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Published on: April 21, 2015
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.
Abstract:
Interferon induced transmembrane proteins (IFITMs) found in vertebrates restrict infections by specific viruses. IFITM3 is known to be essential for restriction of influenza virus infections in both mice and humans. Vertebrate IFITMs are hypothesized to have derived from a horizontal gene transfer from bacteria to a primitive unicellular eukaryote. Since bacterial IFITMs share minimal amino acid identity with human IFITM3, we hypothesized that examination of bacterial IFITMs in human cells would provide insight into the essential characteristics necessary for antiviral activity of IFITMs. We examined IFITMs from Mycobacterium avium and Mycobacterium abscessus for potential antiviral activity. Both of these IFITMs conferred a moderate level of resistance to influenza virus in human cells, identifying them as functional homologues of IFITM3. Analysis of sequence elements shared by bacterial IFITMs and IFITM3 identified two hydrophobic domains, putative S-palmitoylation sites, and conserved phenylalanine residues associated with IFITM3 interactions, which are all necessary for IFITM3 antiviral activity. We observed that, like IFITM3, bacterial IFITMs were S-palmitoylated, albeit to a lesser degree. We also demonstrated the ability of a bacterial IFITM to co-immunoprecipitate with IFITM3 suggesting formation of a complex, and also visualized strong co-localization of bacterial IFITMs with IFITM3. However, the mycobacterial IFITMs lack the endocytic-targeting motif conserved in vertebrate IFITM3. As such, these bacterial proteins, when expressed alone, had diminished colocalization with cathepsin B-positive endolysosomal compartments that are the primary site of IFITM3-dependent influenza virus restriction. Though the precise evolutionary origin of vertebrate IFITMs is not known, our results support a model whereby transfer of a bacterial IFITM gene to eukaryotic cells may have provided a selective advantage against viral infection that was refined through the course of vertebrate evolution to include more robust signals for S-palmitoylation and localization to sites of endocytic virus trafficking.
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.
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