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在淡水沉积物微观世界中产生的4-甲基苯酚不是双酚A的代谢物。

4-methylphenol produced in freshwater sediment microcosms is not a bisphenol A metabolite.

作者信息

Im Jeongdae, Prevatte Carson W, Lee Hong Geun, Campagna Shawn R, Löffler Frank E

机构信息

Department of Microbiology, University of Tennessee, Knoxville, TN 37996, United States; Center for Environmental Biotechnology, University of Tennessee, Knoxville, TN 37996, United States.

Department of Chemistry, The University of Tennessee, Knoxville, TN 37996, United States.

出版信息

Chemosphere. 2014 Dec;117:521-6. doi: 10.1016/j.chemosphere.2014.09.008. Epub 2014 Sep 29.

Abstract

4-Methylphenol (4-MP), a putative bisphenol A (BPA) degradation intermediate, was detected at concentrations reaching 2.1 mg L(-1) in anoxic microcosms containing 10 mg L(-1) BPA and 5 g of freshwater sediment material collected from four geographically distinct locations and amended with nitrate, nitrite, ferric iron, or bicarbonate as electron acceptors. 4-MP accumulation was transient, and 4-MP degradation was observed under all redox conditions tested. 4-MP was not detected in microcosms not amended with BPA. Unexpectedly, incubations with (13)C-labeled BPA failed to produce (13)C-labeled 4-MP suggesting that 4-MP was not derived from BPA. The detection of 4-MP in live microcosms amended with lactate, but not containing BPA corroborated that BPA was not the source of 4-MP. These findings demonstrate that the transient formation of 4-MP as a possible BPA degradation intermediate must be interpreted cautiously, as microbial activity in streambed microcosms may generate 4-MP from sediment-associated organic material.

摘要

4-甲基苯酚(4-MP)是一种假定的双酚A(BPA)降解中间体,在含有10 mg L(-1) BPA和从四个地理位置不同的地点采集的5 g淡水沉积物的缺氧微观世界中被检测到,其浓度达到2.1 mg L(-1),并以硝酸盐、亚硝酸盐、铁离子或碳酸氢盐作为电子受体进行修正。4-MP的积累是短暂的,并且在所有测试的氧化还原条件下都观察到了4-MP的降解。在未用BPA修正的微观世界中未检测到4-MP。出乎意料的是,用(13)C标记的BPA进行孵育未能产生(13)C标记的4-MP,这表明4-MP不是由BPA衍生而来的。在用乳酸修正但不含BPA的活性微观世界中检测到4-MP,这证实了BPA不是4-MP的来源。这些发现表明,作为可能的BPA降解中间体的4-MP的短暂形成必须谨慎解释,因为河床微观世界中的微生物活动可能从与沉积物相关的有机物质中产生4-MP。

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