在热袍菌门的 Mesotoga spp. 中,无论是以单质硫还是氢营养型硫酸盐还原菌作为电子受体,都需要进行必需的糖氧化作用。

Obligate sugar oxidation in Mesotoga spp., phylum Thermotogae, in the presence of either elemental sulfur or hydrogenotrophic sulfate-reducers as electron acceptor.

机构信息

Aix Marseille Univ, Université de Toulon, CNRS, IRD, MIO, Marseille, France.

Laboratoire d'Ecologie et de Technologie Microbienne, Institut National des Sciences Appliquées et de Technologie, Université de Carthage, Centre Urbain Nord, Tunis, BP 676, 1080, Tunisia.

出版信息

Environ Microbiol. 2018 Jan;20(1):281-292. doi: 10.1111/1462-2920.13995. Epub 2017 Dec 7.

Abstract

Mesotoga prima strain PhosAc3 is a mesophilic representative of the phylum Thermotogae comprising only fermentative bacteria so far. We show that while unable to ferment glucose, this bacterium is able to couple its oxidation to reduction of elemental sulfur. We demonstrate furthermore that M. prima strain PhosAc3 as well as M. prima strain MesG1 and Mesotoga infera are able to grow in syntrophic association with sulfate-reducing bacteria (SRB) acting as hydrogen scavengers through interspecies hydrogen transfer. Hydrogen production was higher in M. prima strain PhosAc3 cells co-cultured with SRB than in cells cultured alone in the presence of elemental sulfur. We propose that the efficient sugar-oxidizing metabolism by M. prima strain PhosAc3 in syntrophic association with a hydrogenotrophic sulfate-reducing bacterium can be extrapolated to all members of the Mesotoga genus. Genome comparison of Thermotogae members suggests that the metabolic difference between Mesotoga and Thermotoga species (sugar oxidation versus fermentation) is mainly due to the absence of the bifurcating [FeFe]-hydrogenase in the former. Such an obligate oxidative process for using sugars, unusual within prokaryotes, is the first reported within the Thermotogae. It is hypothesized to be of primary ecological importance for growth of Mesotoga spp. in the environments that they inhabit.

摘要

中温栖热菌 PhosAc3 是栖热菌门的一个嗜温代表,迄今为止只包含发酵细菌。我们表明,尽管这种细菌不能发酵葡萄糖,但它能够将其氧化与元素硫的还原偶联。此外,我们还证明,M. prima 菌株 PhosAc3 以及 M. prima 菌株 MesG1 和 Mesotoga infera 能够与硫酸盐还原菌(SRB)通过种间氢转移以作为氢清除剂进行共培养。在存在元素硫的情况下,与 SRB 共培养的 M. prima 菌株 PhosAc3 细胞比单独培养的细胞产生的氢气更多。我们提出,M. prima 菌株 PhosAc3 与产氢硫酸盐还原菌共培养时,其高效的糖氧化代谢可以外推到 Mesotoga 属的所有成员。Thermotogae 成员的基因组比较表明,Mesotoga 和 Thermotoga 物种(糖氧化与发酵)之间的代谢差异主要是由于前者缺乏分叉的[FeFe]-氢化酶。这种在原核生物中不常见的强制性糖氧化过程是在 Thermotogae 中首次报道的。据推测,对于 Mesotoga spp. 在其栖息的环境中的生长具有主要的生态重要性。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索