Related Experiment Video
Updated: Jun 14, 2025

Production of Pseudotyped Particles to Study Highly Pathogenic Coronaviruses in a Biosafety Level 2 Setting
Published on: March 1, 2019
Interaction between SARS-CoV PBM and Cellular PDZ Domains Leading to Virus Virulence
Jose M Honrubia1, Jose R Valverde2, Diego Muñoz-Santos1
1Department of Molecular and Cell Biology, Centro Nacional de Biotecnología (CNB-CSIC), Darwin 3, Campus Universidad Autónoma de Madrid, 28049 Madrid, Spain.
Abstract:
The interaction between SARS-CoV PDZ-binding motifs (PBMs) and cellular PDZs is responsible for virus virulence. The PBM sequence present in the 3a and envelope (E) proteins of SARS-CoV can potentially bind to over 400 cellular proteins containing PDZ domains. The role of SARS-CoV 3a and E proteins was studied. SARS-CoVs, in which 3a-PBM and E-PMB have been deleted (3a-PBM-/E-PBM-), reduced their titer around one logarithmic unit but still were viable. In addition, the absence of the E-PBM and the replacement of 3a-PBM with that of E did not allow the rescue of SARS-CoV. E protein PBM was necessary for virulence, activating p38-MAPK through the interaction with Syntenin-1 PDZ domain. However, the presence or absence of the homologous motif in the 3a protein, which does not bind to Syntenin-1, did not affect virus pathogenicity. Mutagenesis analysis and in silico modeling were performed to study the extension of the PBM of the SARS-CoV E protein. Alanine and glycine scanning was performed revealing a pair of amino acids necessary for optimum virus replication. The binding of E protein with the PDZ2 domain of the Syntenin-1 homodimer induced conformational changes in both PDZ domains 1 and 2 of the dimer.
Insights
The SARS-CoV envelope (E) protein
Area of Science:
- Virology
- Molecular Biology
- Structural Biology
Background:
- Severe Acute Respiratory Syndrome Coronavirus (SARS-CoV) utilizes PDZ-binding motifs (PBMs) to interact with host cellular PDZ domains, contributing to viral virulence.
- Over 400 cellular proteins with PDZ domains are potential binding partners for SARS-CoV 3a and envelope (E) proteins' PBMs.
- The specific roles of SARS-CoV 3a and E proteins in viral pathogenesis require detailed investigation.
Purpose of the Study:
- To elucidate the specific contributions of the PBMs in SARS-CoV 3a and E proteins to viral virulence and replication.
- To determine the necessity of the E protein's PBM for SARS-CoV pathogenicity and its interaction with host factors.
- To investigate the structural basis of the interaction between the SARS-CoV E protein PBM and the Syntenin-1 PDZ domain.
Main Methods:
- Generation of SARS-CoV mutants with deleted or altered PBMs in the 3a and E proteins.
- Assessment of viral titers and viability of generated SARS-CoV mutants.
- Mutagenesis analysis, including alanine and glycine scanning, of the SARS-CoV E protein PBM.
- In silico modeling and structural analysis of protein-protein interactions.
Main Results:
- Deletion of both 3a-PBM and E-PBM in SARS-CoV resulted in a one-logarithmic unit reduction in viral titer, with the virus remaining viable.
- Absence of E-PBM or its replacement prevented SARS-CoV rescue, indicating its critical role in virulence.
- The E protein PBM is essential for virulence, mediating p38-MAPK activation via Syntenin-1 PDZ domain interaction.
- The 3a protein's PBM is not essential for pathogenicity as it does not bind Syntenin-1.
- Mutagenesis identified specific amino acids in the E protein PBM crucial for optimal viral replication.
- Binding of the E protein to the Syntenin-1 PDZ2 domain induced conformational changes in both PDZ domains of the Syntenin-1 homodimer.
Conclusions:
- The PDZ-binding motif of the SARS-CoV envelope (E) protein is indispensable for viral virulence, primarily through interaction with Syntenin-1 and subsequent p38-MAPK activation.
- While the 3a protein's PBM is not critical for pathogenicity, the E protein's PBM is essential, highlighting differential roles in SARS-CoV pathogenesis.
- Structural insights reveal that E protein binding to Syntenin-1 induces significant conformational alterations, providing a basis for understanding virus-host interactions.
Related Concept Videos
Immune Response Against Viral Pathogens
NK Cells
NK cells are a crucial part of our innate immune system, acting as the first line of defense against viral infections. These cells can recognize and kill infected cells without prior exposure to the virus, effectively slowing down the spread of infection. Additionally, NK cells produce proinflammatory...
Viral Recombination

