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Peptide Scanning-assisted Identification of a Monoclonal Antibody-recognized Linear B-cell Epitope
Published on: March 24, 2017
Structural Basis of Human Parechovirus Neutralization by Human Monoclonal Antibodies
Shabih Shakeel1, Brenda M Westerhuis2, Ari Ora1
1Institute of Biotechnology, University of Helsinki, Helsinki, Finland.
Insights
Two novel monoclonal antibodies, AM18 and AM28, neutralize human parechoviruses (HPeV) by distinct mechanisms. AM18 blocks viral entry by targeting integrins, while AM28 inhibits viral replication by preventing RNA uncoating, offering potential new treatments for HPeV infections.
Area of Science:
- Virology
- Immunology
- Structural Biology
Background:
- Human parechoviruses (HPeV) are increasingly recognized as significant causes of central nervous system disease and neonatal sepsis in children.
- Current treatments for severe HPeV infections, such as intravenous immunoglobulin, offer only moderate success.
- Monoclonal antibodies present a promising avenue for direct inhibition of HPeV infection.
Purpose of the Study:
- To characterize the neutralizing mechanisms of two newly developed human monoclonal antibodies, AM18 and AM28, against human parechoviruses 1 and 2.
- To elucidate the atomic interactions between these antibodies and the HPeV capsid to understand neutralization at a molecular level.
Main Methods:
- Epitope mapping using peptide scanning and surface plasmon resonance.
- Structural analysis employing electron cryomicroscopy and three-dimensional image reconstruction.
- Biophysical assays including fluorescence-based thermal shift assays.
Main Results:
- AM18 recognizes a linear epitope on the VP1 capsid protein, including an arginine-glycine-aspartic acid motif, crucial for host cell integrin binding, leading to neutralization via aggregation and blocking of viral entry.
- AM28 targets quaternary epitopes formed by VP0 and VP3 loops, stabilizing the capsid and inhibiting RNA uncoating, thus preventing viral replication.
- Both antibodies demonstrated cross-neutralization capabilities against other HPeV strains.
Conclusions:
- AM18 and AM28 represent effective neutralizing agents against HPeV1 and HPeV2 through distinct mechanisms.
- Understanding these antibody-virus interactions provides a foundation for developing targeted antiviral therapies for HPeV infections.
- The identified epitopes and mechanisms offer insights into HPeV pathogenesis and potential therapeutic strategies.
Unlabelled:
Since it was first recognized in 2004 that human parechoviruses (HPeV) are a significant cause of central nervous system and neonatal sepsis, their clinical importance, primarily in children, has started to emerge. Intravenous immunoglobulin treatment is the only treatment available in such life-threatening cases and has given moderate success. Direct inhibition of parechovirus infection using monoclonal antibodies is a potential treatment. We have developed two neutralizing monoclonal antibodies against HPeV1 and HPeV2, namely, AM18 and AM28, which also cross-neutralize other viruses. Here, we present the mapping of their epitopes using peptide scanning, surface plasmon resonance, fluorescence-based thermal shift assays, electron cryomicroscopy, and image reconstruction. We determined by peptide scanning and surface plasmon resonance that AM18 recognizes a linear epitope motif including the arginine-glycine-aspartic acid on the C terminus of capsid protein VP1. This epitope is normally used by the virus to attach to host cell surface integrins during entry and is found in 3 other viruses that AM18 neutralizes. Therefore, AM18 is likely to cause virus neutralization by aggregation and by blocking integrin binding to the capsid. Further, we show by electron cryomicroscopy, three-dimensional reconstruction, and pseudoatomic model fitting that ordered RNA interacts with HPeV1 VP1 and VP3. AM28 recognizes quaternary epitopes on the capsid composed of VP0 and VP3 loops from neighboring pentamers, thereby increasing the RNA accessibility temperature for the virus-AM28 complex compared to the virus alone. Thus, inhibition of RNA uncoating probably contributes to neutralization by AM28.
Importance:
Human parechoviruses can cause mild infections to severe diseases in young children, such as neonatal sepsis, encephalitis, and cardiomyopathy. Intravenous immunoglobulin treatment is the only treatment available in such life-threatening cases. In order to develop more targeted treatment, we have searched for human monoclonal antibodies that would neutralize human parechoviruses 1 and 2, associated with mild infections such as gastroenteritis and severe infections of the central nervous system, and thus allow safe treatment. In the current study, we show how two such promising antibodies interact with the virus, modeling the atomic interactions between the virus and the antibody to propose how neutralization occurs. Both antibodies can cause aggregation; in addition, one antibody interferes with the virus recognizing its target cell, while the other, recognizing only the whole virus, inhibits the genome uncoating and replication in the cell.
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