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Biology subjects

Vernejoul, F.

Publications and source records attributed to Vernejoul, F..

2 recordsLinked to original sources

STING activation counters glioblastoma by vascular alteration and immune surveillance

Glioblastoma (GBM) is an aggressive brain tumor with a median survival of 15 months and has limited treatment options. Immunotherapy with checkpoint inhibitors has shown minimal efficacy in combating GBM, and large clinical trials have failed. New immunotherapy approaches and a deeper understanding of immune surveillance of GBM are needed to advance treatment options for this devastating disease. In this study, we used two preclinical models of GBM: orthotopically delivering either GBM stem cells or employing CRISPR-mediated tumorigenesis by adeno-associated virus, to establish immunologically proficient and non-inflamed tumors, respectively. After tumor development, the innate immune system was activated through long-term STING activation by a pharmacological agonist, which reduced tumor progression and prolonged survival. Recruitment and activation of cytotoxic T-cells were detected in the tumors, and T-cell specificity towards the cancer cells was observed. Interestingly, prolonged STING activation altered the tumor vasculature, inducing hypoxia and activation of VEGFR, as measured by a kinome array and VEGF expression. Combination treatment with anti-PD1 did not provide a synergistic effect, indicating that STING activation alone is sufficient to activate immune surveillance and hinder tumor development through vascular disruption. These results guide future studies to refine innate immune activation as a treatment approach for GBM, in combination with anti-VEGF to impede tumor progression and induce an immunological response against the tumor.

cancer biology↗

Preclinical development of non-viral gene therapy for patients with advanced pancreatic cancer

Pancreatic ductal adenocarcinoma remains one of the greatest challenges in oncology for which therapeutic intervention is urgently needed. We demonstrated that the intratumoral gene transfer of somatostatin receptor 2, to combat tumor aggressiveness, or of deoxycytidine kinase and uridylate monophosphate kinase, to sensitize to gemcitabine chemotherapy, has antitumoral potential. Here, we describe the development of CYL-02 non-viral gene-therapy product, that comprises a DNA-plasmid encoding for the three aforementioned genes complexed with PolyEthylEnimine (22 kDa). In this work, we performed preclinical toxicology, biodistribution and therapeutic activity studies of CYL-02 in experimental models of pancreatic cancer. We demonstrated the safety of CYL-02 and defined the maximal tolerated dose in two animal species. CYL-02 co-administrated with gemcitabine did not increase gemcitabine toxicity. Biodistribution studies revealed that CYL-02 is rapidly cleared from blood following intravenous administration, and sequestered in tumors following intratumoral injection. CYL-02 drives the expression of therapeutic genes in cancer cells and strongly sensitizes tumor cells to gemcitabine, with significant inhibition of tumor cells dissemination. This study was instrumental for the later use of CYL-02 in patients with advanced pancreatic cancer, demonstrating that rigorous and thorough preclinical investigations are informative for the clinical transfer of gene therapy against pancreatic cancer. GRAPHICAL ABSTRACT

cancer biology↗