Literature DB >> 16689679

Characterization of a uricase from Bacillus fastidious A.T.C.C. 26904 and its application to serum uric acid assay by a patented kinetic uricase method.

Yunsheng Zhao1, Lina Zhao, Gengqing Yang, Jia Tao, Youquan Bu, Fei Liao.   

Abstract

An intracellular uricase from Bacillus fastidious A.T.C.C. 26904 was characterized and evaluated for serum uric acid assay by a patented kinetic uricase method. The active uricase was 151 kDa by gel filtration through Sephadex G-200. Both SDS/PAGE and matrix-assisted laser-desorption ionization-time-of-flight MS resolved a single polypeptide with a molecular mass of approx. 36.0 kDa. The N-terminal sequence was AERTMFYGKGDV. The optimum pH for this uricase ranged from 9.0 to 10.5. At pH 9.2, the Km (Michaelis-Menten constant) was 204+/-14 micromol/l (n=8) and the Ki (inhibition constant) for xanthine was 41+/-7 micromol/l (n=5). By analysing the data monitored within 5 min at 0.03 unit/ml uricase, this kinetic uricase method gave linear response to uric acid in reaction solution from 1.3 to 60 micromol/l. Aside from other common errors, 30 micromol/l xanthine in the reaction solution caused no error in this kinetic uricase method, while it caused negative error in the indirect equilibrium method by peroxidase-coupled assay of H2O2. Uric acid in clinical sera by this kinetic uricase method (Ck) closely and positively correlated with that from the indirect equilibrium method (Ce) (Ck = 0.008+1.081 x Ce, r>0.990, n=99). However, Bland-Altman analysis suggested inconsistency between Ck and Ce. These results indicated that this kinetic uricase method using this uricase was reliable for serum uric acid assay with enhanced resistance to xanthine besides other common errors.

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Year:  2006        PMID: 16689679     DOI: 10.1042/BA20060028

Source DB:  PubMed          Journal:  Biotechnol Appl Biochem        ISSN: 0885-4513            Impact factor:   2.431


  8 in total

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2.  Correlation of serum arylesterase activity on phenylacetate estimated by the integrated method to common classical biochemical indexes of liver damage.

Authors:  Fei Liao; Xiao-yun Zhu; Yong-mei Wang; Yun-sheng Zhao; Lian-ping Zhu; Yu-ping Zuo
Journal:  J Zhejiang Univ Sci B       Date:  2007-04       Impact factor: 3.066

3.  A Numerical Approach for Kinetic Analysis of the Nonexponential Thermoinactivation Process of Uricase.

Authors:  Jing Wu; Xiaolan Yang; Deqiang Wang; Xiaolei Hu; Juan Liao; JingJing Rao; Jun Pu; Chang-Guo Zhan; Fei Liao
Journal:  Protein J       Date:  2016-08       Impact factor: 2.371

Review 4.  Dissecting in vivo and in vitro redox responses using chemogenetics.

Authors:  Markus Waldeck-Weiermair; Shambhu Yadav; Fotios Spyropoulos; Christina Krüger; Arvind K Pandey; Thomas Michel
Journal:  Free Radic Biol Med       Date:  2021-11-06       Impact factor: 7.376

5.  Catalytic Mechanisms for Cofactor-Free Oxidase-Catalyzed Reactions: Reaction Pathways of Uricase-Catalyzed Oxidation and Hydration of Uric Acid.

Authors:  Donghui Wei; Xiaoqin Huang; Yan Qiao; Jingjing Rao; Lu Wang; Fei Liao; Chang-Guo Zhan
Journal:  ACS Catal       Date:  2017-06-15       Impact factor: 13.084

6.  Integration of kinetic analysis of reaction curve with a proper classical approach for enzymatic analysis.

Authors:  Xiaolan Yang; Gaobo Long; Hairong Jiang; Pu Liao; Fei Liao
Journal:  ScientificWorldJournal       Date:  2012-05-03

7.  Improved biological properties and hypouricemic effects of uricase from Candida utilis loaded in novel alkaline enzymosomes.

Authors:  Qun-You Tan; Jing-Qing Zhang; Na Wang; Hong Yang; Xiaoling Li; Hua-Rong Xiong; Jian-Yong Wu; Chun-Jing Zhao; Hong Wang; Hua-Feng Yin
Journal:  Int J Nanomedicine       Date:  2012-07-23

8.  Comparison of activity indexes for recognizing enzyme mutants of higher activity with uricase as model.

Authors:  Juan Feng; Hongbo Liu; Xiaolan Yang; Ang Gao; Juan Liao; Liping Feng; Jun Pu; Yanling Xie; Gaobo Long; Yuanli Li; Fei Liao
Journal:  Chem Cent J       Date:  2013-04-17       Impact factor: 4.215

  8 in total

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