Methanotrophic bacteria.

R. S. Hanson, Thomas E Hanson
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引用次数: 1345

Abstract

Methane-utilizing bacteria (methanotrophs) are a diverse group of gram-negative bacteria that are related to other members of the Proteobacteria. These bacteria are classified into three groups based on the pathways used for assimilation of formaldehyde, the major source of cell carbon, and other physiological and morphological features. The type I and type X methanotrophs are found within the gamma subdivision of the Proteobacteria and employ the ribulose monophosphate pathway for formaldehyde assimilation, whereas type II methanotrophs, which employ the serine pathway for formaldehyde assimilation, form a coherent cluster within the beta subdivision of the Proteobacteria. Methanotrophic bacteria are ubiquitous. The growth of type II bacteria appears to be favored in environments that contain relatively high levels of methane, low levels of dissolved oxygen, and limiting concentrations of combined nitrogen and/or copper. Type I methanotrophs appear to be dominant in environments in which methane is limiting and combined nitrogen and copper levels are relatively high. These bacteria serve as biofilters for the oxidation of methane produced in anaerobic environments, and when oxygen is present in soils, atmospheric methane is oxidized. Their activities in nature are greatly influenced by agricultural practices and other human activities. Recent evidence indicates that naturally occurring, uncultured methanotrophs represent new genera. Methanotrophs that are capable of oxidizing methane at atmospheric levels exhibit methane oxidation kinetics different from those of methanotrophs available in pure cultures. A limited number of methanotrophs have the genetic capacity to synthesize a soluble methane monooxygenase which catalyzes the rapid oxidation of environmental pollutants including trichloroethylene.
Methanotrophic细菌。
利用甲烷的细菌(甲烷营养菌)是一种不同的革兰氏阴性细菌,与变形菌门的其他成员有关。根据吸收甲醛的途径、细胞碳的主要来源以及其他生理和形态特征,这些细菌被分为三组。I型和X型甲烷氧化菌存在于变形菌门的gamma分支中,采用单磷酸核酮糖途径进行甲醛同化,而II型甲烷氧化菌采用丝氨酸途径进行甲醛同化,在变形菌门的beta分支中形成一个一致的集群。甲烷营养细菌无处不在。II型细菌似乎在甲烷含量相对较高、溶解氧含量较低、氮和/或铜的组合浓度有限的环境中更容易生长。I型甲烷氧化菌似乎在甲烷受限、氮和铜组合水平相对较高的环境中占主导地位。这些细菌作为厌氧环境中产生的甲烷氧化的生物过滤器,当土壤中存在氧气时,大气中的甲烷被氧化。它们在自然界的活动受到农业实践和其他人类活动的极大影响。最近的证据表明,自然发生的,未经培养的甲烷氧化菌代表了新属。能够在大气水平氧化甲烷的甲烷氧化菌表现出与纯培养物中甲烷氧化菌不同的甲烷氧化动力学。有限数量的甲烷氧化菌具有合成可溶性甲烷单加氧酶的遗传能力,该酶能催化包括三氯乙烯在内的环境污染物的快速氧化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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