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Bacterial outer membrane vesicles in tumor prevention and treatment: advancements in research and application
Jiayu Liu1,2, Ting Wang3, Yongsheng Zhou3
1College of Inspection, Ningxia Medical University, Yinchuan 750004, China. 2455281549@qq.com.
Abstract:
As one of the major challenges to global health, the innovation of prevention and treatment methods for tumors has consistently been a focal point in medical research. In recent years, bacterial membrane vesicles (MVs), particularly outer membrane vesicles (OMVs) secreted by Gram-negative bacteria, have garnered significant attention due to their unique biological characteristics and potential anti-tumor effects. OMVs are bilayer lipid nanocapsules that are actively released by bacteria during their growth, typically ranging in diameter from 20 to 300 nm. They are rich in various biomolecules, including lipids, proteins, nucleic acids, and other small molecules. These components not only reflect the outer membrane structure of bacteria but also contain numerous pathogen-associated molecular patterns (PAMPs) related to bacterial pathogenicity and immunogenicity. Consequently, OMVs play an important role in bacterial resistance, antimicrobial activity, gene transfer, signal transduction, and immune regulation. Research and application of OMVs in anti-tumor therapy have made significant progress. This paper reviews the classification, characteristics, preparation, safety evaluation, biological functions, and specific research advancements of OMVs as antitumor drugs, immunomodulators, and carriers. Additionally, common methods for the preparation and modification of OMVs, including preliminary extraction, purification, characterization, and drug loading, are discussed. This paper also summarizes the challenges faced by OMVs in anti-tumor research and outlines future development directions, aiming to provide a reference for the further application of OMVs in tumor treatment.
Insights
Bacterial outer membrane vesicles (OMVs) show promise as anti-tumor agents. These nanocapsules can be developed as drugs, immunomodulators, and carriers for cancer therapy, offering new treatment avenues.
Area of Science:
- Biotechnology
- Nanomedicine
- Immunology
Background:
- Tumor treatment innovation is crucial for global health.
- Bacterial outer membrane vesicles (OMVs) are emerging as promising anti-tumor agents.
- OMVs possess unique biological characteristics and potential therapeutic applications.
Purpose of the Study:
- To review the classification, characteristics, and preparation of OMVs for anti-tumor therapy.
- To discuss the biological functions and safety evaluation of OMVs.
- To summarize research advancements and future directions for OMVs in cancer treatment.
Main Methods:
- Extraction and purification of OMVs from Gram-negative bacteria.
- Characterization of OMV composition and structure.
- Evaluation of OMV anti-tumor effects, immunomodulatory functions, and drug-loading capabilities.
Main Results:
- OMVs are lipid nanocapsules rich in biomolecules, reflecting bacterial outer membrane composition.
- OMVs contain pathogen-associated molecular patterns (PAMPs) involved in immune responses.
- Research demonstrates significant progress in utilizing OMVs as antitumor drugs, immunomodulators, and carriers.
Conclusions:
- OMVs represent a versatile platform for developing novel anti-tumor therapies.
- Further research into OMV preparation, modification, and clinical application is warranted.
- OMVs hold significant potential to advance cancer treatment strategies.
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