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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Development of a novel modified vaccine (TheraVacM) for curative treatment of mouse solid tumors
Md Masud Alam1, Yue Huang1, Joost J Oppenheim1
1Cellular Immunology Section, Cancer Innovation Laboratory, Center for Cancer Research, National Cancer Institute, Frederick, MD, USA.
Abstract:
Monotherapy with immune checkpoint blockade (ICB) antibodies (anti-CTLA4 and anti-PD1/PDL-1) is only effective for 20% to 30% of patients with certain cancers. Patients with cancers harboring few effector T cells (Teffs) are insensitive to ICB therapy. The lack of tumor-specific Teffs is predominantly caused by the paralysis of tumor-infiltrating dendritic cells (TiDCs) resulting from immunosuppression in the tumor microenvironment. We have identified a potent combination of high mobility group nucleosome binding domain 1 (HMGN1, N1) and fibroblast stimulating lipopeptide-1 (FSL-1) that can synergistically trigger maturation of both mouse and human DCs. Accordingly, we designed a combinational anti-cancer immunotherapy with two arms: an immune-activating arm consisting of N1 and FSL-1 to stimulate the generation of Teffs by triggering full maturation of TiDCs, and an ICB arm using anti-PDL-1 or anti-CTLA4 to prevent Teffs from being silenced in the tumor tissue. This combinational immunotherapeutic vaccination regimen dubbed modified TheraVac (TheraVacM) has proved particularly effective as it cured 100% of mice bearing established ectopic CT26 colon and RENCA kidney tumors. The resultant tumor-free mice were resistant to subsequent re-challenge with the same tumors, indicating the generation of long-term tumor specific protective immunity. Since the immune-activating arm also induces full maturation of human DCs, and anti-PDL-1 or anti-CTLA4 have been FDA-approved, this combinational immunotherapy has the potential to be an effective clinical therapy for patients with solid tumors.
Insights
A novel immunotherapy combining high mobility group nucleosome binding domain 1 (HMGN1) and fibroblast stimulating lipopeptide-1 (FSL-1) with immune checkpoint blockade (ICB) shows promise for treating solid tumors by enhancing T cell responses.
Area of Science:
- Immunology
- Cancer Research
- Vaccinology
Background:
- Immune checkpoint blockade (ICB) monotherapy is effective in only 20-30% of cancer patients.
- Cancers with low effector T cell (Teff) infiltration are resistant to ICB.
- Tumor-infiltrating dendritic cell (TiDC) paralysis in immunosuppressive tumor microenvironments limits Teff generation.
Purpose of the Study:
- To develop a novel combination immunotherapy to overcome resistance to ICB.
- To enhance anti-tumor T cell responses by targeting dendritic cell maturation.
Main Methods:
- Identified a synergistic combination of high mobility group nucleosome binding domain 1 (HMGN1) and fibroblast stimulating lipopeptide-1 (FSL-1) to mature dendritic cells (DCs).
- Designed a two-arm immunotherapy: an immune-activating arm (HMGN1 + FSL-1) and an ICB arm (anti-PDL-1 or anti-CTLA4).
- Tested the combination regimen, modified TheraVac (TheraVacM), in mouse models of colon and kidney tumors.
Main Results:
- HMGN1 and FSL-1 synergistically triggered maturation of mouse and human DCs.
- TheraVacM cured 100% of mice with established CT26 colon and RENCA kidney tumors.
- Cured mice developed long-term, tumor-specific protective immunity, resisting re-challenge.
Conclusions:
- The combination of HMGN1, FSL-1, and ICB (TheraVacM) effectively generates tumor-specific T cell immunity.
- This approach overcomes resistance to ICB by enhancing TiDC function.
- TheraVacM holds significant potential for clinical application in solid tumors, given the maturation of human DCs and FDA-approved ICB agents.
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