Lysosome-Targeting Bacterial Outer Membrane Vesicles for Tumor Specific Degradation of PD-L1
Panpan Ji1, Pengying Wu2, Lantian Wang2
1Department of Digestive Surgery, State Key Laboratory of Holistic Integrative Management of Gastrointestinal Cancers and Xijing Hospital of Digestive Diseases, Fourth Military Medical University, Xi'an, 710032, China.
Abstract:
Increased expression of immune check point genes, such as PD-L1, is one of the main reasons for immunosuppression, especially for colon cancer. Development of novel therapeutic strategies is of great importance to improve the prognosis. In this study, outer membrane vesicles (OMV) derived from Gram-negative bacteria are engineered to immune checkpoint blockade nanosystem for efficient elicitation of anti-tumor immunity. Briefly, the OMVs are engineered with Lyp1-Traptavidin (S52G, R53D mutant of streptavidin) fusion protein displayed on the surface. The Lyp-1 endows the OMV with the capacity to target tumor tissues, while the Traptavidin ensures easy decoration of biotinylated anti-PD-L1 and biotinylated M6P (mannose 6-phosphate). The simultaneously anchored anti-PD-L1 and M6P (ligand for cation-independent mannose 6-phosphate receptor) on the engineered OMVs coordinately direct the membrane PD-L1 to lysosome for degradation, and thus unleash the anti-tumor immunity. With syngeneic tumor model, the engineered OMVs are confirmed to boost immunity, inhibit cancer growth, and thus prolong survival. Together, A proposed OMV-based modular nanosystem that enables assembly of biotinylated anti-PD-L1 and M6P on the surface for tumor-targeted immune checkpoint blockade.
Insights
Engineered outer membrane vesicles (OMVs) target colon cancer by degrading PD-L1, unleashing anti-tumor immunity and prolonging survival. This novel nanosystem offers a promising strategy for cancer therapy.
Area of Science:
- Immunology
- Nanotechnology
- Oncology
Background:
- Immune checkpoint gene expression, like PD-L1, drives immunosuppression in cancers such as colon cancer.
- Novel therapeutic strategies are crucial for improving patient prognosis.
Purpose of the Study:
- To engineer outer membrane vesicles (OMVs) into an immune checkpoint blockade nanosystem.
- To enhance anti-tumor immunity for improved cancer treatment.
Main Methods:
- OMVs from Gram-negative bacteria were engineered with a Lyp1-Traptavidin fusion protein.
- Targeting ligands (Lyp1) and biotinylated anti-PD-L1/M6P were anchored to OMVs.
- Lysosomal degradation of PD-L1 was induced using the engineered OMVs.
Main Results:
- Engineered OMVs successfully targeted tumor tissues.
- Simultaneous anchoring of anti-PD-L1 and M6P directed PD-L1 to lysosomes for degradation.
- The nanosystem boosted anti-tumor immunity, inhibited cancer growth, and prolonged survival in a syngeneic tumor model.
Conclusions:
- A modular OMV-based nanosystem was developed for tumor-targeted immune checkpoint blockade.
- This system effectively degrades PD-L1, unleashing anti-tumor immunity.
- The engineered OMVs show potential for improving colon cancer treatment outcomes.
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