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首页> 外文期刊>Environmental Science and Pollution Research >Fluoranthene degradation and binding mechanism study based on the active-site structure of ring-hydroxylating dioxygenase in Microbacterium paraoxydans JPM1
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Fluoranthene degradation and binding mechanism study based on the active-site structure of ring-hydroxylating dioxygenase in Microbacterium paraoxydans JPM1

机译:基于副唑羟基酸二氧化氮酸氮杂钾的环羟化二氧酶的活性位点结构的荧蒽脱氮和结合机理研究

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In this study, a gram-positive fluoranthene-degrading bacterial strain was isolated from crude oil in Dagang Oilfield and identified as Microbacterium paraoxydans JPM1 by the analysis of 16S rDNA sequence. After 25 days of incubation, the strain JPM1 could degrade 91.78 % of the initial amount of fluoranthene. Moreover, four metabolites 9-fluorenone-1-carboxylic acid, 9-fluorenone, phthalic acid, and benzoic acid were detected in the culture solution. The gene sequence encoding the aromatic-ring-hydroxylating dioxygenase was amplified in the strain JPM1 by PCR. Based on the translated protein sequence, a homology modeling method was applied to build the crystal structure of dioxygenase. Subsequently, the interaction mechanism between fluoranthene and the active site of dioxygenase was simulated and analyzed by molecular docking. Consequently, a feasible degrading pathway of fluoranthene in the strain JPM1 was proposed based on the metabolites and the interaction analyses. Additionally, the thermodynamic analysis showed that the strain JPM1 had high tolerance for fluoranthene, and the influence of fluoranthene for the bacterial growth activity was negligible under 100 to 400 mg L-1 concentrations. Taken together, this study indicates that the strain JPM1 has high potential for further study in bioremediation of polycyclic aromatic hydrocarbon (PAH)-contaminated sites.
机译:在这项研究中,从大港油田的原油中分离了克阳性荧光降解的细菌菌株,并通过分析16S rDNA序列来鉴定为微生物律杀微催化剂JPM1。孵育25天后,菌株JPM1可以降解氟蒽初始量的91.78%。此外,在培养溶液中检测到四种代谢物9-芴酮-1-羧酸,9-芴酮,邻苯二甲酸和苯甲酸。通过PCR在菌株JPM1中扩增编码芳香环 - 羟化二恶化二恶英酶的基因序列。基于翻译的蛋白质序列,施加了同源性建模方法以构建二氧杂酶的晶体结构。随后,通过分子对接模拟并分析二氧化碳酶与二恶英酶的活性位点之间的相互作用机理。因此,基于代谢物和相互作用分析,提出了菌株JPM1中氟蒽的可行降解途径。另外,热力学分析显示菌株JPM1对氟蒽耐受高,并且荧蒽对于细菌生长活性的影响忽略于100至400mg的L-1浓度。该研究占据了,该研究表明,菌株JPM1具有高潜力,进一步研究多环芳烃(PAH) - 酰胺位点的生物化。

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