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联苯降解菌罗尔斯通氏菌对双酚A的生物转化及雌激素活性还原作用

Biotransformation and reduction of estrogenicity of bisphenol A by the biphenyl-degrading Cupriavidus basilensis.

作者信息

Zühlke Marie-Katherin, Schlüter Rabea, Mikolasch Annett, Zühlke Daniela, Giersberg Martin, Schindler Henning, Henning Ann-Kristin, Frenzel Heidi, Hammer Elke, Lalk Michael, Bornscheuer Uwe T, Riedel Katharina, Kunze Gotthard, Schauer Frieder

机构信息

Institute of Microbiology, Ernst-Moritz-Arndt-University of Greifswald, Friedrich-Ludwig-Jahn-Str. 15, 17487, Greifswald, Germany.

Leibniz Institute of Plant Genetics and Crop Plant Research, Corrensstr. 3, OT Gatersleben, 06466, Seeland, Germany.

出版信息

Appl Microbiol Biotechnol. 2017 May;101(9):3743-3758. doi: 10.1007/s00253-016-8061-z. Epub 2017 Jan 3.

Abstract

The biphenyl-degrading Gram-negative bacterium Cupriavidus basilensis (formerly Ralstonia sp.) SBUG 290 uses various aromatic compounds as carbon and energy sources and has a high capacity to transform bisphenol A (BPA), which is a hormonally active substance structurally related to biphenyl. Biphenyl-grown cells initially hydroxylated BPA and converted it to four additional products by using three different transformation pathways: (a) formation of multiple hydroxylated BPA, (b) ring fission, and (c) transamination followed by acetylation or dimerization. Products of the ring fission pathway were non-toxic and all five products exhibited a significantly reduced estrogenic activity compared to BPA. Cell cultivation with phenol and especially in nutrient broth (NB) resulted in a reduced biotransformation rate and lower product quantities, and NB-grown cells did not produce all five products in detectable amounts. Thus, the question arose whether enzymes of the biphenyl degradation pathway are involved in the transformation of BPA and was addressed by proteomic analyses.

摘要

联苯降解革兰氏阴性菌罗尔斯通氏菌属(现称巴兹尔拜叶假单胞菌)SBUG 290利用多种芳香族化合物作为碳源和能源,并且具有高能力转化双酚A(BPA),双酚A是一种在结构上与联苯相关的激素活性物质。以联苯为生长底物的细胞最初将双酚A羟基化,并通过三种不同的转化途径将其转化为另外四种产物:(a)形成多个羟基化双酚A,(b)环裂解,以及(c)转氨作用,随后进行乙酰化或二聚化。环裂解途径的产物无毒,并且与双酚A相比,所有五种产物的雌激素活性均显著降低。用苯酚培养细胞,尤其是在营养肉汤(NB)中培养,导致生物转化速率降低和产物量减少,并且在营养肉汤中生长的细胞不能产生可检测量的所有五种产物。因此,出现了联苯降解途径的酶是否参与双酚A转化的问题,并通过蛋白质组学分析进行了研究。

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