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Updated: Jun 25, 2025

A "Plug-And-Display" Nanoparticle Vaccine Platform Based on Outer Membrane Vesicles Displaying SARS-CoV-2 Receptor-Binding Domain
Published on: July 25, 2022
From virus to immune system: Harnessing membrane-derived vesicles to fight COVID-19 by interacting with biological
Jiayuan Li1, Haiqing Xiao1, Chang Zhang2
1State Key Laboratory of Infectious Disease Vaccine Development, Xiang An Biomedicine Laboratory & Center for Molecular Imaging and Translational Medicine, School of Public Health, Xiamen University, Xiamen, China.
Abstract:
Emerging and re-emerging viral pandemics have emerged as a major public health concern. Highly pathogenic coronaviruses, which cause severe respiratory disease, threaten human health and socioeconomic development. Great efforts are being devoted to the development of safe and efficacious therapeutic agents and preventive vaccines to combat them. Nevertheless, the highly mutated virus poses a challenge to drug development and vaccine efficacy, and the use of common immunomodulatory agents lacks specificity. Benefiting from the burgeoning intersection of biological engineering and biotechnology, membrane-derived vesicles have shown superior potential as therapeutics due to their biocompatibility, design flexibility, remarkable bionics, and inherent interaction with phagocytes. The interactions between membrane-derived vesicles, viruses, and the immune system have emerged as a new and promising topic. This review provides insight into considerations for developing innovative antiviral strategies and vaccines against SARS-CoV-2. First, membrane-derived vesicles may provide potential biomimetic decoys with a high affinity for viruses to block virus-receptor interactions for early interruption of infection. Second, membrane-derived vesicles could help achieve a balanced interplay between the virus and the host's innate immunity. Finally, membrane-derived vesicles have revealed numerous possibilities for their employment as vaccines.
Insights
Membrane-derived vesicles offer a novel approach to combat viral pandemics like SARS-CoV-2. These biomimetic decoys can block infections, modulate immunity, and serve as effective vaccine platforms.
Area of Science:
- Biotechnology
- Virology
- Immunology
Background:
- Viral pandemics, particularly from coronaviruses, pose significant global health and economic threats.
- Developing effective antiviral therapies and vaccines is challenging due to rapid viral mutation and lack of specific immunomodulatory agents.
Purpose of the Study:
- To explore the potential of membrane-derived vesicles as innovative antiviral strategies and vaccine candidates against SARS-CoV-2.
- To review the unique properties of membrane-derived vesicles for therapeutic applications.
Main Methods:
- Review of current research on membrane-derived vesicles in the context of viral infections.
- Analysis of vesicle interactions with viruses and the host immune system.
Main Results:
- Membrane-derived vesicles can act as biomimetic decoys, binding to viruses and blocking host cell entry.
- Vesicles can modulate the host's innate immune response, promoting a balanced interaction with the virus.
- Vesicles demonstrate significant potential for development into novel vaccine platforms.
Conclusions:
- Membrane-derived vesicles represent a promising, versatile platform for developing next-generation antiviral therapies and vaccines.
- Their biocompatibility, design flexibility, and bionic properties make them ideal candidates for combating emerging viral threats like SARS-CoV-2.
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