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Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis

Urate oxidase is a key enzyme in purine metabolism and catalyzes the oxidation of uric acid to allantoin. It is used to treat hyperuricemia and gout, and also in a diagnostic kit. In this study, error-prone polymerase chain reaction and staggered extension process was used to generate a mutant urate...

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Autores principales: Li, Wenjie, Xu, Shouteng, Zhang, Biao, Zhu, Yelin, Hua, Yan, Kong, Xin, Sun, Lianhong, Hong, Jiong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5439685/
https://www.ncbi.nlm.nih.gov/pubmed/28531234
http://dx.doi.org/10.1371/journal.pone.0177877
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author Li, Wenjie
Xu, Shouteng
Zhang, Biao
Zhu, Yelin
Hua, Yan
Kong, Xin
Sun, Lianhong
Hong, Jiong
author_facet Li, Wenjie
Xu, Shouteng
Zhang, Biao
Zhu, Yelin
Hua, Yan
Kong, Xin
Sun, Lianhong
Hong, Jiong
author_sort Li, Wenjie
collection PubMed
description Urate oxidase is a key enzyme in purine metabolism and catalyzes the oxidation of uric acid to allantoin. It is used to treat hyperuricemia and gout, and also in a diagnostic kit. In this study, error-prone polymerase chain reaction and staggered extension process was used to generate a mutant urate oxidase with improved enzyme activity from Bacillus subtilis. After several rounds of mutagenesis and screening, two mutants 6E9 and 8E279 were obtained which exhibited 2.99 and 3.43 times higher catalytic efficiency, respectively. They also exhibited lower optimal reaction temperature and higher thermo-stability. D44V, Q268R and K285Q were identified as the three most beneficial amino acid substitutions introduced by site-directed mutagenesis. D44V/Q268R, which was obtained through random combination of the three mutants, displayed the highest catalytic activity. The K(m,) k(cat)/K(m) and enzyme activity of D44V/Q268R increased by 68%, 83% and 129% respectively, compared with that of wild-type urate oxidase. Structural modeling indicated that mutations far from the active site can have significant effects on activity. For many of them, the underlying mechanisms are still difficult to explain from the static structural model. We also compared the effects of the same set of single point mutations on the wild type and on the final mutant. The results indicate strong effects of epistasis, which may imply that the mutations affect catalysis through influences on protein dynamics besides equilibrium structures.
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spelling pubmed-54396852017-06-06 Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis Li, Wenjie Xu, Shouteng Zhang, Biao Zhu, Yelin Hua, Yan Kong, Xin Sun, Lianhong Hong, Jiong PLoS One Research Article Urate oxidase is a key enzyme in purine metabolism and catalyzes the oxidation of uric acid to allantoin. It is used to treat hyperuricemia and gout, and also in a diagnostic kit. In this study, error-prone polymerase chain reaction and staggered extension process was used to generate a mutant urate oxidase with improved enzyme activity from Bacillus subtilis. After several rounds of mutagenesis and screening, two mutants 6E9 and 8E279 were obtained which exhibited 2.99 and 3.43 times higher catalytic efficiency, respectively. They also exhibited lower optimal reaction temperature and higher thermo-stability. D44V, Q268R and K285Q were identified as the three most beneficial amino acid substitutions introduced by site-directed mutagenesis. D44V/Q268R, which was obtained through random combination of the three mutants, displayed the highest catalytic activity. The K(m,) k(cat)/K(m) and enzyme activity of D44V/Q268R increased by 68%, 83% and 129% respectively, compared with that of wild-type urate oxidase. Structural modeling indicated that mutations far from the active site can have significant effects on activity. For many of them, the underlying mechanisms are still difficult to explain from the static structural model. We also compared the effects of the same set of single point mutations on the wild type and on the final mutant. The results indicate strong effects of epistasis, which may imply that the mutations affect catalysis through influences on protein dynamics besides equilibrium structures. Public Library of Science 2017-05-22 /pmc/articles/PMC5439685/ /pubmed/28531234 http://dx.doi.org/10.1371/journal.pone.0177877 Text en © 2017 Li et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Li, Wenjie
Xu, Shouteng
Zhang, Biao
Zhu, Yelin
Hua, Yan
Kong, Xin
Sun, Lianhong
Hong, Jiong
Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis
title Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis
title_full Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis
title_fullStr Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis
title_full_unstemmed Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis
title_short Directed evolution to improve the catalytic efficiency of urate oxidase from Bacillus subtilis
title_sort directed evolution to improve the catalytic efficiency of urate oxidase from bacillus subtilis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5439685/
https://www.ncbi.nlm.nih.gov/pubmed/28531234
http://dx.doi.org/10.1371/journal.pone.0177877
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