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Infection of Primary Nasal Epithelial Cells Grown at an Air-Liquid Interface to Characterize Human Coronavirus-Host Interactions
Published on: September 22, 2023
Human metapneumovirus glycoprotein G disrupts mitochondrial signaling in airway epithelial cells
Xiaoyong Bao1, Deepthi Kolli, Junping Ren
1Department of Pediatrics, The University of Texas Medical Branch at Galveston, Galveston, Texas, United States of America. xibao@utmb.edu
Abstract:
Human metapneumovirus (hMPV) is a recently identified RNA virus belonging to the Paramyxoviridae family. It is a common cause of respiratory tract infections in children, adults, and immunocompromised patients, for which no specific treatment or vaccine is available. Recent investigations in our lab identified hMPV glycoprotein G as an important virulence factor, as a recombinant virus lacking the G protein (rhMPV-ΔG) exhibited enhanced production of important immune and antiviral mediators, such as cytokines, chemokines and type I interferon (IFN) in airway epithelial cells, and expression of G protein alone inhibits cellular signaling dependent on retinoic induced gene (RIG)-I, a RNA helicase with a fundamental role in initiating hMPV-induced cellular responses. In this study, we have further investigated the mechanism underlying the inhibitory role of hMPV G protein on RIG-I-dependent signaling. We found that the interaction of hMPV G with RIG-I occurs primarily through the CARD domains of RIG-I N-terminus, preventing RIG-I association with the adaptor protein MAVS (mitochondrial antiviral signaling protein), recruitment of RIG-I to mitochondria, as well as the interaction between mitochondria and mitochondria-associated membrane (MAM) component of the endoplasmic reticulum (ER), which contains STINGS, an important part of the viral-induced RIG-I/MAVS signaling pathway, leading in the end to the inhibition of cytokine, chemokine and type I IFN expression. Mutagenesis analysis showed that hMPV G protein cytoplasmic domain played a major role in the observed inhibitory activity, and recombinant viruses expressing a G protein with amino acid substitution in position 2 and 3 recapitulated most of the phenotype observed with rhMPV-ΔG mutant upon infection of airway epithelial cells.
Insights
Human metapneumovirus glycoprotein G inhibits antiviral immunity by blocking RIG-I signaling. This interaction prevents immune mediator production, crucial for combating the virus and developing treatments.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Human metapneumovirus (hMPV) is a significant respiratory pathogen lacking specific treatments or vaccines.
- The hMPV glycoprotein G is identified as a key virulence factor.
- hMPV glycoprotein G inhibits cellular antiviral signaling pathways.
Purpose of the Study:
- To elucidate the mechanism by which hMPV glycoprotein G inhibits RIG-I-dependent signaling.
- To identify the specific interactions between hMPV G protein and host antiviral factors.
Main Methods:
- Investigated the interaction between hMPV G protein and RIG-I using molecular and cellular assays.
- Utilized recombinant viruses lacking the G protein (rhMPV-ΔG) and G protein mutants.
- Analyzed the impact on RIG-I/MAVS signaling pathway components and immune mediator production.
Main Results:
- hMPV G protein interacts with RIG-I's CARD domains, hindering RIG-I/MAVS complex formation and mitochondrial recruitment.
- The interaction disrupts the mitochondrial-ER interface, affecting STING localization and downstream signaling.
- Mutagenesis of the G protein cytoplasmic domain partially restored antiviral responses.
Conclusions:
- hMPV G protein actively suppresses the RIG-I innate immune pathway through direct interaction with RIG-I.
- This viral mechanism evades host antiviral defenses, contributing to hMPV pathogenesis.
- Targeting the G protein-RIG-I interaction could be a therapeutic strategy against hMPV infections.
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