系统发育多样性
细菌
微生物
系统发育树
新视野
多样性(政治)
生物
无氧运动
中国
生态学
领域(数学)
系统发育学
进化生物学
环境科学
地理
基因
物理
数学
生理学
社会学
考古
人类学
纯数学
遗传学
航天器
天文
作者
Tamara N. Nazina,N. M. Shestakova,Alexander Grigorʼyan,Е. М. Михайлова,T. P. Tourova,А. Б. Полтараус,Cingxian Feng,Fangtian Ni,S. S. Belyaev
出处
期刊:Microbiology
[Pleiades Publishing]
日期:2006-01-01
卷期号:75 (1): 55-65
被引量:128
标识
DOI:10.1134/s0026261706010115
摘要
The number of microorganisms of major metabolic groups and the rates of sulfate-reducing and methanogenic processes in the formation waters of the high-temperature horizons of Dagang oilfield have been determined. Using cultural methods, it was shown that the microbial community contained aerobic bacteria oxidizing crude oil, anaerobic fermentative bacteria, sulfate-reducing bacteria, and methanogenic bacteria. Using cultural methods, the possibility of methane production from a mixture of hydrogen and carbon dioxide (H2 + CO2) and from acetate was established, and this result was confirmed by radioassays involving NaH14CO3 and 14CH3COONa. Analysis of 16S rDNA of enrichment cultures of methanogens demonstrated that these microorganisms belong to Methanothermobacter sp. (M. thermoautotrophicus), which consumes hydrogen and carbon dioxide as basic substrates. The genes of acetate-utilizing bacteria were not identified. Phylotypes of the representatives of Thermococcus spp. were found among 16S rDNAs of archaea. 16S rRNA genes of bacterial clones belong to the orders Thermoanaerobacteriales (Thermoanaerobacter, Thermovenabulum, Thermacetogenium, and Coprothermobacter spp.), Thermotogales, Nitrospirales (Thermodesulfovibrio sp.) and Planctomycetales. 16S rDNA of a bacterium capable of oxidizing acetate in the course of syntrophic growth with H2-utilizing methanogens was found at high-temperature petroleum reservoirs for the first time. These results provide further insight into the composition of microbial communities of high-temperature petroleum reservoirs, indicating that syntrophic processes play an important part in acetate degradation accompanied by methane production.
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