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Regression of experimental brain tumors with 6-thioxanthine and Escherichia coli gpt gene therapy
1Department of Surgery & Molecular Neurooncology Laboratory, Massachusetts General Hospital, Boston 02114, USA.
Abstract:
The identification of transgenes with antitumor activity is critical to the development of gene therapy of cancer. Retrovirus-mediated transfer of the Escherichia coli gpt gene into rat C6 glioma cells without subsequent selection still inhibited the proliferation of this mixed polyclonal population upon addition of the prodrug, 6-thioxanthine, with an ID50 of 4.1 microM, whereas parental C6 cells were not affected at a concentration of 500 microM. In a time-course assay, effects of the prodrug on the mixed polyclonal cell proliferation required at least 10 days of exposure. In mixed co-cultures, a bystander effect was not present over the first 4 days of prodrug exposure, but required trypsinization of the co-cultures and replating at lower densities. This "modified" bystander assay thus revealed a 50% decrease in C6 cell proliferation, even when the initial ratio of gpt-expressing to parental C6 cells was as low as 1:19. In a nude mouse model of subcutaneous tumors, co-grafts of C6 glioma and gpt-retrovirus producer cells displayed retarded growth upon exposure to 6-thioxanthine (6-TX). In a nude mouse model of intracerebral tumors, grafting of the gpt-retrovirus producer cells leads to an 80% reduction in intracerebral tumor volumes after 6-TX treatment. This reduction results in a 28% increase in the mean time of survival of animals that harbor intracerebral tumors (p < 0.0005). These antitumor effects indicate that the gpt/6-TX enzyme/prodrug pair is a promising alternative to the thymidine kinase gene and ganciclovir combination in the gene therapy of cancer.
Insights
The Escherichia coli gpt gene and 6-thioxanthine prodrug show promise for cancer gene therapy. This enzyme/prodrug pair effectively inhibited glioma cell proliferation and reduced tumor volume in mouse models.
Area of Science:
- Oncology
- Molecular Biology
- Gene Therapy
Background:
- Cancer gene therapy development requires identifying transgenes with antitumor activity.
- The Escherichia coli gpt gene and 6-thioxanthine (6-TX) prodrug system is explored as a potential cancer treatment strategy.
Purpose of the Study:
- To evaluate the antitumor efficacy of the gpt/6-TX enzyme/prodrug system in glioma cells and *in vivo* tumor models.
- To assess the potential of this system as an alternative to existing gene therapy combinations.
Main Methods:
- Retrovirus-mediated transfer of the *Escherichia coli* gpt gene into rat C6 glioma cells.
- In vitro proliferation assays of mixed cell co-cultures with and without 6-TX.
- Modified bystander assays to assess cell-to-cell effects.
- In vivo studies using nude mouse models with subcutaneous and intracerebral C6 glioma xenografts.
Main Results:
- The gpt gene transfer inhibited C6 glioma cell proliferation in the presence of 6-TX (ID50 = 4.1 microM).
- A modified bystander effect was observed, reducing proliferation even at low gpt-expressing to parental cell ratios (1:19).
- In vivo, 6-TX treatment retarded subcutaneous tumor growth and significantly reduced intracerebral tumor volumes (80%) and increased survival (28%).
Conclusions:
- The gpt/6-TX enzyme/prodrug combination demonstrates significant antitumor activity against glioma.
- This system represents a promising alternative to the thymidine kinase/ganciclovir gene therapy approach for cancer treatment.