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Forced evolution of glutathione S-transferase to create a more efficient drug detoxication enzyme

  • University of Wisconsin-Madison

Research output: Contribution to journalArticlepeer-review

61 Scopus citations

Abstract

Glutathione S-transferases (EC 2.5.1.18) in mammalian cells catalyze the conjugation, and thus, the detoxication of a structurally diverse group of electrophilic environmental carcinogens and alkylating drugs, including the antineoplastic nitrogen mustards. We proposed that structural alteration of the nonspecific electrophile-binding site would produce mutant enzymes with increased efficiency for detoxication of a single drug and that these mutants could serve as useful somatic transgenes to protect healthy human cells against single alkylating agents used in cancer chemotherapy protocols. Random mutagenesis of three regions (residues 9-14, 102-112, and 210-220), which together compose the glutathione S-transferase electrophile-binding site, followed by selection of Escherichia coli expressing the enzyme library with the nitrogen mustard mechlorethamine (20-500 μM), yielded mutant enzymes that showed significant improvement in catalytic efficiency for mechlorethamine conjugation (up to 15-fold increase in k(cat) and up to 6- fold increase in k(cat)/K(m)) and that confer up to 31-fold resistance, which is 9-fold greater drug resistance than that conferred by the wild-type enzyme. The results suggest a general strategy for modification of drug- and carcinogen-metabolizing enzymes to achieve desired resistance in both prokaryotic and eukaryotic plant and animal cells.

Original languageEnglish
Pages (from-to)8140-8144
Number of pages5
JournalProceedings of the National Academy of Sciences of the United States of America
Volume92
Issue number18
DOIs
StatePublished - Aug 29 1995

Keywords

  • alkylating agents
  • drug resistance
  • gene therapy
  • hematopoietic stem cells
  • mechlorethamine

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