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In vivo drug-selectable genes: a new concept in gene therapy
T Licht1, F Herrmann, M M Gottesman
1Laboratory of Molecular Biology, National Cancer Institute, Bethesda, Maryland 20892-4255, USA.
Abstract:
Chemoresistance genes, initially considered to be a major impediment to the successful treatment of cancer, may become useful tools for gene therapy of cancer and of genetically determined disorders. Various target cells are rendered resistant to anticancer drugs by transfer of chemoresistance genes encoding P-glycoprotein, the multidrug resistance-associated protein-transporter, dihydrofolate reductase, glutathione-S-transferase, O6-alkylguanine DNA alkyltransferase, or aldehyde reductase. These genes can be used for selection in vivo because of the pharmacology and pharmacokinetics of their substrates. In contrast, several other selectable marker genes conferring resistance to substrates like neomycin or hygromycin can only be utilized in tissue culture. Possible applications for chemoresistance genes include protection of bone marrow and other organs from adverse effects caused by the toxicity of chemotherapy. Strategies have also been developed to introduce and overexpress nonselectable genes in target cells by cotransduction with chemoresistance genes. Thereby expression of both transgenes can be increased following selection with drugs. Moreover, treatment with chemotherapeutic agents should restore transgene expression when or if expression levels decrease after several weeks or months. This approach may improve the efficacy of somatic gene therapy of hematopoietic disorders which is hampered by low or unstable gene expression in progenitor cells. In this article we review preclinical studies in tissue culture and animal models, and ongoing clinical trials on transfer of chemoresistance genes to hematopoietic precursor cells of cancer patients.
Insights
Chemoresistance genes, once a hurdle in cancer treatment, are now valuable for gene therapy. These genes can protect healthy cells from chemotherapy and improve gene therapy for genetic disorders.
Area of Science:
- Molecular Biology
- Genetics
- Oncology
Background:
- Chemoresistance genes were initially viewed as obstacles in cancer treatment.
- These genes confer resistance to various anticancer drugs through specific protein transporters and enzymes.
Purpose of the Study:
- To explore the potential of chemoresistance genes as tools in gene therapy for cancer and genetic disorders.
- To review preclinical and clinical studies on the transfer of chemoresistance genes to hematopoietic precursor cells.
Main Methods:
- Transferring chemoresistance genes (e.g., P-glycoprotein, dihydrofolate reductase) into target cells to confer drug resistance.
- Utilizing chemoresistance genes for in vivo selection based on drug pharmacology and pharmacokinetics.
- Employing cotransduction with chemoresistance genes to enhance the expression of nonselectable therapeutic genes.
Main Results:
- Chemoresistance genes can protect bone marrow and other organs from chemotherapy's toxic effects.
- Cotransduction strategies increase transgene expression, with drug treatment potentially restoring decreased expression levels.
- This approach shows promise for improving somatic gene therapy efficacy in hematopoietic disorders.
Conclusions:
- Chemoresistance genes offer a promising strategy for enhancing gene therapy efficacy and safety.
- Their application extends to protecting normal tissues and improving therapeutic gene expression in hematopoietic stem cell therapy.
- Ongoing clinical trials are evaluating the transfer of chemoresistance genes in cancer patients.