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缺磷促进植物体内有机磷酯类化合物的水解:机制与转化途径。

Phosphorus Deficiency Promoted Hydrolysis of Organophosphate Esters in Plants: Mechanisms and Transformation Pathways.

机构信息

Key Laboratory of Pollution Processes and Environmental Criteria, Ministry of Education, Tianjin Key Laboratory of Environmental Remediation and Pollution Control, College of Environmental Science and Engineering, Nankai University, Tianjin 300350, P. R. China.

College of Natural Resources and Environment, Northwest A&F University, Yangling, Shaanxi 712100, P. R. China.

出版信息

Environ Sci Technol. 2021 Jul 20;55(14):9895-9904. doi: 10.1021/acs.est.1c02396. Epub 2021 Jul 12.

Abstract

The biotransformation of organophosphate esters (OPEs) in white lupin () and wheat ( L.) was investigated in hydroponic experiments with different phosphorus (P)-containing conditions. The hydrolysis rates of OPEs followed the order of triphenyl phosphate (TPHP) > tri--butyl phosphate (TnBP) > tris(1,3-dichloro-2-propyl) phosphate (TDCPP). Hydrolysis of OPEs was accelerated at P-deficient conditions, and faster hydrolysis took place in white lupin than in wheat. Coincidingly, the production of acid phosphatase (ACP) in both plants was promoted, and much higher intracellular and extracellular ACPs were observed in white lupin under P-deficient conditions. experiments revealed that ACP was a key enzyme to hydrolyze OPEs. The hydrolysis rates of OPEs were significantly correlated with the Hirshfeld charges, calculated by density functional theory, of the oxygen atom in the single P-O bond. Using ultra-high-performance liquid chromatography coupled with Orbitrap Fusion mass spectrometer, 30 metabolites were successfully identified. Some of these metabolites, such as sulfate-conjugated products, hydration of cysteine-conjugated products of TPHP, and reductively dechlorinated metabolites of TDCPP, were observed for the first time in plants. It is noteworthy that OPEs may transform into many hydroxylated metabolites, and special attention should be paid to their potential environmental effects.

摘要

在不同含磷条件的水培实验中,研究了有机磷酸酯(OPEs)在白羽扇豆()和小麦()中的生物转化。OPEs 的水解速率顺序为三苯基磷酸酯(TPHP)>三--丁基磷酸酯(TnBP)>三(1,3-二氯-2-丙基)磷酸酯(TDCPP)。在缺磷条件下,OPEs 的水解会加速,并且在白羽扇豆中的水解速度比在小麦中更快。同时,两种植物中酸性磷酸酶(ACP)的产生都得到了促进,在缺磷条件下,白羽扇豆中观察到更高的细胞内和细胞外 ACP。实验表明,ACP 是水解 OPEs 的关键酶。OPEs 的水解速率与通过密度泛函理论计算的单 P-O 键中氧原子的 Hirshfeld 电荷显著相关。使用超高效液相色谱-轨道阱融合质谱联用仪,成功鉴定了 30 种代谢物。其中一些代谢物,如硫酸盐结合产物、TPHP 的半胱氨酸结合产物的水合产物以及 TDCPP 的还原脱氯代谢物,在植物中首次被观察到。值得注意的是,OPEs 可能转化为许多羟基化代谢物,应特别注意它们的潜在环境影响。

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