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Nanoparticle based systemic gene therapy for lung cancer: molecular mechanisms and strategies to suppress
Began Gopalan1, Isao Ito, Cynthia D Branch
1Department of Thoracic and Cardiovascular Surgery, The University of Texas, M. D. Anderson Cancer Center, 1515 Holcombe Blvd., Box 445, Houston, TX 77030, USA.
Abstract:
Cancer gene therapy for the treatment of lung cancer has shown promise in the laboratory and in Phase I/II clinical trials. However, it is currently limited to treating localized tumors due to host-immunity against the gene delivery vector and the transgene. Therefore, there is a tremendous effort to develop and test alternate gene delivery vectors that are efficient, non-immunogenic, and applicable for systemic therapy. One such gene delivery vehicle is the non-viral vector, DOTAP:cholesterol (DOTAP:Chol) nanoparticle. Preclinical studies from our laboratory has shown that DOTAP:Chol. nanoparticles are effective systemic gene delivery vectors that efficiently deliver tumor-suppressor genes to disseminated lung tumors. Based on our findings we have recently initiated a Phase-I trial for systemic treatment of lung cancer using a novel tumor suppressor gene, FUS1. Although DOTAP:Chol. nanoparticles complexed to DNA (DNA-nanoparticles) are efficient vectors for systemic therapy, induction of an inflammatory response in a dose-dependent fashion has also been observed thereby limiting its use. A better understanding of the underlying mechanism for DNA-nanoparticles-mediated inflammatory response will allow us to develop strategies to suppress inflammation and expand the therapeutic window in treating human cancer. In the present study we conducted experiments examining the mechanism of nanoparticle-mediated inflammatory response in vitro and in vivo. We demonstrate that systemic administration of DNA-nanoparticles induced multiple signaling molecules both in vitro and in vivo that are associated with inflammation. Use of small molecule inhibitors against the signaling molecules resulted in their suppression and thereby reduced inflammation without affecting transgene expression. Our results provide a rationale to use small molecule inhibitors to suppress nanoparticle-mediated inflammation when administered systemically. Further development and testing will allow us to incorporate this strategy into future clinical trials that is based on systemic non-viral vector gene therapy.
Insights
Researchers explored nanoparticle-mediated inflammation in lung cancer gene therapy. Small molecule inhibitors reduced this inflammation without impacting gene delivery, offering a strategy to improve systemic non-viral vector therapy.
Area of Science:
- Biomedical Engineering
- Molecular Biology
- Oncology
Background:
- Cancer gene therapy shows promise but is limited by host immunity, restricting treatments to localized tumors.
- Systemic gene therapy requires efficient, non-immunogenic delivery vectors, with DOTAP:cholesterol (DOTAP:Chol) nanoparticles being a potential non-viral option.
- While DOTAP:Chol nanoparticles effectively deliver tumor-suppressor genes, they can induce dose-dependent inflammatory responses, limiting their therapeutic window.
Purpose of the Study:
- To investigate the mechanisms underlying nanoparticle-mediated inflammatory responses in vitro and in vivo.
- To identify strategies for suppressing inflammation to enhance the efficacy of systemic non-viral gene therapy for lung cancer.
Main Methods:
- Conducted in vitro and in vivo experiments to examine nanoparticle-mediated inflammatory responses.
- Administered DNA-nanoparticles systemically and analyzed induced signaling molecules.
- Utilized small molecule inhibitors targeting identified signaling molecules to assess their impact on inflammation and transgene expression.
Main Results:
- Systemic administration of DNA-nanoparticles induced multiple inflammation-associated signaling molecules both in vitro and in vivo.
- Small molecule inhibitors successfully suppressed these signaling molecules, leading to reduced inflammation.
- Inflammation suppression by small molecule inhibitors did not affect transgene expression from the nanoparticles.
Conclusions:
- DNA-nanoparticle-mediated inflammation involves specific signaling pathways that can be targeted.
- Small molecule inhibitors offer a viable strategy to mitigate nanoparticle-induced inflammation during systemic gene therapy.
- This approach holds potential for improving the therapeutic window and clinical applicability of non-viral vector gene therapy for lung cancer.
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