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ISME J. 2012 Aug;6(8):1578-85. doi: 10.1038/ismej.2012.5. Epub 2012 Feb 23.
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Soluble electron shuttles can mediate energy taxis toward insoluble electron acceptors.可溶性电子穿梭体可以介导向不溶性电子受体的能量趋化作用。
Environ Sci Technol. 2012 Mar 6;46(5):2813-20. doi: 10.1021/es204302w. Epub 2012 Feb 24.
3
Comparative metagenomic, phylogenetic and physiological analyses of soil microbial communities across nitrogen gradients.比较氮梯度土壤微生物群落的宏基因组学、系统发育和生理学分析。
ISME J. 2012 May;6(5):1007-17. doi: 10.1038/ismej.2011.159. Epub 2011 Dec 1.
4
Characterization of flavins in roots of Fe-deficient strategy I plants, with a focus on Medicago truncatula.缺铁策略 I 植物根中类黄素的特征分析,以蒺藜苜蓿为重点。
Plant Cell Physiol. 2011 Dec;52(12):2173-89. doi: 10.1093/pcp/pcr149. Epub 2011 Oct 28.
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Complete genome of Candidatus Chloracidobacterium thermophilum, a chlorophyll-based photoheterotroph belonging to the phylum Acidobacteria.喜温脱氯杆菌完整基因组,一种基于叶绿素的光合异养菌,属于酸杆菌门。
Environ Microbiol. 2012 Jan;14(1):177-90. doi: 10.1111/j.1462-2920.2011.02592.x. Epub 2011 Sep 27.
6
Recovery of as-yet-uncultured soil acidobacteria on dilute solid media.稀固态培养基上尚未培养的土壤酸杆菌的恢复。
Appl Environ Microbiol. 2011 Nov;77(22):8184-8. doi: 10.1128/AEM.05956-11. Epub 2011 Sep 23.
7
Towards electrosynthesis in shewanella: energetics of reversing the mtr pathway for reductive metabolism.朝向希瓦氏菌中的电合成:逆转 mtr 途径进行还原代谢的能量学。
PLoS One. 2011 Feb 2;6(2):e16649. doi: 10.1371/journal.pone.0016649.
8
Terriglobus saanensis sp. nov., an acidobacterium isolated from tundra soil.嗜酸菌属土壤球抱菌,一种从苔原土壤中分离得到的嗜酸细菌。
Int J Syst Evol Microbiol. 2011 Aug;61(Pt 8):1823-1828. doi: 10.1099/ijs.0.026005-0. Epub 2010 Dec 24.
9
An essential role for UshA in processing of extracellular flavin electron shuttles by Shewanella oneidensis.UshA 在希瓦氏菌属处理细胞外黄素电子穿梭体中的重要作用。
Mol Microbiol. 2010 Oct;78(2):519-32. doi: 10.1111/j.1365-2958.2010.07353.x. Epub 2010 Sep 14.
10
Comparative analysis of acidobacterial genomic fragments from terrestrial and aquatic metagenomic libraries, with emphasis on acidobacteria subdivision 6.陆地和水生宏基因组文库中的酸杆菌基因组片段的比较分析,重点是酸杆菌亚群 6。
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发酵嗜热丝菌分泌两种不同的氧化还原活性化合物,以利用广泛的氧化还原电位范围内的电子受体。

Geothrix fermentans secretes two different redox-active compounds to utilize electron acceptors across a wide range of redox potentials.

机构信息

Department of Microbiology, University of Minnesota, St. Paul, Minnesota, USA.

出版信息

Appl Environ Microbiol. 2012 Oct;78(19):6987-95. doi: 10.1128/AEM.01460-12. Epub 2012 Jul 27.

DOI:10.1128/AEM.01460-12
PMID:22843516
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3457516/
Abstract

The current understanding of dissimilatory metal reduction is based primarily on isolates from the proteobacterial genera Geobacter and Shewanella. However, environments undergoing active Fe(III) reduction often harbor less-well-studied phyla that are equally abundant. In this work, electrochemical techniques were used to analyze respiratory electron transfer by the only known Fe(III)-reducing representative of the Acidobacteria, Geothrix fermentans. In contrast to previously characterized metal-reducing bacteria, which typically reach maximal rates of respiration at electron acceptor potentials of 0 V versus standard hydrogen electrode (SHE), G. fermentans required potentials as high as 0.55 V to respire at its maximum rate. In addition, G. fermentans secreted two different soluble redox-active electron shuttles with separate redox potentials (-0.2 V and 0.3 V). The compound with the lower midpoint potential, responsible for 20 to 30% of electron transfer activity, was riboflavin. The behavior of the higher-potential compound was consistent with hydrophilic UV-fluorescent molecules previously found in G. fermentans supernatants. Both electron shuttles were also produced when cultures were grown with Fe(III), but not when fumarate was the electron acceptor. This study reveals that Geothrix is able to take advantage of higher-redox-potential environments, demonstrates that secretion of flavin-based shuttles is not confined to Shewanella, and points to the existence of high-potential-redox-active compounds involved in extracellular electron transfer. Based on differences between the respiratory strategies of Geothrix and Geobacter, these two groups of bacteria could exist in distinctive environmental niches defined by redox potential.

摘要

目前对异化金属还原的理解主要基于源自变形杆菌门的希瓦氏菌属和地杆菌属的分离株。然而,在正在进行铁(III)还原的环境中,通常存在着研究较少但同样丰富的门。在这项工作中,电化学技术被用于分析已知的唯一一种酸杆菌属的铁(III)还原代表菌 Geothrix fermentans 的呼吸电子转移。与以前表征的金属还原细菌不同,后者通常在电子受体电位为 0 V 与标准氢电极(SHE)相比时达到最大呼吸速率,G. fermentans 以其最大速率呼吸需要高达 0.55 V 的电位。此外,G. fermentans 分泌了两种具有不同还原电位(-0.2 V 和 0.3 V)的不同可溶性氧化还原活性电子穿梭体。具有较低中点电位的化合物负责 20%至 30%的电子转移活性,该化合物是核黄素。具有较高电位的化合物的行为与先前在 G. fermentans 上清液中发现的亲水性 UV 荧光分子一致。当用铁(III)培养时,两种电子穿梭体都会产生,但当电子受体是延胡索酸盐时则不会。这项研究表明 Geothrix 能够利用更高氧化还原电位的环境,证明基于黄素的穿梭体的分泌不仅限于 Shewanella,并且指出参与细胞外电子转移的高电位氧化还原活性化合物的存在。基于 Geothrix 和 Geobacter 的呼吸策略之间的差异,这两组细菌可以存在于由氧化还原电位定义的独特环境小生境中。