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Updated: Aug 11, 2026

Ex vivo Expansion of Tumor-reactive T Cells by Means of Bryostatin 1/Ionomycin and the Common Gamma Chain Cytokines Formulation
Published on: January 14, 2011
Gene therapy of cancer based on interleukin 12
Bruno Sangro1, Ignacio Melero, Cheng Qian
1Liver Unit, Clinica Universitaria de Navarra, and the Division of Hepatology and Gene Therapy, Centro de Investigación Médica Aplicada, Pamplona, Spain. bsangro@unav.es
Abstract:
Tumor formation and growth depends mainly on the inability of the organism to elicit a potent immune response, and on the formation of new blood vessels that enable tumor nutrition. Interleukin-12 (IL-12) therapy can target both processes. And IL-12-based gene therapy may restrict IL-12 production to the relevant site in order to obtain enhanced antitumor activity and reduced toxicity. In the clinical setting, IL-12 gene transfer can be used either to improve the pharmacokinetic/pharmacodynamic profile of the cytokine, to transduce dendritic cells or to enhance the efficiency of antitumor vaccination. It can also synergize with other procedures involving the simultaneous transfer of other transgenes or non-gene based strategies. The strong anti-tumoral power shown in many different animal models has not been found in early clinical trials in which cancer patients were treated by peritumoral injections of autologous fibroblasts producing IL-12, intratumoral injections of an adenoviral vector encoding human IL-12 genes, or intratumoral injection of autologous dendritic cells transduced ex vivo with this same adenoviral vector. However, these trials have set the proof-of-concept that local production of IL-12 inside a tumor can stimulate tumor infiltration by effector immune cells and that in some cases it is followed by tumor regression. From the many questions that arise after these disappointing results the most relevant concerns the duration and intensity of transgene expression and the capability to monitor this topics in vivo. New vectors that might achieve regulated, long-term production of this cytokine might have better results and merit clinical testing.
Insights
Interleukin-12 (IL-12) gene therapy shows promise in targeting tumor growth by enhancing immune response and inhibiting blood vessel formation. Further research into novel vectors is needed to optimize IL-12 delivery for improved clinical outcomes.
Area of Science:
- Oncology
- Immunology
- Gene Therapy
Background:
- Tumor growth relies on immune evasion and angiogenesis.
- Interleukin-12 (IL-12) therapy targets both tumor-promoting processes.
- Gene therapy offers localized IL-12 production for enhanced efficacy and reduced toxicity.
Purpose of the Study:
- To review the potential of IL-12 gene therapy in cancer treatment.
- To evaluate early clinical trial outcomes of IL-12 gene transfer strategies.
- To identify challenges and future directions for IL-12 based cancer therapies.
Main Methods:
- Review of preclinical data and early-phase clinical trials involving IL-12 gene transfer.
- Analysis of various delivery methods including viral vectors and ex vivo cell transduction.
- Examination of strategies for improving pharmacokinetic/pharmacodynamic profiles and antitumor vaccination.
Main Results:
- Preclinical studies demonstrated significant antitumor activity of IL-12.
- Early clinical trials showed proof-of-concept for local IL-12 production, stimulating immune cell infiltration and occasional tumor regression.
- Clinical efficacy did not match preclinical promise, highlighting challenges in transgene expression and monitoring.
Conclusions:
- Local IL-12 production can induce antitumor immune responses.
- Optimizing transgene expression duration and intensity is critical for clinical success.
- Development of novel, regulated vectors for sustained IL-12 production is warranted for future clinical testing.
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