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The Two Faces of Bacterial Membrane Vesicles: Pathophysiological Roles and Therapeutic Opportunities
Himadri B Thapa1, Stephan P Ebenberger1, Stefan Schild1,2,3
1Institute of Molecular Biosciences, University of Graz, Humboldtstrasse 50, 8010 Graz, Austria.
Abstract:
Bacterial membrane vesicles (MVs) are nanosized lipid particles secreted by lysis or blebbing mechanisms from Gram-negative and -positive bacteria. It is becoming increasingly evident that MVs can promote antimicrobial resistance but also provide versatile opportunities for therapeutic exploitation. As non-living facsimiles of parent bacteria, MVs can carry multiple bioactive molecules such as proteins, lipids, nucleic acids, and metabolites, which enable them to participate in intra- and interspecific communication. Although energetically costly, the release of MVs seems beneficial for bacterial fitness, especially for pathogens. In this review, we briefly discuss the current understanding of diverse MV biogenesis routes affecting MV cargo. We comprehensively highlight the physiological functions of MVs derived from human pathogens covering in vivo adaptation, colonization fitness, and effector delivery. Emphasis is given to recent findings suggesting a vicious cycle of MV biogenesis, pathophysiological function, and antibiotic therapy. We also summarize potential therapeutical applications, such as immunotherapy, vaccination, targeted delivery, and antimicrobial potency, including their experimental validation. This comparative overview identifies common and unique strategies for MV modification used along diverse applications. Thus, the review summarizes timely aspects of MV biology in a so far unprecedented combination ranging from beneficial function for bacterial pathogen survival to future medical applications.
Insights
Bacterial membrane vesicles (MVs) are tiny particles released by bacteria that can help them survive and cause disease. These MVs also offer exciting possibilities for new therapies and drug delivery systems.
Area of Science:
- Microbiology
- Nanotechnology
- Biochemistry
Background:
- Bacterial membrane vesicles (MVs) are nanoparticles released by bacteria.
- MVs play roles in bacterial communication, adaptation, and pathogenesis.
- They carry various bioactive molecules, influencing host-pathogen interactions.
Purpose of the Study:
- To review the biogenesis and functions of bacterial MVs.
- To highlight the role of MVs in bacterial fitness and disease.
- To explore therapeutic applications of MVs.
Main Methods:
- Literature review of bacterial MV biogenesis and function.
- Analysis of MV roles in pathogen survival and virulence.
- Summary of current and potential therapeutic uses of MVs.
Main Results:
- MV biogenesis pathways influence their cargo and function.
- MVs contribute to pathogen adaptation, colonization, and immune evasion.
- A link exists between MV production, disease, and antibiotic resistance.
- MVs have potential in immunotherapy, vaccination, and drug delivery.
Conclusions:
- Bacterial MVs are crucial for pathogen survival and virulence.
- Understanding MV biology opens avenues for novel therapeutic strategies.
- MVs can be engineered for targeted drug delivery and antimicrobial applications.
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