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一种新型电位生物传感器,用于使用产L-半胱氨酸脱硫酶的耶氏丝孢酵母细胞与硫化物电极联用选择性测定L-半胱氨酸。

A novel potentiometric biosensor for selective L-cysteine determination using L-cysteine-desulfhydrase producing Trichosporon jirovecii yeast cells coupled with sulfide electrode.

作者信息

Hassan Saad S M, el-Baz Ashraf F, Abd-Rabboh Hisham S M

机构信息

Department of Chemistry, Faculty of Science, Ain Shams University, Cairo, Egypt.

出版信息

Anal Chim Acta. 2007 Oct 17;602(1):108-13. doi: 10.1016/j.aca.2007.09.007. Epub 2007 Sep 14.

Abstract

Trichosporon jirovecii yeast cells are used for the first time as a source of L-cysteine desulfhydrase enzyme (EC 4.4.1.1) and incorporated in a biosensor for determining L-cysteine. The cells are grown under cadmium stress conditions to increase the expression level of the enzyme. The intact cells are immobilized on the membrane of a solid-state Ag2S electrode to provide a simple L-cysteine responsive biosensor. Upon immersion of the sensor in L-cysteine containing solutions, L-cysteine undergoes enzymatic hydrolysis into pyruvate, ammonia and sulfide ion. The rate of sulfide ion formation is potentiometrically measured as a function of L-cysteine concentration. Under optimized conditions (phosphate buffer pH 7, temperature 37+/-1 degrees C and actual weight of immobilized yeast cells 100 mg), a linear relationship between L-cysteine concentration and the initial rate of sulfide liberation (dE/dt) is obtained. The sensor response covers the concentration range of 0.2-150 mg L(-1) (1.7-1250 micromol L(-1)) L-cysteine. Validation of the assay method according to the quality control/quality assurance standards (precision, accuracy, between-day variability, within-day reproducibility, range of measurements and lower limit of detection) reveals remarkable performance characteristics of the proposed biosensor. The sensor is satisfactorily utilized for determination of L-cysteine in some pharmaceutical formulations. The lower limit of detection is approximately 1 micromol L(-1) and the accuracy and precision of the method are 97.5% and +/-1.1%, respectively. Structurally similar sulfur containing compounds such as glutathione, cystine, methionine, and D-cysteine do no interfere.

摘要

吉氏丝孢酵母细胞首次被用作L-半胱氨酸脱硫酶(EC 4.4.1.1)的来源,并被整合到用于测定L-半胱氨酸的生物传感器中。细胞在镉胁迫条件下生长以提高该酶的表达水平。完整细胞固定在固态Ag2S电极膜上,以提供一种简单的对L-半胱氨酸有响应的生物传感器。将传感器浸入含L-半胱氨酸的溶液中时,L-半胱氨酸会酶解为丙酮酸、氨和硫离子。硫离子形成的速率通过电位法测量,作为L-半胱氨酸浓度的函数。在优化条件下(磷酸盐缓冲液pH 7、温度37±1℃以及固定化酵母细胞的实际重量100 mg),获得了L-半胱氨酸浓度与硫离子释放初始速率(dE/dt)之间的线性关系。该传感器的响应涵盖0.2 - 150 mg L(-1)(1.7 - 1250 μmol L(-1))的L-半胱氨酸浓度范围。根据质量控制/质量保证标准(精密度、准确度、日间变异性、日内重现性、测量范围和检测下限)对该测定方法进行验证,结果表明所提出的生物传感器具有显著的性能特征。该传感器可令人满意地用于测定某些药物制剂中的L-半胱氨酸。检测下限约为1 μmol L(-1),该方法的准确度和精密度分别为97.5%和±1.1%。结构相似的含硫化合物如谷胱甘肽、胱氨酸、蛋氨酸和D-半胱氨酸不产生干扰。

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