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Published on: July 25, 2022
Engineering nanoplatforms of bacterial outer membrane vesicles to overcome cancer therapy resistance
Qing-Qing Chai1, Dan Li2, Min Zhang3
1Department of Pharmacy, Huadong Hospital, Fudan University, Shanghai, 200040, China; Department of Pharmacy, Fudan University Shanghai Cancer Center, Fudan University, Shanghai, 200032, China; Department of Oncology, Shanghai Medical College, Fudan University, Shanghai, 200032, China.
Abstract:
Resistance to cancer therapy is driven by physical barriers, tumor heterogeneity, selective therapeutic pressure, immunosuppressive tumor microenvironment (TME) and others. Bacterial outer membrane vesicles (OMVs) represent a promising nanotherapeutic platform to combat cancer therapy resistance. This review discusses the dual roles of OMVs in tumorigenesis and cancer therapy, highlighting their potential applications to enhance treatment efficacy. OMVs from pathogenic bacteria, such as Fusobacterium nucleatum and Helicobacter pylori, exacerbate chemoresistance by reshaping TME through hypoxia-induced metabolic reprogramming and immune evasion, while OMVs from some bacteria, such as probiotics, counteract immunosuppression by promoting cytotoxic T-cell infiltration and macrophage polarization. As bio-derived and conveniently engineered drug delivery platforms, OMVs maximize the synergetic anticancer effect by pathogen associated molecular patterns and the payloads. These functional payloads include siRNAs, cytotoxicity and molecular agents, and immune checkpoint inhibitors. Bacterial OMVs demonstrate unique advantages through their capacity to penetrate physical barriers, achieve tumor-specific targeting, activate immune responses, to overcome cancer therapy resistance. A successful example is the OMV-based nanoplatform with engineered OMVs co-delivering CD47-siRNA and doxorubicin to overcome drug resistance by inducing immunogenic cell death and dendritic cell activation of glioblastoma. Furthermore, OMV-based cancer vaccines presented with tumor antigens or hybridized with tumor-derived membranes enhance dendritic cell maturation and antigen-specific T-cell responses, reversing treatment resistance. By addressing challenges in mass production and safety concerns, OMVs-based platforms can be developed as powerful tools for more effective and personalized cancer treatments.
Insights
Bacterial outer membrane vesicles (OMVs) offer a novel nanotherapeutic approach to overcome cancer therapy resistance by delivering payloads and activating immune responses. These vesicles can penetrate physical barriers and target tumors, enhancing treatment efficacy.
Area of Science:
- Nanotechnology
- Immunology
- Oncology
Background:
- Cancer therapy resistance is a major clinical challenge, driven by factors like the tumor microenvironment (TME) and tumor heterogeneity.
- Bacterial outer membrane vesicles (OMVs) have emerged as a dual-acting platform with roles in both promoting and combating cancer progression.
Purpose of the Study:
- To review the multifaceted roles of bacterial OMVs in cancer therapy resistance.
- To highlight the potential of OMVs as nanotherapeutic platforms for enhancing cancer treatment efficacy.
Main Methods:
- Literature review of studies investigating bacterial OMVs in cancer.
- Analysis of OMV mechanisms in modulating the TME, immune evasion, and drug delivery.
Main Results:
- Pathogenic bacterial OMVs can exacerbate resistance by altering the TME and promoting immune evasion.
- Probiotic bacterial OMVs can enhance anti-tumor immunity by promoting T-cell infiltration and macrophage polarization.
- Engineered OMVs can deliver therapeutic payloads (e.g., siRNA, drugs, immune checkpoint inhibitors) and overcome resistance mechanisms.
Conclusions:
- Bacterial OMVs present unique advantages for cancer therapy, including barrier penetration, tumor targeting, and immune activation.
- OMV-based platforms, such as those co-delivering drugs and targeting immune pathways, show promise in overcoming resistance.
- Further development addressing mass production and safety is needed to realize the full potential of OMV-based cancer treatments.
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