunocompetitive capture-mass spectrometry to identify viral polymerase interacting proteins.
- Analysis of MECR localization and interaction with viral polymerase subunit PB2.
- Functional studies using ectopic expression of MECR splice variants and MECR-null cells.
Main Results:
- A minor splice variant, cytoplasmic MECR (cMECR), binds the viral polymerase.
- cMECR suppresses influenza virus replication by inhibiting viral ribonucleoprotein complex assembly.
- MECR ablation impairs cell health, causing a general block to viral replication.
- The specific antiviral activity of cMECR is independent of its metabolic function in mitochondrial fatty acid synthesis.
Conclusions:
- Alternative splicing generates a cryptic antiviral protein (cMECR) from the MECR gene.
- cMECR acts as a host antiviral factor by interfering with influenza virus replication.
- This finding reveals a novel strategy of virus-host interaction involving metabolic enzymes.
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