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Updated: Feb 26, 2026

Spontaneous Murine Model of Anaplastic Thyroid Cancer
Published on: February 3, 2023
Genetically engineered suicide gene in mesenchymal stem cells using a Tet-On system for anaplastic thyroid cancer
Senthilkumar Kalimuthu1, Ji Min Oh1, Prakash Gangadaran1
1Department of Nuclear Medicine, Kyungpook National University School of Medicine/Hospital, Daegu, Republic of Korea.
Abstract:
Anaplastic thyroid cancer (ATC) is the most aggressive malignancy of the thyroid, during which undifferentiated tumors arise from the thyroid follicular epithelium. ATC has a very poor prognosis due to its aggressive behavior and poor response to conventional therapies. Gene-directed enzyme/prodrug therapy using genetically engineered mesenchymal stromal cells (MSC) is a promising therapeutic strategy. The doxycycline (DOX)-controlled Tet inducible system is the most widely utilized regulatory system and could be a useful tool for therapeutic gene-based therapies. For example, use a synthetic "tetracycline-on" switch system to control the expression of the therapeutic gene thymidine kinase, which converts prodrugs to active drugs. The aim of this study was to develop therapeutic MSCs, harboring an inducible suicide gene, and to validate therapeutic gene expression using optical molecular imaging of ATC. We designed the Tet-On system using a retroviral vector expressing herpes simplex virus thymidine kinase (HSV1-sr39TK) with dual reporters (eGFP-Fluc2). Mouse bone marrow-derived mesenchymal stromal cells (BM-MSC) were transduced using this system with (MSC-Tet-TK/Fluc2) or without (MSC-TK/Fluc) the Tet-On system. Transduced cells were screened and characterized. Engineered MSCs were co-cultured with ATC (CAL62/Rluc) cells in the presence of the prodrug ganciclovir (GCV) and stimulated with DOX. The efficiency of cell killing monitored by assessing Rluc (CAL62/Rluc) and Fluc (MSC-Tet-TK/Fluc and MSC-TK/Fluc) activities using IVIS imaging. Fluc activity increased in MSC-Tet-TK/Fluc cells in a dose dependent manner following DOX treatment (R2 = 0.95), whereas no signal was observed in untreated cells. eGFP could also be visualized after induction with DOX, and the HSV1-TK protein could be detected by western blotting. In MSC-TK/Fluc cells, the Fluc activity increased with increasing cell number (R2 = 0.98), and eGFP could be visualized by fluorescence microscopy. The Fluc activity and cell viability of MSC-Tet-TK/Fluc and MSC-TK/Fluc cells decreased significantly following GCV treatment. A bystander effect of the therapeutic cells confirmed in co-cultures of CAL62 cells, an anaplastic thyroid cancer cell line, with either MSC-Tet-TK/Fluc cells or MSC-TK/Fluc cells. The Rluc activity in MSC-Tet-TK/Fluc co-cultures, derived from the CAL62/Rluc cells, decreased significantly with GCV treatment of DOX treated cultures, whereas no significant changes were observed in untreated cultures. In addition, the Fluc activity of MSC-Tet-TK/Fluc cells also decreased significantly with DOX treatment whereas no signal was present in untreated cultures. A bystander effect also be demonstrated in co-cultures with MSC-TK/Fluc cells and CAL62/Rluc; both the Rluc activity and the Fluc activity were significantly decreased following GCV treatment. We have successfully developed a Tet-On system of gene-directed enzyme/prodrug delivery using MSCs. We confirmed the therapeutic bystander effect in CAL62/Rluc cells with respect to MSC-Tet-TK/Fluc and MSC-TK/Fluc cells after GCV treatment with and without DOX. Our results confirm the therapeutic efficiency of a suicide gene, with or without the Tet-On system, for ATC therapy. In addition, our findings provide an innovative therapeutic approach for using the Tet-On system to eradicate tumors by simple, repeated administration of MSC-Tet-TK/Fluc cells with DOX and GCV.
Insights
This study developed genetically engineered mesenchymal stromal cells (MSCs) with an inducible suicide gene system for anaplastic thyroid cancer (ATC) therapy. The system effectively killed ATC cells and demonstrated a therapeutic bystander effect, offering a promising new treatment strategy.
Area of Science:
- Oncology
- Gene Therapy
- Cell Therapy
Background:
- Anaplastic thyroid cancer (ATC) is an aggressive malignancy with a poor prognosis and limited treatment options.
- Gene-directed enzyme/prodrug therapy using mesenchymal stromal cells (MSCs) presents a promising therapeutic strategy.
- The doxycycline (DOX)-controlled Tet-On system offers precise regulation of therapeutic gene expression.
Purpose of the Study:
- To develop engineered MSCs harboring an inducible suicide gene for ATC therapy.
- To validate therapeutic gene expression and efficacy using optical molecular imaging.
- To assess the therapeutic bystander effect in ATC cells.
Main Methods:
- Designed a Tet-On system using a retroviral vector expressing herpes simplex virus thymidine kinase (HSV1-sr39TK) with dual reporters (eGFP-Fluc2).
- Transduced mouse bone marrow-derived MSCs (BM-MSCs) with the Tet-On system (MSC-Tet-TK/Fluc2) or without (MSC-TK/Fluc).
- Co-cultured engineered MSCs with ATC cells (CAL62/Rluc) and treated with ganciclovir (GCV) and DOX, monitoring cell killing via IVIS imaging.
Main Results:
- Engineered MSCs showed inducible expression of HSV1-TK and reporter genes (eGFP, Fluc) upon DOX stimulation.
- GCV treatment significantly reduced ATC cell viability and luciferase activity in co-cultures, confirming a therapeutic bystander effect.
- Both Tet-On inducible and non-inducible suicide gene systems demonstrated therapeutic efficiency in ATC models.
Conclusions:
- Successfully developed a Tet-On system for gene-directed enzyme/prodrug delivery using MSCs for ATC therapy.
- Confirmed the therapeutic bystander effect, highlighting the potential for tumor eradication.
- The study provides an innovative approach for ATC treatment using engineered MSCs with a Tet-On system.
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