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首页> 外文期刊>FEMS Microbiology Reviews >Metabolic reconstruction of aromatic compounds degradation from the genome of the amazing pollutant-degrading bacterium Cupriavidus necator JMP134
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Metabolic reconstruction of aromatic compounds degradation from the genome of the amazing pollutant-degrading bacterium Cupriavidus necator JMP134

机译:从令人惊异的污染物降解细菌Cupriavidus necator JMP134基因组中降解芳香族化合物的代谢重建

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Cupriavidus necator JMP134 is a model for chloroaromatics biodegradation, capable of mineralizing 2,4-D, halobenzoates, chlorophenols and nitrophenols, among other aromatic compounds. We performed the metabolic reconstruction of aromatics degradation, linking the catabolic abilities predicted in silico from the complete genome sequence with the range of compounds that support growth of this bacterium. Of the 140 aromatic compounds tested, 60 serve as a sole carbon and energy source for this strain, strongly correlating with those catabolic abilities predicted from genomic data. Almost all the main ring-cleavage pathways for aromatic compounds are found in C. necator: the beta-ketoadipate pathway, with its catechol, chlorocatechol, methylcatechol and protocatechuate ortho ring-cleavage branches; the (methyl)catechol meta ring-cleavage pathway; the gentisate pathway; the homogentisate pathway; the 2,3-dihydroxyphenylpropionate pathway; the (chloro)hydroxyquinol pathway; the (amino)hydroquinone pathway; the phenylacetyl-CoA pathway; the 2-aminobenzoyl-CoA pathway; the benzoyl-CoA pathway and the 3-hydroxyanthranilate pathway. A broad spectrum of peripheral reactions channel substituted aromatics into these ring cleavage pathways. Gene redundancy seems to play a significant role in the catabolic potential of this bacterium. The literature on the biochemistry and genetics of aromatic compounds degradation is reviewed based on the genomic data. The findings on aromatic compounds biodegradation in C. necator reviewed here can easily be extrapolated to other environmentally relevant bacteria, whose genomes also possess a significant proportion of catabolic genes.
机译:Cupriavidus necator JMP134是用于氯代芳烃生物降解的模型,能够使2,4-D,卤代苯甲酸酯,氯酚和硝基酚以及其他芳香族化合物矿化。我们进行了芳香族化合物降解的代谢重建,将完整基因组序列的计算机模拟预测的分解代谢能力与支持该细菌生长的一系列化合物联系在一起。在测试的140种芳香族化合物中,有60种是该菌株的唯一碳和能源,与根据基因组数据预测的分解代谢能力密切相关。芳香族化合物的几乎所有主要的环裂解途径都在C. necator中发现:β-酮己二酸酯途径,其邻苯二酚,氯邻苯二酚,甲基邻苯二酚和原儿茶酸酯邻环裂解分支; (甲基)邻苯二酚间环裂解途径;龙舌兰途径;纯黑藻酸盐途径; 2,3-二羟基苯基丙酸酯途径; (氯)羟基喹啉途径; (氨基)氢醌途径;苯乙酰辅酶A途径; 2-氨基苯甲酰基-CoA途径;苯甲酰-CoA途径和3-羟基邻氨基苯甲酸途径。广泛的外围反应将取代的芳族化合物引入这些环的裂解途径。基因冗余似乎在这种细菌的分解代谢潜力中起着重要作用。基于基因组数据,对芳香族化合物降解的生物化学和遗传学文献进行了综述。此处回顾的关于C. necator中芳香族化合物生物降解的发现很容易推论到其他与环境有关的细菌,这些细菌的基因组也具有很大比例的分解代谢基因。

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