首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Isolation of a thermophilic bacterium, Geobacillus sp. SH-1, capable of degrading aliphatic hydrocarbons and naphthalene simultaneously, and identification of its naphthalene degrading pathway
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Isolation of a thermophilic bacterium, Geobacillus sp. SH-1, capable of degrading aliphatic hydrocarbons and naphthalene simultaneously, and identification of its naphthalene degrading pathway

机译:嗜热细菌Geobacillus sp。的分离SH-1,能够同时降解脂肪烃和萘,并确定其萘降解途径

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摘要

A thermophilic naphthalene- and aliphatic hydrocarbon-degrading bacterium SH-1 was isolated from a deep oil well and identified as Geobacillus sp. n-alkanes from C12 to C33 in crude oil and naphthalene were effectively degraded by strain SH-1, and this strain could readily utilize these compounds as its sole carbon and energy resources. During the degradation of naphthalene, strain SH-1 initiated its attack on naphthalene by a monooxygenation at its C-1 to give 1-naphthol and further monooxygenation at C-2 to produce 1,2-dihydroxynaphthalene. The ring of 1,2-dihydroxynaphthalene was cleaved to form trans-o-hydroxybenzylidenepyruvate. Subsequently, trans-o-hydroxybenzylidenepyruvate was transformed to (2E)-3-(2-hydroxyphenyl)prop-2-enal by losing a carboxyl group. Additionally, benzoic acid was identified as an intermediate in the naphthalene degradation pathway of this Geobacillus strain. This study highlights an important potential use of the thermophilic degradative strain SH-1 in the cleanup of environmental contamination by naphthalene and crude oil and presents a mechanism for naphthalene metabolism.
机译:从深油井中分离出嗜热萘和脂肪烃降解细菌SH-1,并将其鉴定为Geobacillus sp。 SH-1菌株可有效降解原油和萘中C12至C33的正构烷烃,该菌株可轻松利用这些化合物作为其唯一的碳和能源。在萘的降解过程中,菌株SH-1通过在其C-1处单加氧以生成1-萘酚,然后在C-2处进一步单加氧以生成1,2-二羟基萘,开始对萘的攻击。裂解1,2-二羟基萘的环以形成反式-邻-羟基亚苄基丙酮酸酯。随后,通过失去羧基将反式-邻-羟基亚苄基丙酮酸酯转化为(2E)-3-(2-羟基苯基)丙-2-烯醛。另外,苯甲酸被鉴定为该地芽孢杆菌菌株的萘降解途径中的中间体。这项研究突出了嗜热降解菌株SH-1在清洁萘和原油对环境污染中的重要潜在用途,并提出了萘代谢的机制。

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