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Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge

BACKGROUND AND PURPOSE: As a therapeutic enzyme, urate oxidase is utilized in the reduction of uric acid in various conditions such as gout or tumor syndrome lysis. However, even bearing kinetical advantage over other counterparts, it suffers from structural instability most likely due to its subcel...

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Autores principales: Rezaeian Marjani, Leila, Imani, Mehdi, Zarei Jaliani, Hossein
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Institute of Genetic Engineering and Biotechnology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8035418/
https://www.ncbi.nlm.nih.gov/pubmed/33850949
http://dx.doi.org/10.30498/IJB.2020.2662
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author Rezaeian Marjani, Leila
Imani, Mehdi
Zarei Jaliani, Hossein
author_facet Rezaeian Marjani, Leila
Imani, Mehdi
Zarei Jaliani, Hossein
author_sort Rezaeian Marjani, Leila
collection PubMed
description BACKGROUND AND PURPOSE: As a therapeutic enzyme, urate oxidase is utilized in the reduction of uric acid in various conditions such as gout or tumor syndrome lysis. However, even bearing kinetical advantage over other counterparts, it suffers from structural instability most likely due to its subcellular and fungal origin. OBJECTIVES: In this research, by using rational design and introduction of de novo disulfide bridge in urate oxidase structure, we designed and created a thermostable urate oxidase for the first time. MATERIALS AND METHODS: Utilizing site-directed mutagenesis and only with one point mutation we constructed two separate mutants: Ala6Cys and Ser282Cys which covalently linked subunits of enzyme each other. Single mutation to cysteine created three inter-chain disulfide bridges and one hydrogen bond in Ala6Cys and two disulfide bridges in Ser282Cys. RESULTS: Both mutants showed 10 °C increase in optimum activity compared to wild-type enzyme while the K(m) values for both increased by 50% and their specific activity compromised. The thermal stability of Ser282Cys increased remarkably by comparing Ala6Cys and wild-type enzymes. Estimation of half life for wild-type enzyme demonstrated 38.5 min, while for Ala6Cys and Ser282Cys were 138 and 115 min, respectively. Interestingly, the optimal pH of both mutants was broaden from 7 to 10, which could make them candidates for industrial applications. CONCLUSION: It seemed that introducing disulfide bridges resulted in local and overall rigidity by bringing two adjacent sites of enzyme together and decreasing the conformational entropy of unfolding state is responsible for the enhancement of thermostability.
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spelling pubmed-80354182021-04-12 Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge Rezaeian Marjani, Leila Imani, Mehdi Zarei Jaliani, Hossein Iran J Biotechnol Research Article BACKGROUND AND PURPOSE: As a therapeutic enzyme, urate oxidase is utilized in the reduction of uric acid in various conditions such as gout or tumor syndrome lysis. However, even bearing kinetical advantage over other counterparts, it suffers from structural instability most likely due to its subcellular and fungal origin. OBJECTIVES: In this research, by using rational design and introduction of de novo disulfide bridge in urate oxidase structure, we designed and created a thermostable urate oxidase for the first time. MATERIALS AND METHODS: Utilizing site-directed mutagenesis and only with one point mutation we constructed two separate mutants: Ala6Cys and Ser282Cys which covalently linked subunits of enzyme each other. Single mutation to cysteine created three inter-chain disulfide bridges and one hydrogen bond in Ala6Cys and two disulfide bridges in Ser282Cys. RESULTS: Both mutants showed 10 °C increase in optimum activity compared to wild-type enzyme while the K(m) values for both increased by 50% and their specific activity compromised. The thermal stability of Ser282Cys increased remarkably by comparing Ala6Cys and wild-type enzymes. Estimation of half life for wild-type enzyme demonstrated 38.5 min, while for Ala6Cys and Ser282Cys were 138 and 115 min, respectively. Interestingly, the optimal pH of both mutants was broaden from 7 to 10, which could make them candidates for industrial applications. CONCLUSION: It seemed that introducing disulfide bridges resulted in local and overall rigidity by bringing two adjacent sites of enzyme together and decreasing the conformational entropy of unfolding state is responsible for the enhancement of thermostability. National Institute of Genetic Engineering and Biotechnology 2020-07-01 /pmc/articles/PMC8035418/ /pubmed/33850949 http://dx.doi.org/10.30498/IJB.2020.2662 Text en Copyright: © 2020 The Author(s); Published by Iranian Journal of Biotechnology https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 Unported License, ( http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) ) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Rezaeian Marjani, Leila
Imani, Mehdi
Zarei Jaliani, Hossein
Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge
title Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge
title_full Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge
title_fullStr Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge
title_full_unstemmed Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge
title_short Enhancement of Pharmaceutical Urate Oxidase Thermostability by Rational Design of De Novo Disulfide Bridge
title_sort enhancement of pharmaceutical urate oxidase thermostability by rational design of de novo disulfide bridge
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8035418/
https://www.ncbi.nlm.nih.gov/pubmed/33850949
http://dx.doi.org/10.30498/IJB.2020.2662
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