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Alanine-scanning mutagenesis reveals a cytosine deaminase mutant with altered substrate preference
Sheri D Mahan1, Greg C Ireton, Barry L Stoddard
1Department of Pharmaceutical Sciences and the School of Molecular Biosciences, PO Box 646534, Washington State University, Pullman, Washington 99164-6534, USA.
Abstract:
Suicide gene therapy of cancer is a method whereby cancerous tumors can be selectively eradicated while sparing damage to normal tissue. This is accomplished by delivering a gene, encoding an enzyme capable of specifically converting a nontoxic prodrug into a cytotoxin, to cancer cells followed by prodrug administration. The Escherichia coli gene, codA, encodes cytosine deaminase and is introduced into cancer cells followed by administration of the prodrug 5-fluorocytosine (5-FC). Cytosine deaminase converts 5-FC into cytotoxic 5-fluorouracil, which leads to tumor-cell eradication. One limitation of this enzyme/prodrug combination is that 5-FC is a poor substrate for bacterial cytosine deaminase. The crystal structure of bacterial cytosine deaminase (bCD) reveals that a loop structure in the active site pocket of wild-type bCD comprising residues 310-320 undergoes a conformational change upon cytosine binding, making several contacts to the pyrimidine ring. Alanine-scanning mutagenesis was used to investigate the structure-function relationship of amino acid residues within this region, especially with regard to substrate specificity. Using an E. coli genetic complementation system, seven active mutants were identified (F310A, G311A, H312A, D314A, V315A, F316A, and P318A). Further characterization of these mutants reveals that mutant F316A is 14-fold more efficient than the wild-type at deaminating cytosine to uracil. The mutant D314A enzyme demonstrates a dramatic decrease in cytosine activity (17-fold) as well as a slight increase in activity toward 5-FC (2-fold), indicating that mutant D314A prefers the prodrug over cytosine by almost 20-fold, suggesting that it may be a superior suicide gene.
Insights
Suicide gene therapy uses bacterial cytosine deaminase to convert a prodrug into a cancer-killing toxin. Researchers engineered a superior mutant enzyme, D314A, enhancing cancer treatment potential.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Therapy
Background:
- Suicide gene therapy offers targeted cancer eradication by converting prodrugs into cytotoxins within tumor cells.
- The bacterial cytosine deaminase (bCD) enzyme, encoded by the E. coli codA gene, activates 5-fluorocytosine (5-FC) into 5-fluorouracil, a potent cytotoxin.
- A key limitation is the poor substrate efficiency of bCD for 5-FC.
Purpose of the Study:
- To investigate the structure-function relationship of bCD's active site loop (residues 310-320) to improve its specificity and efficiency for 5-FC.
- To identify mutations that enhance the conversion of 5-FC to 5-fluorouracil for improved suicide gene therapy efficacy.
Main Methods:
- Alanine-scanning mutagenesis was employed to probe the function of residues within the bCD active site loop.
- An E. coli genetic complementation system was used to identify active enzyme mutants.
- Enzyme kinetics were characterized to assess substrate specificity and catalytic efficiency of wild-type and mutant enzymes.
Main Results:
- Seven active mutants (F310A, G311A, H312A, D314A, V315A, F316A, P318A) were identified.
- Mutant F316A showed a 14-fold increase in cytosine deaminase activity.
- Mutant D314A exhibited a 17-fold decrease in cytosine activity and a 2-fold increase in 5-FC activity, preferring 5-FC over cytosine by approximately 20-fold.
Conclusions:
- The D314A mutant of bacterial cytosine deaminase demonstrates significantly altered substrate specificity, favoring the prodrug 5-FC.
- This enhanced preference suggests that the D314A mutant may serve as a superior enzyme for cancer suicide gene therapy applications.
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