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Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium

Computational design of pH-activity profiles for enzymes is of great importance in industrial applications. In this research, a computational strategy was developed to engineer the pH-activity profile of a zearalenone lactonase (ZHD101) from Clonostachys rosea to promote its activity in acidic mediu...

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Autores principales: Lin, Min, Tan, Jian, Xu, Zhaobin, Huang, Jin, Tian, Ye, Chen, Bo, Wu, Yandong, Tong, Yi, Zhu, Yushan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072336/
https://www.ncbi.nlm.nih.gov/pubmed/35527979
http://dx.doi.org/10.1039/c9ra04964a
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author Lin, Min
Tan, Jian
Xu, Zhaobin
Huang, Jin
Tian, Ye
Chen, Bo
Wu, Yandong
Tong, Yi
Zhu, Yushan
author_facet Lin, Min
Tan, Jian
Xu, Zhaobin
Huang, Jin
Tian, Ye
Chen, Bo
Wu, Yandong
Tong, Yi
Zhu, Yushan
author_sort Lin, Min
collection PubMed
description Computational design of pH-activity profiles for enzymes is of great importance in industrial applications. In this research, a computational strategy was developed to engineer the pH-activity profile of a zearalenone lactonase (ZHD101) from Clonostachys rosea to promote its activity in acidic medium. The active site pK(a) values of ZHD101 were computationally designed by introducing positively charged lysine mutations on the enzyme surface, and the experimental results showed that two variants, M2(D157K) and M9(E171K), increased the catalytic efficiencies of ZHD101 modestly under acidic conditions. Moreover, two variants, M8(D133K) and M9(E171K), were shown to increase the turnover numbers by 2.73 and 2.06-fold with respect to wild type, respectively, though their apparent Michaelis constants were concomitantly increased. These results imply that the active site pK(a) value change might affect the pH-activity profile of the enzyme. Our computational strategy for pH-activity profile engineering considers protein stability; therefore, limited experimental validation is needed to discover beneficial mutations under shifted pH conditions.
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spelling pubmed-90723362022-05-06 Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium Lin, Min Tan, Jian Xu, Zhaobin Huang, Jin Tian, Ye Chen, Bo Wu, Yandong Tong, Yi Zhu, Yushan RSC Adv Chemistry Computational design of pH-activity profiles for enzymes is of great importance in industrial applications. In this research, a computational strategy was developed to engineer the pH-activity profile of a zearalenone lactonase (ZHD101) from Clonostachys rosea to promote its activity in acidic medium. The active site pK(a) values of ZHD101 were computationally designed by introducing positively charged lysine mutations on the enzyme surface, and the experimental results showed that two variants, M2(D157K) and M9(E171K), increased the catalytic efficiencies of ZHD101 modestly under acidic conditions. Moreover, two variants, M8(D133K) and M9(E171K), were shown to increase the turnover numbers by 2.73 and 2.06-fold with respect to wild type, respectively, though their apparent Michaelis constants were concomitantly increased. These results imply that the active site pK(a) value change might affect the pH-activity profile of the enzyme. Our computational strategy for pH-activity profile engineering considers protein stability; therefore, limited experimental validation is needed to discover beneficial mutations under shifted pH conditions. The Royal Society of Chemistry 2019-10-02 /pmc/articles/PMC9072336/ /pubmed/35527979 http://dx.doi.org/10.1039/c9ra04964a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lin, Min
Tan, Jian
Xu, Zhaobin
Huang, Jin
Tian, Ye
Chen, Bo
Wu, Yandong
Tong, Yi
Zhu, Yushan
Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium
title Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium
title_full Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium
title_fullStr Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium
title_full_unstemmed Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium
title_short Computational design of enhanced detoxification activity of a zearalenone lactonase from Clonostachys rosea in acidic medium
title_sort computational design of enhanced detoxification activity of a zearalenone lactonase from clonostachys rosea in acidic medium
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9072336/
https://www.ncbi.nlm.nih.gov/pubmed/35527979
http://dx.doi.org/10.1039/c9ra04964a
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