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One millimetre makes the difference: high-resolution analysis of methane-oxidizing bacteria and their specific activity at the oxic-anoxic interface in a flooded paddy soil.一毫米之差:淹没稻田土壤好氧-缺氧界面中甲烷氧化菌及其特定活性的高分辨率分析。
ISME J. 2012 Nov;6(11):2128-39. doi: 10.1038/ismej.2012.57. Epub 2012 Jun 14.
2
Quantitative detection of methanotrophs in soil by novel pmoA-targeted real-time PCR assays.通过新型靶向pmoA的实时PCR检测法对土壤中甲烷氧化菌进行定量检测。
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Succession of methanotrophs in oxygen-methane counter-gradients of flooded rice paddies.甲烷营养菌在淹水稻田好氧-甲烷梯度中的演替。
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4
Detection of methanotroph diversity on roots of submerged rice plants by molecular retrieval of pmoA, mmoX, mxaF, and 16S rRNA and ribosomal DNA, including pmoA-based terminal restriction fragment length polymorphism profiling.通过对pmoA、mmoX、mxaF和16S rRNA以及核糖体DNA进行分子检索,包括基于pmoA的末端限制性片段长度多态性分析,检测淹水水稻植株根际甲烷氧化菌的多样性。
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Dry/Wet cycles change the activity and population dynamics of methanotrophs in rice field soil.干湿循环改变稻田土壤中产甲烷菌的活性和种群动态。
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Type-specific quantification of particulate methane monooxygenase gene of methane-oxidizing bacteria at the oxic-anoxic interface of a surface paddy soil by digital PCR.采用数字 PCR 技术定量检测稻田土壤好氧-缺氧界面甲烷氧化菌的种特异性甲烷单加氧酶基因。
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Linking methanotroph phenotypes to genotypes using a simple spatially resolved model ecosystem.利用简单的空间分辨模型生态系统将甲烷营养型表型与基因型联系起来。
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Resilience of aerobic methanotrophs in soils; spotlight on the methane sink under agriculture.土壤好氧甲烷氧化菌的弹性;农业甲烷汇的焦点。
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Interkingdom interaction: the soil isopod Porcellio scaber stimulates the methane-driven bacterial and fungal interaction.跨界相互作用:土壤等足动物鼠妇刺激了甲烷驱动的细菌与真菌的相互作用。
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本文引用的文献

1
Factors affecting competition between type I and type II methanotrophs in two-organism, continuous-flow reactors.影响两种生物连续流反应器中 I 型和 II 型甲烷营养菌竞争的因素。
Microb Ecol. 1993 Jan;25(1):1-17. doi: 10.1007/BF00182126.
2
Grazing affects methanotroph activity and diversity in an alpine meadow soil.放牧会影响高山草甸土壤中的甲烷营养菌活性和多样性。
Environ Microbiol Rep. 2009 Oct;1(5):457-65. doi: 10.1111/j.1758-2229.2009.00078.x. Epub 2009 Sep 23.
3
Spatial heterogeneity of methanotrophs: a geostatistical analysis of pmoA-based T-RFLP patterns in a paddy soil.甲烷营养菌的空间异质性:基于 pmoA 的 T-RFLP 模式在稻田土壤中的地质统计学分析。
Environ Microbiol Rep. 2009 Oct;1(5):393-7. doi: 10.1111/j.1758-2229.2009.00044.x. Epub 2009 Jul 14.
4
Environmental, genomic and taxonomic perspectives on methanotrophic Verrucomicrobia.关于产甲烷菌的环境、基因组和分类学观点。
Environ Microbiol Rep. 2009 Oct;1(5):293-306. doi: 10.1111/j.1758-2229.2009.00022.x. Epub 2009 Mar 3.
5
The global methane cycle: recent advances in understanding the microbial processes involved.全球甲烷循环:对相关微生物过程认识的最新进展。
Environ Microbiol Rep. 2009 Oct;1(5):285-92. doi: 10.1111/j.1758-2229.2009.00038.x. Epub 2009 Jun 10.
6
Methanotrophic bacteria associated to rice roots: the cultivar effect assessed by T-RFLP and microarray analysis.与水稻根系相关的产甲烷菌:通过 T-RFLP 和微阵列分析评估品种效应。
Environ Microbiol Rep. 2011 Oct;3(5):518-25. doi: 10.1111/j.1758-2229.2011.00251.x. Epub 2011 Apr 20.
7
The membrane-associated monooxygenase in the butane-oxidizing Gram-positive bacterium Nocardioides sp. strain CF8 is a novel member of the AMO/PMO family.烷氧化革兰氏阳性菌诺卡氏菌 CF8 中与膜结合的单加氧酶是 AMO/PMO 家族的一个新成员。
Environ Microbiol Rep. 2011 Jun;3(3):390-6. doi: 10.1111/j.1758-2229.2010.00239.x. Epub 2011 Jan 26.
8
Methane source strength and energy flow shape methanotrophic communities in oxygen-methane counter-gradients.甲烷源强度和能量流塑造了氧气-甲烷逆向梯度中的甲烷营养型群落。
Environ Microbiol Rep. 2012 Apr;4(2):203-8. doi: 10.1111/j.1758-2229.2011.00322.x. Epub 2012 Jan 20.
9
Structure and function of methanotrophic communities in a landfill-cover soil.垃圾填埋场覆盖土壤中甲烷营养型群落的结构与功能。
FEMS Microbiol Ecol. 2012 Jul;81(1):52-65. doi: 10.1111/j.1574-6941.2011.01278.x. Epub 2012 Jan 18.
10
Hydrocarbon monooxygenase in Mycobacterium: recombinant expression of a member of the ammonia monooxygenase superfamily.烃单加氧酶在分枝杆菌中的表达:氨单加氧酶超家族成员的重组表达。
ISME J. 2012 Jan;6(1):171-82. doi: 10.1038/ismej.2011.98. Epub 2011 Jul 28.

一毫米之差:淹没稻田土壤好氧-缺氧界面中甲烷氧化菌及其特定活性的高分辨率分析。

One millimetre makes the difference: high-resolution analysis of methane-oxidizing bacteria and their specific activity at the oxic-anoxic interface in a flooded paddy soil.

机构信息

Max Planck Institute for Terrestrial Microbiology, Department of Biogeochemistry, Marburg, Germany.

出版信息

ISME J. 2012 Nov;6(11):2128-39. doi: 10.1038/ismej.2012.57. Epub 2012 Jun 14.

DOI:10.1038/ismej.2012.57
PMID:22695859
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3475382/
Abstract

Aerobic methane-oxidizing bacteria (MOB) use a restricted substrate range, yet >30 species-equivalent operational taxonomical units (OTUs) are found in one paddy soil. How these OTUs physically share their microhabitat is unknown. Here we highly resolved the vertical distribution of MOB and their activity. Using microcosms and cryosectioning, we sub-sampled the top 3-mm of a water-saturated soil at near in situ conditions in 100-μm steps. We assessed the community structure and activity using the particulate methane monooxygenase gene pmoA as a functional and phylogenetic marker by terminal restriction fragment length polymorphism (t-RFLP), a pmoA-specific diagnostic microarray, and cloning and sequencing. pmoA genes and transcripts were quantified using competitive reverse transcriptase PCR combined with t-RFLP. Only a subset of the methanotroph community was active. Oxygen microprofiles showed that 89% of total respiration was confined to a 0.67-mm-thick zone immediately above the oxic-anoxic interface, most probably driven by methane oxidation. In this zone, a Methylobacter-affiliated OTU was highly active with up to 18 pmoA transcripts per cell and seemed to be adapted to oxygen and methane concentrations in the micromolar range. Analysis of transcripts with a pmoA-specific microarray found a Methylosarcina-affiliated OTU associated with the surface zone. High oxygen but only nanomolar methane concentrations at the surface suggested an adaptation of this OTU to oligotrophic conditions. No transcripts of type II methanotrophs (Methylosinus, Methylocystis) were found, which indicated that this group was represented by resting stages only. Hence, different OTUs within a single guild shared the same microenvironment and exploited different niches.

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