Novel therapeutic approaches for various cancer types using a modified sleeping beauty-based gene delivery system
In-Sun Hong1, Hwa-Yong Lee1, Hyun-Pyo Kim2
1Adult Stem cell Research Center, Seoul National University, Seoul, Republic of Korea ; Department of Veterinary Public Health, Laboratory of Stem Cell and Tumor Biology, Seoul National University, Seoul, Republic of Korea.
Abstract:
Successful gene therapy largely depends on the selective introduction of therapeutic genes into the appropriate target cancer cells. One of the most effective and promising approaches for targeting tumor tissue during gene delivery is the use of viral vectors, which allow for high efficiency gene delivery. However, the use of viral vectors is not without risks and safety concerns, such as toxicities, a host immune response towards the viral antigens or potential viral recombination into the host's chromosome; these risks limit the clinical application of viral vectors. The Sleeping Beauty (SB) transposon-based system is an attractive, non-viral alternative to viral delivery systems. SB may be less immunogenic than the viral vector system due to its lack of viral sequences. The SB-based gene delivery system can stably integrate into the host cell genome to produce the therapeutic gene product over the lifetime of a cell. However, when compared to viral vectors, the non-viral SB-based gene delivery system still has limited therapeutic efficacy due to the lack of long-lasting gene expression potential and tumor cell specific gene transfer ability. These limitations could be overcome by modifying the SB system through the introduction of the hTERT promoter and the SV40 enhancer. In this study, a modified SB delivery system, under control of the hTERT promoter in conjunction with the SV40 enhancer, was able to successfully transfer the suicide gene (HSV-TK) into multiple types of cancer cells. The modified SB transfected cancer cells exhibited a significantly increased cancer cell specific death rate. These data suggest that our modified SB-based gene delivery system can be used as a safe and efficient tool for cancer cell specific therapeutic gene transfer and stable long-term expression.
Insights
The Sleeping Beauty (SB) transposon system offers a safer, non-viral alternative for gene therapy. Modifications enhance its ability to target cancer cells, improving therapeutic efficacy and enabling stable, long-term gene expression for cancer treatment.
Area of Science:
- Gene Therapy
- Cancer Research
- Molecular Biology
Background:
- Viral vectors are effective for gene delivery but pose safety risks like toxicity and immune responses.
- The non-viral Sleeping Beauty (SB) transposon system is less immunogenic but has limitations in gene expression duration and tumor specificity.
Purpose of the Study:
- To overcome the limitations of the SB system for cancer gene therapy.
- To enhance tumor-specific gene transfer and achieve stable, long-term gene expression.
Main Methods:
- Modified the SB system by incorporating the hTERT promoter and SV40 enhancer.
- Transferred a suicide gene (HSV-TK) into various cancer cells using the modified SB system.
Main Results:
- The modified SB system successfully delivered the suicide gene into multiple cancer cell types.
- Transfected cancer cells showed a significantly increased rate of cancer cell-specific death.
- Demonstrated potential for stable, long-term therapeutic gene expression.
Conclusions:
- The modified SB-based gene delivery system is a safe and efficient tool for cancer therapy.
- This approach enables cancer cell-specific therapeutic gene transfer and sustained expression.
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