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.

Plos Biology
|December 21, 2022
PubMed

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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