Targeting cell-impermeable prodrug activation to tumor microenvironment eradicates multiple drug-resistant neoplasms
Wenyuan Wu1, Yunping Luo, Chengzao Sun
1Department of Immunology, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, CA 92037, USA.
Abstract:
The tumor microenvironment is notably enriched with a broad spectrum of proteases. The proteolytic specificities of peptide substrates provide modular chemical tools for the rational design of cell-impermeable prodrugs that are specifically activated by proteases extracellularly in the tumor microenvironment. Targeting cell-impermeable prodrug activation to tumor microenvironment will significantly reduce drug toxicity to normal tissues. The activated prodrug attacks both tumor and stroma cells through a "bystander effect" without selectively deleting target-producing cells, therefore further minimizing resistance and toxicity. Here, we showed that legumain, the only asparaginyl endopeptidase of the mammalian genome, is highly expressed by neoplastic, stromal, and endothelial cells in solid tumors. Legumain is present extracellularly in the tumor microenvironment, associated with matrix as well as cell surfaces and functional locally in the reduced pH of the tumor microenvironment. A novel legumain-activated, cell-impermeable doxorubicin prodrug LEG-3 was designed to be activated exclusively in the tumor microenvironment. Upon administration, there is a profound increase of the end-product doxorubicin in nuclei of cells in tumors but little in other tissues. This tumor microenvironment-activated prodrug completely arrested growth of a variety of neoplasms, including multidrug-resistant tumor in vivo and significantly extended survival without evidence of myelosuppression or cardiac toxicity. The tumor microenvironment-activated prodrug design can be extended to other proteases and chemotherapeutic compounds and provides new potentials for the rational development of more effective functionally targeted cancer therapeutics.
Insights
A novel prodrug targets legumain (an enzyme) in the tumor microenvironment, releasing doxorubicin specifically within cancer cells. This approach minimizes toxicity and effectively treats various cancers, including drug-resistant types.
Area of Science:
- Biochemistry
- Oncology
- Drug Discovery
Background:
- Tumor microenvironment is rich in proteases.
- Protease-activated prodrugs offer targeted cancer therapy.
- Reducing systemic toxicity is crucial for effective cancer treatment.
Purpose of the Study:
- To design a cell-impermeable prodrug activated by legumain in the tumor microenvironment.
- To evaluate the efficacy and toxicity of the legumain-activated prodrug LEG-3.
- To explore the potential of protease-activated prodrugs for cancer therapeutics.
Main Methods:
- Design of a novel legumain-activated doxorubicin prodrug (LEG-3).
- In vivo administration of LEG-3 in tumor models.
- Assessment of doxorubicin distribution, tumor growth inhibition, and survival.
- Evaluation of systemic toxicity, including myelosuppression and cardiac effects.
Main Results:
- LEG-3 was selectively activated in the tumor microenvironment, releasing doxorubicin into tumor cell nuclei.
- Complete tumor growth arrest was observed in various neoplasms, including multidrug-resistant tumors.
- Significant extension of survival was achieved with no evidence of myelosuppression or cardiac toxicity.
- Targeted activation minimized drug exposure to normal tissues.
Conclusions:
- Legumain-activated prodrugs represent a promising strategy for targeted cancer therapy.
- This approach significantly reduces systemic toxicity and overcomes drug resistance.
- The design platform can be extended to other proteases and chemotherapeutic agents for broader applications.
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