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微生物对芳基砷化合物的降解

Degradation of arylarsenic compounds by microorganisms.

作者信息

Nakamiya Kunichika, Nakayama Takashi, Ito Hiroyasu, Edmonds John S, Shibata Yasuyuki, Morita Masatoshi

机构信息

National Institute for Environmental Studies, Tsukuba, Ibaraki, Japan.

出版信息

FEMS Microbiol Lett. 2007 Sep;274(2):184-8. doi: 10.1111/j.1574-6968.2007.00835.x.

Abstract

Microorganisms were not directly accumulated when soil contaminated to about 0.5 mM with diphenylarsinic acid (DPAA) was used as the sole source of carbon. However, using toluene as the carbon source yielded several isolates, which were then used in cultivation with DPAA as the sole source of carbon. By these methods, Kytococcus sedentarius strain NK0508, which can grow in up to 0.038 mM DPAA, was isolated. The toxicity of DPAA retarded the growth of K. sedentarius and the direct accumulation of DPAA-utilizing microorganisms from environmental samples. This strain can utilize about 80% of DPAA and phenylarsonic acid as the sole source of carbon for 3 days. Degradation products of DPAA were determined to be cis, cis, muconate and arsenic acid. When K. sedentarius was cultivated with methylphenylarsinic acid and diphenylmethylarsine, about 90% and 10% degradation of the two compounds, respectively, were observed. Diphenylmethylarsine oxide, possibly synthesized by methylation of DPAA, was detected as one of the transformation products. These results suggest that degradation is initiated by splitting of the phenyl groups from the arylarsenic compounds with subsequent hydroxylation of the phenyl groups and ring opening to yield cis, cis, muconate.

摘要

当用被二苯胂酸(DPAA)污染至约0.5 mM的土壤作为唯一碳源时,微生物不会直接积累。然而,以甲苯作为碳源时得到了几种分离物,然后将这些分离物用于以DPAA作为唯一碳源的培养。通过这些方法,分离出了能在高达0.038 mM DPAA中生长的久坐不动球形菌(Kytococcus sedentarius)菌株NK0508。DPAA的毒性阻碍了久坐不动球形菌的生长以及从环境样品中直接积累利用DPAA的微生物。该菌株可将约80%的DPAA和苯胂酸作为唯一碳源利用3天。DPAA的降解产物被确定为顺式、顺式粘康酸和砷酸。当久坐不动球形菌用甲基苯胂酸和二苯甲基胂培养时,分别观察到这两种化合物约90%和10%的降解。作为转化产物之一检测到了可能由DPAA甲基化合成的二苯甲基胂氧化物。这些结果表明,降解是通过从芳基胂化合物上裂解苯基,随后苯基羟基化并开环生成顺式、顺式粘康酸而开始的。

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