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Differential regulation of type I interferon and epidermal growth factor pathways by a human Respirovirus virulence
Grégory Caignard1, Anastassia V Komarova, Mehdi Bouraï
1Laboratoire de Génomique Virale et Vaccination, Department of Virology, Institut Pasteur, CNRS URA 3015, Paris, France.
Abstract:
A number of paramyxoviruses are responsible for acute respiratory infections in children, elderly and immuno-compromised individuals, resulting in airway inflammation and exacerbation of chronic diseases like asthma. To understand the molecular pathogenesis of these infections, we searched for cellular targets of the virulence protein C of human parainfluenza virus type 3 (hPIV3-C). We found that hPIV3-C interacts directly through its C-terminal domain with STAT1 and GRB2, whereas C proteins from measles or Nipah viruses failed to do so. Binding to STAT1 explains the previously reported capacity of hPIV3-C to block type I interferon signaling, but the interaction with GRB2 was unexpected. This adaptor protein bridges Epidermal Growth Factor (EGF) receptor to MAPK/ERK pathway, a signaling cascade recently found to be involved in airway inflammatory response. We report that either hPIV3 infection or transient expression of hPIV3-C both increase cellular response to EGF, as assessed by Elk1 transactivation and phosphorylation levels of ERK1/2, 40S ribosomal subunit protein S6 and translation initiation factor 4E (eIF4E). Furthermore, inhibition of MAPK/ERK pathway with U0126 prevented viral protein expression in infected cells. Altogether, our data provide molecular basis to explain the role of hPIV3-C as a virulence factor and determinant of pathogenesis and demonstrate that Paramyxoviridae have evolved a single virulence factor to block type I interferon signaling and to boost simultaneous cellular response to growth factors.
Insights
Human parainfluenza virus type 3 (hPIV3) virulence protein C targets STAT1 and GRB2, blocking interferon signaling and enhancing growth factor response to drive respiratory infection pathogenesis.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Paramyxoviruses cause acute respiratory infections, exacerbating conditions like asthma.
- Understanding the molecular mechanisms of viral pathogenesis is crucial for developing effective treatments.
Purpose of the Study:
- To identify cellular targets of the human parainfluenza virus type 3 (hPIV3) virulence protein C.
- To elucidate the role of hPIV3-C in viral pathogenesis and airway inflammation.
Main Methods:
- Investigated interactions between hPIV3-C and cellular proteins STAT1 and GRB2 using biochemical assays.
- Assessed cellular responses to Epidermal Growth Factor (EGF) following hPIV3 infection or hPIV3-C expression.
- Utilized MAPK/ERK pathway inhibitors to evaluate their effect on viral protein expression.
Main Results:
- hPIV3-C directly binds to STAT1 and GRB2, unlike C proteins from measles or Nipah viruses.
- hPIV3-C interaction with GRB2 links the virus to the MAPK/ERK pathway, involved in airway inflammation.
- hPIV3 infection and hPIV3-C expression enhance cellular responses to EGF, increasing Elk1 transactivation and ERK1/2 phosphorylation.
- MAPK/ERK pathway inhibition with U0126 reduced viral protein expression in infected cells.
Conclusions:
- hPIV3-C acts as a virulence factor by blocking type I interferon signaling via STAT1.
- hPIV3-C hijacks the GRB2-MAPK/ERK pathway to boost cellular responses to growth factors, contributing to pathogenesis.
- Paramyxoviruses utilize a single protein (C) to simultaneously inhibit antiviral immunity and promote pro-inflammatory signaling.
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