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Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
The Cytomegalovirus M35 Protein Directly Binds to the Interferon-β Enhancer and Modulates Transcription of
Hella Schwanke1,2, Vladimir Gonçalves Magalhães2, Stefan Schmelz3
1Institute of Genetics, Technische Universität Braunschweig, Braunschweig, Germany.
Abstract:
Induction of type I interferon (IFN) gene expression is among the first lines of cellular defense a virus encounters during primary infection. We previously identified the tegument protein M35 of murine cytomegalovirus (MCMV) as an essential antagonist of this antiviral system, showing that M35 interferes with type I IFN induction downstream of pattern-recognition receptor (PRR) activation. Here, we report structural and mechanistic details of M35's function. Determination of M35's crystal structure combined with reverse genetics revealed that homodimerization is a key feature for M35's immunomodulatory activity. In electrophoretic mobility shift assays (EMSAs), purified M35 protein specifically bound to the regulatory DNA element that governs transcription of the first type I IFN gene induced in nonimmune cells, Ifnb1. DNA-binding sites of M35 overlapped with the recognition elements of interferon regulatory factor 3 (IRF3), a key transcription factor activated by PRR signaling. Chromatin immunoprecipitation (ChIP) showed reduced binding of IRF3 to the host Ifnb1 promoter in the presence of M35. We furthermore defined the IRF3-dependent and the type I IFN signaling-responsive genes in murine fibroblasts by RNA sequencing of metabolically labeled transcripts (SLAM-seq) and assessed M35's global effect on gene expression. Stable expression of M35 broadly influenced the transcriptome in untreated cells and specifically downregulated basal expression of IRF3-dependent genes. During MCMV infection, M35 impaired expression of IRF3-responsive genes aside of Ifnb1. Our results suggest that M35-DNA binding directly antagonizes gene induction mediated by IRF3 and impairs the antiviral response more broadly than formerly recognized. IMPORTANCE Replication of the ubiquitous human cytomegalovirus (HCMV) in healthy individuals mostly goes unnoticed but can impair fetal development or cause life-threatening symptoms in immunosuppressed or -deficient patients. Like other herpesviruses, CMV extensively manipulates its hosts and establishes lifelong latent infections. Murine CMV (MCMV) presents an important model system as it allows the study of CMV infection in the host organism. We previously showed that during entry into host cells, MCMV virions release the evolutionary conserved protein M35 protein to immediately dampen the antiviral type I interferon (IFN) response induced by pathogen detection. Here, we show that M35 dimers bind to regulatory DNA elements and interfere with recruitment of interferon regulatory factor 3 (IRF3), a key cellular factor for antiviral gene expression. Thereby, M35 interferes with expression of type I IFNs and other IRF3-dependent genes, reflecting the importance for herpesviruses to avoid IRF3-mediated gene induction.
Insights
Murine cytomegalovirus protein M35 directly binds DNA, preventing interferon regulatory factor 3 (IRF3) from activating antiviral genes. This mechanism broadly impairs the host
Area of Science:
- Virology and Immunology
- Molecular Biology
- Structural Biology
Background:
- Type I interferons (IFNs) are crucial for cellular defense against viral infections.
- Murine cytomegalovirus (MCMV) protein M35 is a known antagonist of the type I IFN response.
- MCMV utilizes conserved proteins like M35 to evade host antiviral mechanisms.
Purpose of the Study:
- To elucidate the structural and mechanistic details of MCMV M35's antagonism of type I IFN induction.
- To investigate M35's interaction with host DNA and key transcription factors involved in IFN gene expression.
Main Methods:
- Crystal structure determination of M35.
- Reverse genetics to assess M35's homodimerization and function.
- Electrophoretic mobility shift assays (EMSAs) to study M35-DNA binding.
- Chromatin immunoprecipitation (ChIP) to analyze IRF3 binding to the Ifnb1 promoter.
- RNA sequencing (SLAM-seq) to profile M35's global impact on gene expression.
Main Results:
- M35 homodimerization is essential for its immunomodulatory activity.
- M35 directly binds to the regulatory DNA element of the Ifnb1 gene, overlapping with IRF3 binding sites.
- M35 binding reduces IRF3 recruitment to the Ifnb1 promoter and impairs the expression of IRF3-dependent antiviral genes.
- M35 broadly affects the transcriptome and downregulates basal expression of IRF3-dependent genes.
Conclusions:
- M35 antagonizes type I IFN induction by directly binding to regulatory DNA and interfering with IRF3 function.
- This DNA-binding mechanism allows MCMV to broadly suppress antiviral gene expression beyond Ifnb1.
- Understanding M35's function provides insights into herpesvirus immune evasion strategies.
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