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A Nonviral Approach to Generate Transient Chimeric Antigen Receptor T Cells Using mRNA for Cancer Immunotherapy
Published on: February 21, 2025
Development of chimeric gene regulators for cancer-specific gene therapy with both transcriptional and translational
Yu Xiang Fang1, Xiao Bo Zhang, Wei Wei
1State Key Laboratory of Genetic Engineering and Institute of Genetics, School of Life Sciences, Fudan University, Shanghai, People's Republic of China.
Abstract:
Cancer gene therapy has been of great challenge in achieving maximal high levels of specificity and more rational efficiency in target cancer cell. We herein developed a novel approach for cancer-specific gene therapy using both transcriptional and translational targeting regulation. We integrated the tumor-specific gene promoter of hTERT, the 5'UTR of bFGF-2, the enhancer of woodchuck hepatitis virus post-transcriptional regulatory element (WRE), and/or the 3'UTR of the human EGFR into two major chimeric gene regulators. We found that chimeric gene regulator I (hTERT_5'UTR...WRE_BGHpolyA) enhanced the specificity of expression in hepatocellular carcinoma (HCC) cells up to 300% in total due to increases at both the transcriptional and translational levels but only 120-200% enhancement at the transcriptional level and 120-180% enhancement at the translational level. In addition, chimeric gene regulator II (hTERT_5'UTR...WRE_3'UTR_BGHpolyA) improved the specificity to 550% and also highly strengthened the stability of the mRNA. In vitro cytotoxicity assays demonstrated that HCC cell growth was inhibited by HSV-1 TK expression under the control of both chimeric regulators, with a relative cell viability of approximately 80% for 2 days and approximately 85% for 4 days after transfection, respectively. These observations represent a new approach for highly tumor-specific gene expression and also provide insights into application to cancer gene therapy.
Insights
This study introduces novel chimeric gene regulators for enhanced cancer gene therapy. These regulators significantly improve tumor specificity and efficiency in hepatocellular carcinoma (HCC) treatment.
Area of Science:
- Oncology
- Molecular Biology
- Gene Therapy
Background:
- Achieving high specificity and efficiency in cancer gene therapy remains a significant challenge.
- Existing methods often struggle with precise targeting of cancer cells.
Purpose of the Study:
- To develop a novel approach for cancer-specific gene therapy using combined transcriptional and translational regulation.
- To engineer chimeric gene regulators for enhanced hepatocellular carcinoma (HCC) targeting.
Main Methods:
- Integration of tumor-specific elements: hTERT promoter, bFGF-2 5'UTR, WRE, and EGFR 3'UTR into chimeric gene regulators.
- Construction of two major chimeric gene regulators (Regulator I and Regulator II).
- In vitro assessment of gene expression specificity, mRNA stability, and cytotoxicity in HCC cells using HSV-1 TK.
Main Results:
- Chimeric gene regulator I demonstrated up to 300% enhancement in HCC cell expression specificity.
- Chimeric gene regulator II achieved 550% specificity enhancement and improved mRNA stability.
- HSV-1 TK expression under chimeric regulators inhibited HCC cell growth, with relative viabilities of ~80% (2 days) and ~85% (4 days).
Conclusions:
- The developed chimeric gene regulators offer a novel strategy for highly tumor-specific gene expression.
- This approach provides a promising foundation for advancing cancer gene therapy applications.
- The study highlights the potential of combined transcriptional and translational control for therapeutic efficacy.
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