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首页> 外文期刊>The Science of the Total Environment >Shifts in soil bacterial and archaeal communities during freeze-thaw cycles in a seasonal frozen marsh, Northeast China
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Shifts in soil bacterial and archaeal communities during freeze-thaw cycles in a seasonal frozen marsh, Northeast China

机译:东北地区季节性冻湿地区冻融循环过程中土壤细菌和古细菌群落的变化

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摘要

Diurnal freeze-thaw cycles (FTCs) occur in the spring and autumn in boreal wetlands as soil temperatures rise above freezing during the day and fall below freezing at night. A surge in methane emissions from these systems is frequently documented during spring FTCs, accounting for a large portion of annual emissions. In boreal wetlands, methane is produced as a result of syntrophic microbial processes, mediated by a consortium of fermenting bacteria and methanogenic archaea. Further research is needed to determine whether FTCs enhance microbial metabolism related to methane production through the cryogenic decomposition of soil organic matter. Previous studies observed large methane emissions during the spring thawed period in the Sanjiang seasonal frozen marsh of Northeast China. To investigate how FTCs impact the soil microbial community and methanogen abundance and activity, we collected soil cores from the Sanjiang marsh during the FTCs of autumn 2014 and spring 2015. Methanogens were investigated based on expression level of the methyl coenzyme reductase (mcrA) gene, and soil bacterial and archaeal community structures were assessed by 16S rRNA gene sequencing. The results show that a decrease in bacteria and methanogens followed autumns FTCs, whereas an increase in bacteria and methanogens was observed following spring FTCs. The bacterial community structure, includingFirmicutesand certainDeltaproteobacteria, was changed following autumn FTCs. Temperature and substrate were the primary factors regulating the abundance and composition of the microbial communities during autumn FTCs, whereas no factors significantly contributing to spring FTCs were identified. Acetoclastic methanogens from orderMethanosarcinaleswere the dominant group at the beginning and end of both the autumn and spring FTCs. Active methanogens were significantly more abundant during the diurnal thawed period, indicating that the increasing number of FTCs predicted to occur with global climate change could potentially promote CH4emissions in seasonal frozen marshes.
机译:春季和秋季,北方湿地发生昼夜冻融循环(FTC),因为白天土壤温度升高至高于冰冻温度,而夜间则低于冰冻温度。这些系统的甲烷排放激增经常在春季FTC期间记录在案,占年排放量的很大一部分。在北方湿地中,甲烷是由营养细菌过程产生的,是由发酵细菌和产甲烷古菌组成的联合体介导的。需要进一步的研究来确定FTC是否通过土壤有机物的低温分解来增强与甲烷产生有关的微生物代谢。先前的研究发现,在中国东北三江季节性冰冻沼泽地区,春季解冻期间甲烷排放量很大。为了研究FTCs如何影响土壤微生物群落以及甲烷菌丰度和活性,我们在2014年秋季和2015年春季的FTCs期间收集了三江沼泽的土壤核心。根据甲基辅酶还原酶(mcrA)基因的表达水平调查了甲烷菌,通过16S rRNA基因测序评估土壤细菌和古细菌群落结构。结果表明,秋季FTC之后细菌和产甲烷菌减少,而春季FTC之后观察到细菌和产甲烷菌增加。秋季FTC之后,细菌群落的结构(包括拟杆菌和某些Deltaproteobacteria)发生了变化。温度和底物是调节秋季FTCs中微生物群落的丰度和组成的主要因素,而没有发现对春季FTC有重大贡献的因素。在秋季和春季FTC的开始和结束时,来自甲烷八叠球菌的乙酰破伤性产甲烷菌占主导地位。在日解冻期,活跃的产甲烷菌明显更为丰富,这表明预计随着全球气候变化而发生的FTC数量的增加可能会促进季节性冷冻沼泽中CH4的排放。

著录项

  • 来源
    《The Science of the Total Environment》 |2018年第1期|782-791|共10页
  • 作者单位

    Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences,University of Chinese Academy of Sciences;

    Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences;

    Department of Environmental Sciences, College of the Coast and Environment, Louisiana State University;

    Key Laboratory of Wetland Ecology and Environment, Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences;

    Key Laboratory of Songliao Aquatic Environment, Ministry of Education, Jilin Jianzhu University;

    Department of Environmental Sciences, College of the Coast and Environment, Louisiana State University;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Freeze-thaw cycles; Methane; Illumina MiSeq; qPCR; 16S rRNA gene; mcrA;

    机译:冻融循环;甲烷;Illumina MiSeq;qPCR;16S rRNA基因;mcrA;

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