IFITMs from Mycobacteria Confer Resistance to Influenza Virus When Expressed in Human Cells

William J Melvin1, Temet M McMichael2, Nicholas M Chesarino3

  • 1Department of Microbial Infection and Immunity, Center for Microbial Interface Biology, the Ohio State University, Columbus, OH 43210, USA. wjamesmelvin@gmail.com.

Viruses
|June 16, 2015
PubMed

Insights

Bacterial interferon-induced transmembrane proteins (IFITMs) restrict influenza virus in human cells, revealing conserved antiviral mechanisms. These findings support a gene transfer origin for vertebrate IFITMs, refined over evolution.

Area of Science:

  • Virology
  • Molecular Biology
  • Evolutionary Biology

Background:

  • Interferon-induced transmembrane proteins (IFITMs) are key antiviral factors in vertebrates, notably IFITM3's role in restricting influenza virus.
  • Vertebrate IFITMs are hypothesized to originate from bacterial genes via horizontal gene transfer to early eukaryotes.
  • Bacterial IFITMs share low sequence identity with human IFITM3, prompting investigation into conserved antiviral functionalities.

Purpose of the Study:

  • To investigate the antiviral activity of bacterial IFITMs from Mycobacterium avium and Mycobacterium abscessus in human cells.
  • To identify conserved sequence elements and molecular mechanisms essential for IFITM antiviral function.
  • To explore the evolutionary implications of bacterial IFITMs for the origin of vertebrate antiviral IFITM proteins.

Main Methods:

  • Expression of bacterial IFITMs in human cells to assess resistance against influenza virus infection.
  • Sequence analysis to identify shared functional domains and residues between bacterial and human IFITMs.
  • Biochemical assays including S-palmitoylation analysis, co-immunoprecipitation, and cellular co-localization studies.

Main Results:

  • Both Mycobacterium IFITMs conferred moderate resistance to influenza virus in human cells, acting as functional homologues of IFITM3.
  • Conserved features include hydrophobic domains, S-palmitoylation sites, and phenylalanine residues critical for IFITM3 activity.
  • Bacterial IFITMs were S-palmitoylated and could form complexes with IFITM3, but lacked the endocytic-targeting motif for efficient endolysosomal localization.

Conclusions:

  • Bacterial IFITMs possess intrinsic antiviral activity against influenza, supporting a role for horizontally transferred genes in innate immunity.
  • Conserved structural elements are crucial for IFITM antiviral function, with vertebrate IFITMs evolving enhanced localization and modification signals.
  • The study supports an evolutionary model where bacterial IFITM genes provided an ancestral advantage against viral infections, subsequently refined in vertebrates.