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Published on: December 5, 2017
Cancer Vaccines Co-Targeting HER2/Neu and IGF1R
Carla De Giovanni1, Lorena Landuzzi2, Arianna Palladini3
1Laboratory of Immunology and Biology of Metastasis, Department of Experimental, Diagnostic and Specialty Medicine, University of Bologna, Viale Filopanti 22, I-40126 Bologna, Italy. carla.degiovanni@unibo.it.
Abstract:
(1) Background: Human epidermal growth factor receptor 2 (HER2)/neu-driven carcinogenesis is delayed by preventive vaccines able to elicit autochthonous antibodies against HER2/neu. Since cooperation between different receptor tyrosine kinases (RTKs) can occur in human as well as in experimental tumors, we investigated the set-up of DNA and cell vaccines to elicit an antibody response co-targeting two RTKs: HER2/neu and the Insulin-like Growth Factor Receptor-1 (IGF1R). (2) Methods: Plasmid vectors carrying the murine optimized IGF1R sequence or the human IGF1R isoform were used as electroporated DNA vaccines. IGF1R plasmids were transfected in allogeneic HER2/neu-positive IL12-producing murine cancer cells to obtain adjuvanted cell vaccines co-expressing HER2/neu and IGF1R. Vaccination was administered in the preneoplastic stage to mice prone to develop HER2/neu-driven, IGF1R-dependent rhabdomyosarcoma. (3) Results: Electroporated DNA vaccines for murine IGF1R did not elicit anti-mIGF1R antibodies, even when combined with Treg-depletion and/or IL12, while DNA vaccines carrying the human IGF1R elicited antibodies recognizing only the human IGF1R isoform. Cell vaccines co-expressing HER2/neu and murine or human IGF1R succeeded in eliciting antibodies recognizing the murine IGF1R isoform. Cell vaccines co-targeting HER2/neu and murine IGF1R induced the highest level of anti-IGF1R antibodies and nearly significantly delayed the onset of spontaneous rhabdomyosarcomas. (4) Conclusions: Multi-engineered adjuvanted cancer cell vaccines can break the tolerance towards a highly tolerized RTK, such as IGF1R. Cell vaccines co-targeting HER2/neu and IGF1R elicited low levels of specific antibodies that slightly delayed onset of HER2/neu-driven, IGF1R-dependent tumors.
Insights
Cancer vaccines targeting Human Epidermal Growth Factor Receptor 2 (HER2)/neu and Insulin-like Growth Factor Receptor-1 (IGF1R) were developed. Adjuvanted cell vaccines co-targeting both receptors showed promise in delaying tumor onset in mice.
Area of Science:
- Oncology
- Immunology
- Vaccine Development
Background:
- Human Epidermal Growth Factor Receptor 2 (HER2)/neu-driven cancers can be delayed by vaccines eliciting antibodies against HER2/neu.
- Cooperation between receptor tyrosine kinases (RTKs) is observed in tumors, necessitating co-targeting strategies.
- This study investigates DNA and cell vaccines targeting both HER2/neu and Insulin-like Growth Factor Receptor-1 (IGF1R).
Purpose of the Study:
- To develop DNA and cell vaccines co-targeting HER2/neu and IGF1R.
- To assess the efficacy of these vaccines in eliciting an antibody response.
- To evaluate the impact on HER2/neu-driven, IGF1R-dependent rhabdomyosarcoma development in mice.
Main Methods:
- DNA vaccines were constructed using plasmid vectors with murine or human IGF1R sequences.
- Adjuvanted cell vaccines were created by transfecting IGF1R plasmids into HER2/neu-positive, IL12-producing cancer cells.
- Vaccination was administered to mice prone to developing rhabdomyosarcoma during the preneoplastic stage.
Main Results:
- Murine IGF1R DNA vaccines failed to elicit anti-IGF1R antibodies, even with adjuvant treatments.
- Human IGF1R DNA vaccines elicited antibodies specific to the human isoform only.
- Cell vaccines co-expressing HER2/neu and IGF1R successfully generated antibodies recognizing murine IGF1R.
- Cell vaccines targeting both HER2/neu and murine IGF1R induced the highest anti-IGF1R antibody levels and nearly significantly delayed tumor onset.
Conclusions:
- Multi-engineered adjuvanted cancer cell vaccines can overcome tolerance to highly tolerized RTKs like IGF1R.
- Co-targeting HER2/neu and IGF1R with cell vaccines elicited antibodies that slightly delayed tumor progression.
- These findings highlight the potential of multi-RTK targeting cancer vaccines.
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