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Effect of Temperature on Structure and Function of the Methanogenic Archaeal Community in an Anoxic Rice Field Soil

机译:温度对缺氧稻田土壤甲烷化古生菌群落结构和功能的影响

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摘要

Soil temperatures in Italian rice fields typically range between about 15 and 30°C. A change in the incubation temperature of anoxic methanogenic soil slurry from 30°C to 15°C typically resulted in a decrease in the CH4 production rate, a decrease in the steady-state H2 partial pressure, and a transient accumulation of acetate. Previous experiments have shown that these changes were due to an alteration of the carbon and electron flow in the methanogenic degradation pathway of organic matter caused by the temperature shift (K. J. Chin and R. Conrad, FEMS Microbiol. Ecol. 18:85–102, 1995). To investigate how temperature affects the structure of the methanogenic archaeal community, total DNA was extracted from soil slurries incubated at 30 and 15°C. The archaeal small-subunit (SSU) rRNA-encoding genes (rDNA) of these environmental DNA samples were amplified by PCR with an archaeal-specific primer system and used for the generation of clone libraries. Representative rDNA clones (n = 90) were characterized by terminal restriction fragment length polymorphism (T-RFLP) and sequence analysis. T-RFLP analysis produced for the clones terminally labeled fragments with a characteristic length of mostly 185, 284, or 392 bp. Sequence analysis allowed determination of the phylogenetic affiliation of the individual clones with their characteristic T-RFLP fragment lengths and showed that the archaeal community of the anoxic rice soil slurry was dominated by members of the families Methanosarcinaceae (185 bp) and Methanosaetaceae (284 bp), the kingdom Crenarchaeota (185 or 284 bp), and a novel, deeply branching lineage of the (probably methanogenic) kingdom Euryarchaeota (392 bp) that has recently been detected on rice roots (R. Großkopf, S. Stubner, and W. Liesack, Appl. Environ. Microbiol. 64:4983–4989, 1998). The structure of the archaeal community changed when the temperature was shifted from 30°C to 15°C. Before the temperature shift, the clones (n = 30) retrieved from the community were dominated by Crenarchaeota (70%), “novel Euryarchaeota” (23%), and Methanosarcinacaeae (7%). Further incubation at 30°C (n = 30 clones) resulted in a relative increase in members of the Methanosarcinaceae (77%), whereas further incubation at 15°C (n = 30 clones) resulted in a much more diverse community consisting of 33% Methanosarcinaceae, 23% Crenarchaeota, 20% Methanosaetaceae, and 17% novel Euryarchaeota. The appearance of Methanosaetaceae at 15°C was conspicuous. These results demonstrate that the structure of the archaeal community in anoxic rice field soil changed with time and incubation temperature.
机译:意大利稻田的土壤温度通常在15至30°C之间。将缺氧的产甲烷土壤淤浆的孵化温度从30°C更改为15°C,通常会导致CH4生产率降低,稳态H2分压降低以及乙酸盐的瞬时积累。先前的实验表明,这些变化是由于温度变化引起的有机物产甲烷降解途径中碳和电子流量的变化所致(KJ Chin和R. Conrad,FEMS Microbiol。Ecol。18:85–102, 1995)。为了研究温度如何影响产甲烷的古细菌群落的结构,从在30和15°C下孵育的土壤浆液中提取了总DNA。这些环境DNA样品的古细菌小亚基(SSU)rRNA编码基因(rDNA)通过古细菌特异性引物系统的PCR进行扩增,并用于克隆文库的生成。代表性的rDNA克隆(n = 90)的特征是末端限制性片段长度多态性(T-RFLP)和序列分析。对克隆的T-RFLP分析产生了末端标记的片段,其特征长度大多为185、284或392 bp。序列分析可以确定具有特征性T-RFLP片段长度的单个克隆的系统发生亲缘关系,并表明缺氧水稻土浆液的古细菌群落主要由甲烷藻科(Methanosarcinaceae)(185 bp)和甲烷菌(Methanosaetaceae)(284 bp)组成。 ,Crenarchaeota王国(185或284 bp),以及(可能是产甲烷的)Euryarchaeota王国(392 bp)的一种新的,深分支的谱系,最近在水稻根部(R.Großkopf,S。Stubner和W. Liesack,Appl.Environ.Microbiol.64:4983-4989,1998)。当温度从30°C转变为15°C时,古细菌群落的结构发生了变化。在温度变化之前,从群落中回收的克隆(n = 30)主要由Crenarchaeota(70%),“ novry Euryarchaeota”(23%)和Methanosarcinacaeae(7%)主导。在30°C下进一步温育(n = 30个克隆)导致甲烷八叠球菌成员的相对增加(77%),而在15°C下进一步温育(n = 30个克隆)导致由33个组成的更多样化的群落%的是甲烷菌科,23%的Crenarchaeota,20%的甲烷菌科和17%的小说Euryarchaeota。在15℃下甲烷菌科的外观很明显。这些结果表明缺氧稻田土壤中古细菌群落的结构随时间和孵化温度而变化。

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