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Published on: January 9, 2019
Functional reconstitution of the MERS CoV receptor binding motif
Lakshminarasaiah Uppalapati1, Anna Roitburd-Berman1, Yael Weiss-Ottolenghi1
1The Shmunis School of Biomedicine and Cancer Research, the George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv, 69978 Israel.
Abstract:
In the early 1960's the first human coronaviruses (designated 229E and OC43) were identified as etiologic agents of the common cold, to be followed by the subsequent isolation of three more human coronaviruses similarly associated with cold-like diseases. In contrast to these "mild" coronaviruses, over the last 20 years there have been three independent events of emergence of pandemic severe and acute life-threatening respiratory diseases caused by three novel beta-coronaviruses, SARS CoV, MERS CoV and most recently SARS CoV2. Whereas the first SARS CoV appeared in November 2002 and spontaneously disappeared by the summer of 2003, MERS CoV has continued persistently to spill over to humans via an intermediary camel vector, causing tens of cases annually. Although human-to-human transmission is rare, the fatality rate of MERS CoV disease is remarkably higher than 30%. COVID-19 however, is fortunately much less fatal, despite that its etiologic agent, SARS CoV2, is tremendously infectious, particularly with the recent evolution of the Omicron variants of concern (BA.1 and BA.2). Of note, MERS CoV prevalence in camel populations in Africa and the Middle East is extremely high. Moreover, MERS CoV and SARS CoV2 co-exist in the Middle East and especially in Saudi Arabia and the UAE, where sporadic incidences of co-infection have already been reported. Co-infection, either due to reverse spill-over of SARS CoV2 to camels or in double infected humans could lead to recombination between the two viruses, rendering either SARS CoV2 more lethal or MERS CoV more transmittable. In an attempt to prepare for what could develop into a catastrophic event, we have focused on developing a novel epitope-based immunogen for MERS CoV. Implementing combinatorial phage-display conformer libraries, the Receptor Binding Motif (RBM) of the MERS CoV Spike protein has been successfully reconstituted and shown to be recognized by a panel of seven neutralizing monoclonal antibodies.
Insights
Researchers developed a novel MERS-CoV immunogen targeting the Spike protein
Area of Science:
- Virology
- Immunology
- Public Health
Background:
- Human coronaviruses, including common cold agents (229E, OC43) and pandemic strains (SARS-CoV, MERS-CoV, SARS-CoV2), pose significant health threats.
- Middle East Respiratory Syndrome Coronavirus (MERS-CoV) exhibits high fatality and persistent circulation via camel vectors.
- Co-circulation and co-infection of MERS-CoV and SARS-CoV2 raise concerns for viral recombination and increased pandemic potential.
Purpose of the Study:
- To develop a novel epitope-based immunogen for MERS-CoV.
- To address the potential threat of MERS-CoV and SARS-CoV2 co-infection and recombination.
- To create a vaccine candidate against MERS-CoV.
Main Methods:
- Utilized combinatorial phage-display conformer libraries.
- Focused on reconstituting the Receptor Binding Motif (RBM) of the MERS-CoV Spike protein.
- Employed a panel of seven neutralizing monoclonal antibodies for validation.
Main Results:
- Successfully reconstituted the MERS-CoV Spike protein's Receptor Binding Motif (RBM).
- Demonstrated that the reconstituted RBM is recognized by neutralizing monoclonal antibodies.
- Provided a foundation for developing an epitope-based MERS-CoV immunogen.
Conclusions:
- The developed MERS-CoV RBM immunogen shows promise for vaccine development.
- This research is crucial for preparedness against potential MERS-CoV and SARS-CoV2 recombination events.
- Further development of this immunogen could enhance MERS-CoV prevention strategies.
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