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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
A New Strategy Toward B Cell-Based Cancer Vaccines by Active Immunization With Mimotopes of Immune Checkpoint
Joshua Tobias1, Claire Battin2, Annika De Sousa Linhares2
1Center for Pathophysiology, Infectiology and Immunology, Institute of Specific Prophylaxis and Tropical Medicine, Medical University of Vienna, Vienna, Austria.
Abstract:
Therapeutic monoclonal antibodies (mAbs), targeting tumor antigens, or immune checkpoints, have demonstrated a remarkable anti-tumor effect against various malignancies. However, high costs for mono- or combination therapies, associated with adverse effects or possible development of resistance in some patients, warrant further development and modification to gain more flexibility for this immunotherapy approach. An attractive alternative to passive immunization with therapeutic antibodies might be active immunization with mimotopes (B-cell peptides) representing the mAbs' binding epitopes, to activate the patient's own anti-tumor immune response following immunization. Here, we identified and examined the feasibility of inducing anti-tumor effects in vivo following active immunization with a mimotope of the immune checkpoint programmed cell death 1 (PD1), alone or in combination with a Her-2/neu B-cell peptide vaccine. Overlapping peptides spanning the extracellular domains of human PD1 (hPD1) were used to identify hPD1-derived mimotopes, using the therapeutic mAb Nivolumab as a proof of concept. Additionally, for in vivo evaluation in a tumor mouse model, a mouse PD1 (mPD1)-derived mimotope was identified using an anti-mPD1 mAb with mPD1/mPDL-1 blocking capacity. The identified mimotopes were characterized by in vitro assays, including a reporter cell-based assay, and their anti-tumor effects were evaluated in a syngeneic tumor mouse model stably expressing human Her-2/neu. The identified PD1-derived mimotopes were shown to significantly block the mAbs' capacity in inhibiting the respective PD1/PD-L1 interactions. A significant reduction in tumor growth in vivo was observed following active immunization with the mPD1-derived mimotope, associated with a significant reduction in proliferation and increased apoptotic rates in the tumors. Particularly, combined vaccination with the mPD1-derived mimotope and a multiple B-cell epitope Her-2/neu vaccine potentiated the vaccine's anti-tumor effect. Our results suggest active immunization with mimotopes of immune checkpoint inhibitors either as monotherapy or as combination therapy with tumor-specific vaccines, as a new strategy for cancer treatment.
Insights
Active immunization with mimotopes, or peptide mimics of antibodies, offers a novel cancer immunotherapy strategy. This approach, using programmed cell death 1 (PD1) mimotopes, reduced tumor growth and enhanced anti-tumor immunity in preclinical models.
Area of Science:
- Immunology
- Oncology
- Vaccine Development
Background:
- Therapeutic monoclonal antibodies (mAbs) show anti-tumor effects but have limitations like cost and resistance.
- Active immunization with mimotopes (B-cell peptides) is an alternative to passive antibody therapy for cancer treatment.
- Mimotopes represent antibody binding epitopes, potentially activating a patient's own anti-tumor immune response.
Purpose of the Study:
- To investigate the feasibility of active immunization with programmed cell death 1 (PD1) mimotopes for anti-tumor effects.
- To evaluate the efficacy of PD1 mimotopes alone or combined with a Her-2/neu vaccine in a preclinical cancer model.
- To identify and characterize PD1-derived mimotopes using therapeutic monoclonal antibodies.
Main Methods:
- Overlapping peptides of human PD1 (hPD1) were used to identify hPD1 mimotopes, with Nivolumab as a proof of concept.
- A mouse PD1 (mPD1)-derived mimotope was identified for in vivo evaluation using an anti-mPD1 mAb.
- In vitro assays and a syngeneic tumor mouse model expressing human Her-2/neu were used to assess anti-tumor effects.
Main Results:
- Identified PD1-derived mimotopes effectively blocked the inhibitory capacity of therapeutic monoclonal antibodies.
- Active immunization with an mPD1 mimotope significantly reduced tumor growth in vivo.
- Combined vaccination with mPD1 mimotope and Her-2/neu vaccine potentiated anti-tumor effects, reducing tumor proliferation and increasing apoptosis.
Conclusions:
- Active immunization with mimotopes of immune checkpoint inhibitors is a promising cancer treatment strategy.
- Mimotope-based monotherapy or combination therapy with tumor-specific vaccines offers a flexible immunotherapy approach.
- This strategy holds potential for enhancing anti-tumor immune responses and overcoming limitations of current antibody therapies.
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