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酶解对化学生物标志物尿液总浓度定量的影响。

Impact of enzymatic hydrolysis on the quantification of total urinary concentrations of chemical biomarkers.

机构信息

Division of Laboratory Sciences, National Center for Environmental Health, Centers for Disease Control and Prevention, 4770 Buford Hwy, Mailstop F-53, Atlanta, GA 30341, USA.

Division of Laboratory Sciences, National Center for Environmental Health, Centers for Disease Control and Prevention, 4770 Buford Hwy, Mailstop F-53, Atlanta, GA 30341, USA.

出版信息

Chemosphere. 2018 May;199:256-262. doi: 10.1016/j.chemosphere.2018.01.177. Epub 2018 Feb 20.

Abstract

Human exposure to consumer and personal care products chemicals such as phenols, including parabens and other antimicrobial agents, can be assessed through biomonitoring by quantifying urinary concentrations of the parent chemical or its metabolites, often after hydrolysis of phase II conjugates. Developing suitable analytical methods for the concurrent quantification of multiple exposure biomarkers is challenging because optimal conditions for the hydrolysis of such conjugates (e.g., O-glucuronides, N-glucuronides, sulfates) may differ depending on the biomarker. We evaluated the effectiveness of seven commercial hydrolytic enzymes to simultaneously hydrolyze N-glucuronides (using the antibacterial triclocarban as example compound) and other conjugates (using select phenols and parabens as examples) by using on-line solid phase extraction-high performance liquid chromatography-isotope dilution-tandem mass spectrometry. Incubation (30 min, 55 °C) with a genetically engineered β-glucuronidase (IMCS, ≥15 units/μL urine) hydrolyzed N-glucuronide triclocarban, but did not fully hydrolyze the conjugates of phenols and parabens. By contrast, incubation (4 h, 37 °C) with solid β-glucuronidase (Helix pomatia, Type H-1, ≥30 units/μL urine) or liquid β-glucuronidase/arylsulfatase (Helix pomatia, 30 units/μL urine [i.e., 30 μL/100 μL urine]) in the presence of 100 μL methanol for 100 μL urine completely hydrolyzed N-glucuronide triclocarban and the conjugates of several phenols and parabens, without cleaving the ester bond of the parabens to form p-hydroxybenzoic acid. These results highlight the relevance of method validation procedures that include optimizing the hydrolysis of phase II urinary conjugates (e.g., enzyme type and amount used, reaction time, temperature) to quantify accurately and concurrently multiple exposure biomarkers for biomonitoring purposes.

摘要

人体接触到消费类和个人护理产品化学物质,如酚类物质(包括对羟基苯甲酸酯和其他抗菌剂),可以通过生物监测来评估,方法是定量分析尿液中母体化学物质或其代谢物的浓度,通常需要对 II 相结合物进行水解。开发同时定量多种暴露生物标志物的合适分析方法具有挑战性,因为这些结合物(例如 O-葡糖苷酸、N-葡糖苷酸、硫酸盐)的最佳水解条件可能因生物标志物而异。我们评估了七种商业水解酶同时水解 N-葡糖苷酸(以抗菌剂三氯卡班为例)和其他结合物(以选择的酚类物质和对羟基苯甲酸酯为例)的有效性,方法是使用在线固相萃取-高效液相色谱-同位素稀释-串联质谱法。使用基因工程β-葡糖苷酸酶(IMCS,≥15 单位/μL 尿液)孵育 30 分钟(55°C)可水解 N-葡糖苷酸三氯卡班,但不能完全水解酚类物质和对羟基苯甲酸酯的结合物。相比之下,使用固体β-葡糖苷酸酶(Helix pomatia,Type H-1,≥30 单位/μL 尿液)或液体β-葡糖苷酸酶/芳基硫酸酯酶(Helix pomatia,30 单位/μL 尿液[即 30μL/100μL 尿液])在 100μL 甲醇存在下于 37°C 孵育 4 小时,可完全水解 N-葡糖苷酸三氯卡班和几种酚类物质和对羟基苯甲酸酯的结合物,而不会裂解对羟基苯甲酸酯的酯键形成对羟基苯甲酸。这些结果强调了方法验证程序的相关性,该程序包括优化 II 相尿液结合物的水解(例如,使用的酶类型和数量、反应时间、温度),以准确和同时定量生物监测目的的多种暴露生物标志物。

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