Cargando…

The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions

Recombinant Candida albicans CYP51 (CaCYP51) proteins containing 23 single and 5 double amino acid substitutions found in clinical strains and the wild-type enzyme were expressed in Escherichia coli and purified by Ni(2+)-nitrilotriacetic acid agarose chromatography. Catalytic tolerance to azole ant...

Descripción completa

Detalles Bibliográficos
Autores principales: Warrilow, Andrew G., Nishimoto, Andrew T., Parker, Josie E., Price, Claire L., Flowers, Stephanie A., Kelly, Diane E., Rogers, P. David, Kelly, Steven L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6496074/
https://www.ncbi.nlm.nih.gov/pubmed/30783005
http://dx.doi.org/10.1128/AAC.02586-18
_version_ 1783415382975971328
author Warrilow, Andrew G.
Nishimoto, Andrew T.
Parker, Josie E.
Price, Claire L.
Flowers, Stephanie A.
Kelly, Diane E.
Rogers, P. David
Kelly, Steven L.
author_facet Warrilow, Andrew G.
Nishimoto, Andrew T.
Parker, Josie E.
Price, Claire L.
Flowers, Stephanie A.
Kelly, Diane E.
Rogers, P. David
Kelly, Steven L.
author_sort Warrilow, Andrew G.
collection PubMed
description Recombinant Candida albicans CYP51 (CaCYP51) proteins containing 23 single and 5 double amino acid substitutions found in clinical strains and the wild-type enzyme were expressed in Escherichia coli and purified by Ni(2+)-nitrilotriacetic acid agarose chromatography. Catalytic tolerance to azole antifungals was assessed by determination of the concentration causing 50% enzyme inhibition (IC(50)) using CYP51 reconstitution assays. The greatest increase in the IC(50) compared to that of the wild-type enzyme was observed with the five double substitutions Y132F+K143R (15.3-fold), Y132H+K143R (22.1-fold), Y132F+F145L (10.1-fold), G307S+G450E (13-fold), and D278N+G464S (3.3-fold). The single substitutions K143R, D278N, S279F, S405F, G448E, and G450E conferred at least 2-fold increases in the fluconazole IC(50), and the Y132F, F145L, Y257H, Y447H, V456I, G464S, R467K, and I471T substitutions conferred increased residual CYP51 activity at high fluconazole concentrations. In vitro testing of select CaCYP51 mutations in C. albicans showed that the Y132F, Y132H, K143R, F145L, S405F, G448E, G450E, G464S, Y132F+K143R, Y132F+F145L, and D278N+G464S substitutions conferred at least a 2-fold increase in the fluconazole MIC. The catalytic tolerance of the purified proteins to voriconazole, itraconazole, and posaconazole was far lower and limited to increased residual activities at high triazole concentrations for certain mutations rather than large increases in IC(50) values. Itraconazole was the most effective at inhibiting CaCYP51. However, when tested against CaCYP51 mutant strains, posaconazole seemed to be the most resistant to changes in MIC as a result of CYP51 mutation compared to itraconazole, voriconazole, or fluconazole.
format Online
Article
Text
id pubmed-6496074
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-64960742019-10-25 The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions Warrilow, Andrew G. Nishimoto, Andrew T. Parker, Josie E. Price, Claire L. Flowers, Stephanie A. Kelly, Diane E. Rogers, P. David Kelly, Steven L. Antimicrob Agents Chemother Mechanisms of Resistance Recombinant Candida albicans CYP51 (CaCYP51) proteins containing 23 single and 5 double amino acid substitutions found in clinical strains and the wild-type enzyme were expressed in Escherichia coli and purified by Ni(2+)-nitrilotriacetic acid agarose chromatography. Catalytic tolerance to azole antifungals was assessed by determination of the concentration causing 50% enzyme inhibition (IC(50)) using CYP51 reconstitution assays. The greatest increase in the IC(50) compared to that of the wild-type enzyme was observed with the five double substitutions Y132F+K143R (15.3-fold), Y132H+K143R (22.1-fold), Y132F+F145L (10.1-fold), G307S+G450E (13-fold), and D278N+G464S (3.3-fold). The single substitutions K143R, D278N, S279F, S405F, G448E, and G450E conferred at least 2-fold increases in the fluconazole IC(50), and the Y132F, F145L, Y257H, Y447H, V456I, G464S, R467K, and I471T substitutions conferred increased residual CYP51 activity at high fluconazole concentrations. In vitro testing of select CaCYP51 mutations in C. albicans showed that the Y132F, Y132H, K143R, F145L, S405F, G448E, G450E, G464S, Y132F+K143R, Y132F+F145L, and D278N+G464S substitutions conferred at least a 2-fold increase in the fluconazole MIC. The catalytic tolerance of the purified proteins to voriconazole, itraconazole, and posaconazole was far lower and limited to increased residual activities at high triazole concentrations for certain mutations rather than large increases in IC(50) values. Itraconazole was the most effective at inhibiting CaCYP51. However, when tested against CaCYP51 mutant strains, posaconazole seemed to be the most resistant to changes in MIC as a result of CYP51 mutation compared to itraconazole, voriconazole, or fluconazole. American Society for Microbiology 2019-04-25 /pmc/articles/PMC6496074/ /pubmed/30783005 http://dx.doi.org/10.1128/AAC.02586-18 Text en Copyright © 2019 Warrilow et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Mechanisms of Resistance
Warrilow, Andrew G.
Nishimoto, Andrew T.
Parker, Josie E.
Price, Claire L.
Flowers, Stephanie A.
Kelly, Diane E.
Rogers, P. David
Kelly, Steven L.
The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions
title The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions
title_full The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions
title_fullStr The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions
title_full_unstemmed The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions
title_short The Evolution of Azole Resistance in Candida albicans Sterol 14α-Demethylase (CYP51) through Incremental Amino Acid Substitutions
title_sort evolution of azole resistance in candida albicans sterol 14α-demethylase (cyp51) through incremental amino acid substitutions
topic Mechanisms of Resistance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6496074/
https://www.ncbi.nlm.nih.gov/pubmed/30783005
http://dx.doi.org/10.1128/AAC.02586-18
work_keys_str_mv AT warrilowandrewg theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT nishimotoandrewt theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT parkerjosiee theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT priceclairel theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT flowersstephaniea theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT kellydianee theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT rogerspdavid theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT kellystevenl theevolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT warrilowandrewg evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT nishimotoandrewt evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT parkerjosiee evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT priceclairel evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT flowersstephaniea evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT kellydianee evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT rogerspdavid evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions
AT kellystevenl evolutionofazoleresistanceincandidaalbicanssterol14ademethylasecyp51throughincrementalaminoacidsubstitutions