Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China.
J Hazard Mater. 2011 Oct 15;193:128-38. doi: 10.1016/j.jhazmat.2011.07.039. Epub 2011 Jul 26.
This study investigated the abiotic transformation kinetics of chlortetracycline (CTC) by synthesized δ-MnO(2) under conditions of different solutions. CTC was rapidly oxidized by δ-MnO(2), with the generation of Mn(2+). The measured CTC transformation rate increased considerably with an increase in initial δ-MnO(2) concentration but it decreased as the initial CTC concentration increased. Both the measured CTC transformation rate and the amount of Mn(2+) generated decreased with increasing pH. The CTC transformation rate rose with an increase in temperature. The apparent activation energy (45 ± 14 kJ mol(-1)) was consistent with a surface-controlled reaction. Dissolved Mn(2+) and Zn(2+), as background cations, and substituted phenols, as co-solutes, remarkably decreased the transformation rate of CTC. Liquid chromatography-tandem mass spectrometry (LC-MS-MS) was used to identify oxidation products, which include iso-CTC, 4-epi-CTC, anhydro-CTC and 4-epi-anhydro-CTC, keto-CTC, 4-epi-keto-CTC, N-demethyl-CTC, 4-epi-N-demethyl-CTC, N-didemethyl-CTC and 4-epi-N-didemethyl-CTC. Product identification together with Fourier transform-infrared (FTIR) spectra suggested that the hydroxyl groups at C6 and C12 and the dimethylamine group of CTC reacted with the Mn-OH groups on the δ-MnO(2) surface. Thus, δ-MnO(2) in the soils most probably plays an important role in the abiotic transformation of tetracycline antibiotics.
本研究考察了合成δ-MnO2 在不同溶液条件下对金霉素(CTC)的非生物转化动力学。CTC 被δ-MnO2 迅速氧化,生成 Mn(2+)。随着初始 δ-MnO2 浓度的增加,测得的 CTC 转化速率显著提高,但随着初始 CTC 浓度的增加,其转化速率降低。随着 pH 值的增加,测得的 CTC 转化速率和生成的 Mn(2+)量均降低。CTC 转化速率随温度升高而升高。表观活化能(45±14 kJ mol(-1))与表面控制反应一致。溶解的 Mn(2+)和 Zn(2+)作为背景阳离子,以及取代酚作为共溶质,显著降低了 CTC 的转化速率。液相色谱-串联质谱(LC-MS-MS)用于鉴定氧化产物,包括异 CTC、4-表 CTC、脱水 CTC 和 4-表脱水 CTC、金 CTC、4-表金 CTC、N-去甲 CTC、4-表 N-去甲 CTC、N-二甲 CTC 和 4-表 N-二甲 CTC。产物鉴定结合傅里叶变换红外(FTIR)光谱表明,CTC 上的 C6 和 C12 的羟基和二甲胺基与 δ-MnO2 表面的 Mn-OH 基团反应。因此,土壤中的 δ-MnO2 很可能在四环类抗生素的非生物转化中发挥重要作用。