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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.

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.

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