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1
Genome-enabled transcriptomics reveals archaeal populations that drive nitrification in a deep-sea hydrothermal plume.基因组转录组学揭示了驱动深海热液羽流硝化作用的古菌种群。
ISME J. 2012 Dec;6(12):2269-79. doi: 10.1038/ismej.2012.64. Epub 2012 Jun 14.
2
Untangling genomes from metagenomes: revealing an uncultured class of marine Euryarchaeota.从宏基因组中解析基因组:揭示海洋广古菌中未培养的一类。
Science. 2012 Feb 3;335(6068):587-90. doi: 10.1126/science.1212665.
3
Anaerobic oxidation of methane at different temperature regimes in Guaymas Basin hydrothermal sediments.在瓜伊马斯盆地热液沉积物中不同温度条件下甲烷的厌氧氧化。
ISME J. 2012 May;6(5):1018-31. doi: 10.1038/ismej.2011.164. Epub 2011 Nov 17.
4
Potential for chemolithoautotrophy among ubiquitous bacteria lineages in the dark ocean.黑暗海洋中普遍存在的细菌谱系的化能自养潜力。
Science. 2011 Sep 2;333(6047):1296-300. doi: 10.1126/science.1203690.
5
A persistent oxygen anomaly reveals the fate of spilled methane in the deep Gulf of Mexico.持续的氧气异常揭示了墨西哥湾深海中溢出甲烷的命运。
Science. 2011 Jan 21;331(6015):312-5. doi: 10.1126/science.1199697. Epub 2011 Jan 6.
6
Integrated metatranscriptomic and metagenomic analyses of stratified microbial assemblages in the open ocean.对开阔海域分层微生物组合体的宏转录组学和宏基因组学综合分析。
ISME J. 2011 Jun;5(6):999-1013. doi: 10.1038/ismej.2010.189. Epub 2010 Dec 9.
7
A cryptic sulfur cycle in oxygen-minimum-zone waters off the Chilean coast.智利沿海缺氧区水域中神秘的硫循环。
Science. 2010 Dec 3;330(6009):1375-8. doi: 10.1126/science.1196889. Epub 2010 Nov 11.
8
Search and clustering orders of magnitude faster than BLAST.比 BLAST 快几个数量级的搜索和聚类。
Bioinformatics. 2010 Oct 1;26(19):2460-1. doi: 10.1093/bioinformatics/btq461. Epub 2010 Aug 12.
9
Identification of novel methane-, ethane-, and propane-oxidizing bacteria at marine hydrocarbon seeps by stable isotope probing.利用稳定同位素探测技术鉴定海洋烃渗漏中新型的甲烷、乙烷和丙烷氧化菌。
Appl Environ Microbiol. 2010 Oct;76(19):6412-22. doi: 10.1128/AEM.00271-10. Epub 2010 Jul 30.
10
Diverse styles of submarine venting on the ultraslow spreading Mid-Cayman Rise.中凯克慢速扩张脊不同类型的海底喷口。
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深海热液喷口的宏转录组主要由水柱甲烷营养菌和岩石营养菌组成。

The metatranscriptome of a deep-sea hydrothermal plume is dominated by water column methanotrophs and lithotrophs.

机构信息

Department of Earth and Environmental Sciences, University of Michigan, Ann Arbor, MI 48109-1005, USA.

出版信息

ISME J. 2012 Dec;6(12):2257-68. doi: 10.1038/ismej.2012.63. Epub 2012 Jun 14.

DOI:10.1038/ismej.2012.63
PMID:22695860
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3504965/
Abstract

Microorganisms mediate geochemical processes in deep-sea hydrothermal vent plumes, which are a conduit for transfer of elements and energy from the subsurface to the oceans. Despite this important microbial influence on marine geochemistry, the ecology and activity of microbial communities in hydrothermal plumes is largely unexplored. Here, we use a coordinated metagenomic and metatranscriptomic approach to compare microbial communities in Guaymas Basin hydrothermal plumes to background waters above the plume and in the adjacent Carmen Basin. Despite marked increases in plume total RNA concentrations (3-4 times) and microbially mediated manganese oxidation rates (15-125 times), plume and background metatranscriptomes were dominated by the same groups of methanotrophs and chemolithoautotrophs. Abundant community members of Guaymas Basin seafloor environments (hydrothermal sediments and chimneys) were not prevalent in the plume metatranscriptome. De novo metagenomic assembly was used to reconstruct genomes of abundant populations, including Marine Group I archaea, Methylococcaceae, SAR324 Deltaproteobacteria and SUP05 Gammaproteobacteria. Mapping transcripts to these genomes revealed abundant expression of genes involved in the chemolithotrophic oxidation of ammonia (amo), methane (pmo) and sulfur (sox). Whereas amo and pmo gene transcripts were abundant in both plume and background, transcripts of sox genes for sulfur oxidation from SUP05 groups displayed a 10-20-fold increase in plumes. We conclude that the biogeochemistry of Guaymas Basin hydrothermal plumes is mediated by microorganisms that are derived from seawater rather than from seafloor hydrothermal environments such as chimneys or sediments, and that hydrothermal inputs serve as important electron donors for primary production in the deep Gulf of California.

摘要

微生物在深海热液喷口羽流的地球化学过程中发挥作用,这些羽流是从地下向海洋输送元素和能量的通道。尽管微生物对海洋地球化学有重要影响,但热液羽流中微生物群落的生态学和活性在很大程度上仍未得到探索。在这里,我们使用协调的宏基因组学和宏转录组学方法来比较古马雅盆地热液羽流中的微生物群落与羽流上方和相邻卡门盆地的背景水。尽管羽流总 RNA 浓度(增加了 3-4 倍)和微生物介导的锰氧化速率(增加了 15-125 倍)明显增加,但羽流和背景宏转录组主要由相同的甲烷营养菌和化能自养菌组成。古马雅盆地海底环境(热液沉积物和烟囱)的丰富群落成员在羽流宏转录组中并不普遍。从头组装宏基因组用于重建丰富种群的基因组,包括海洋 I 组古菌、甲基球菌科、SAR324 δ变形菌和 SUP05 γ变形菌。将转录本映射到这些基因组上,揭示了参与氨(amo)、甲烷(pmo)和硫(sox)化能自养氧化的基因的大量表达。虽然 amo 和 pmo 基因转录本在羽流和背景中都很丰富,但 SUP05 组硫氧化 sox 基因的转录本在羽流中增加了 10-20 倍。我们的结论是,古马雅盆地热液羽流的生物地球化学是由源自海水而不是烟囱或沉积物等海底热液环境的微生物介导的,热液输入是加利福尼亚湾深海初级生产的重要电子供体。