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Receptor-mediated cell entry of paramyxoviruses: Mechanisms, and consequences for tropism and pathogenesis
Chanakha K Navaratnarajah1, Alex R Generous2, Iris Yousaf2
1Department of Molecular Medicine, Mayo Clinic, Rochester, Minnesota 55905.
Abstract:
Research in the last decade has uncovered many new paramyxoviruses, airborne agents that cause epidemic diseases in animals including humans. Most paramyxoviruses enter epithelial cells of the airway using sialic acid as a receptor and cause only mild disease. However, others cross the epithelial barrier and cause more severe disease. For some of these viruses, the host receptors have been identified, and the mechanisms of cell entry have been elucidated. The tetrameric attachment proteins of paramyxoviruses have vastly different binding affinities for their cognate receptors, which they contact through different binding surfaces. Nevertheless, all input signals are converted to the same output: conformational changes that trigger refolding of trimeric fusion proteins and membrane fusion. Experiments with selectively receptor-blinded viruses inoculated into their natural hosts have provided insights into tropism, identifying the cells and tissues that support growth and revealing the mechanisms of pathogenesis. These analyses also shed light on diabolically elegant mechanisms used by morbilliviruses, including the measles virus, to promote massive amplification within the host, followed by efficient aerosolization and rapid spread through host populations. In another paradigm of receptor-facilitated severe disease, henipaviruses, including Nipah and Hendra viruses, use different members of one protein family to cause zoonoses. Specific properties of different paramyxoviruses, like neurotoxicity and immunosuppression, are now understood in the light of receptor specificity. We propose that research on the specific receptors for several newly identified members of the Paramyxoviridae family that may not bind sialic acid is needed to anticipate their zoonotic potential and to generate effective vaccines and antiviral compounds.
Insights
New paramyxoviruses cause epidemic diseases. Understanding their specific receptors is crucial for predicting zoonotic potential and developing vaccines against these airborne agents.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Paramyxoviruses are airborne agents causing epidemic diseases in animals and humans.
- Most paramyxoviruses use sialic acid to enter airway epithelial cells, causing mild illness.
- Some paramyxoviruses cross epithelial barriers, leading to severe diseases with identified host receptors and entry mechanisms.
Purpose of the Study:
- To elucidate the role of specific host receptors in paramyxovirus tropism, pathogenesis, and zoonotic potential.
- To understand how paramyxovirus attachment proteins mediate cell entry and trigger membrane fusion.
- To identify research needs for newly discovered paramyxoviruses that may not bind sialic acid.
Main Methods:
- Analysis of paramyxovirus attachment protein binding affinities and interaction surfaces.
- Conformational change studies triggered by receptor binding.
- In vivo experiments using receptor-blinded viruses in natural hosts to study tropism and pathogenesis.
- Comparative analysis of morbillivirus and henipavirus entry mechanisms.
Main Results:
- Paramyxovirus attachment proteins exhibit diverse binding affinities and utilize different surfaces to interact with receptors.
- Receptor-specific interactions trigger conserved conformational changes leading to membrane fusion.
- Receptor specificity dictates viral tropism, pathogenesis, and zoonotic potential, as seen in morbilliviruses and henipaviruses.
- Neurotoxicity and immunosuppression are linked to specific paramyxovirus-receptor interactions.
Conclusions:
- Host receptor specificity is a key determinant of paramyxovirus disease severity and spread.
- Further research on receptors for novel paramyxoviruses is essential for pandemic preparedness.
- Understanding receptor interactions will guide the development of targeted vaccines and antiviral therapies against paramyxoviruses.
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