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酵母孢子中共包封肌酐酶、肌酸酶和肌氨酸氧化酶用于肌酐降解

Co-encapsulation of Creatininase, Creatinase, and Sarcosine Oxidase in Yeast Spore for Creatinine Degradation.

作者信息

Kong Jun, Han XiaoLong, Pan HuaPing, Lei MeiLing, Qi ShuQi

机构信息

School of Life Science and Bioengineering, Jining University, 1 Xingtan Road, Qufu, 273155, Shangdong, China.

School of Pharmacy, Jiangxi University of Chinese Medicine, 1688 Meiling Road, Nanchang, 330004, Jiangxi, China.

出版信息

Appl Biochem Biotechnol. 2025 Apr;197(4):2544-2554. doi: 10.1007/s12010-024-05163-3. Epub 2025 Jan 7.

Abstract

Creatinine clearance is used to reflect the glomerular filtration rate to assess kidney function. Creatinine degradation-related enzymes have been used for creatinine detection in clinical medicine. The mixture of spores encapsulating either creatininase or creatinase or sarcosine oxidase could mediate a three-step reaction to produce hydrogen peroxide from creatinine. In this study, to achieve consecutive and efficient creatinine detection, degradation enzymes creatininase, creatinase, and sarcosine oxidase were co-encapsulated in a single Saccharomyces cerevisiae spore. The co-encapsulation spores performed high specific activity and enzymatic properties and converted creatinine to HO, which was 160% higher than the mixture of spores that individually expressed these three enzymes. The detection condition of co-encapsulation was optimized for the store at room temperature and resistance to environmental stresses. The S. cerevisiae spores can co-encapsulate enzyme families and catalyze consecutive reactions in the spore wall, having potential application prospects.

摘要

肌酐清除率用于反映肾小球滤过率以评估肾功能。肌酐降解相关酶已用于临床医学中的肌酐检测。包裹肌酸酐酶或肌酸酶或肌氨酸氧化酶的孢子混合物可介导三步反应,将肌酐转化为过氧化氢。在本研究中,为实现连续高效的肌酐检测,将降解酶肌酸酐酶、肌酸酶和肌氨酸氧化酶共包封于单个酿酒酵母孢子中。共包封孢子具有高比活性和酶学性质,将肌酐转化为过氧化氢的能力比单独表达这三种酶的孢子混合物高160%。对共包封的检测条件进行了优化,以实现室温储存和抗环境压力。酿酒酵母孢子可共包封酶家族并在孢子壁中催化连续反应,具有潜在的应用前景。

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