Coupling of soil methane emissions at different depths under typical coastal wetland vegetation types.
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Zihao Wang | Qingfeng Chen | Yu Xin | Chenmiao Liu | Xinkun Zhao | Xiaoya Xu | Kun Li | Qingyue Xiang | Linhui Ji | Xiaoyan Shen | Jingyu Sun
[1] Kecheng Zhang,et al. Variations of methane fluxes and methane microbial community composition with soil depth in the riparian buffer zone of a sponge city park. , 2023, Journal of environmental management.
[2] P. Zhao,et al. Urban flood risk differentiation under land use scenario simulation. , 2023, iScience.
[3] P. Barré,et al. Bioenergetic control of soil carbon dynamics across depth , 2022, Nature communications.
[4] Shusheng Zhu,et al. Soil Acidification caused by excessive application of nitrogen fertilizer aggravates soil-borne diseases: Evidence from literature review and field trials , 2022, Agriculture, Ecosystems & Environment.
[5] Kun Li,et al. Soil nitrogen substances and denitrifying communities regulate the anaerobic oxidation of methane in wetlands of Yellow River Delta, China. , 2022, The Science of the total environment.
[6] H. Liu,et al. Exogenous nitrogen from riverine exports promotes soil methane production in saltmarshes in China. , 2022, The Science of the total environment.
[7] Xiaoguang Xu,et al. Tidal variation and litter decomposition co-affect carbon emissions in estuarine wetlands. , 2022, The Science of the total environment.
[8] J. Tollefson. Scientists raise alarm over 'dangerously fast' growth in atmospheric methane. , 2022, Nature.
[9] Jiang Li,et al. Non-syntrophic methanogenic hydrocarbon degradation by an archaeal species , 2021, Nature.
[10] Weixiang Wu,et al. Elevation of NO3--N from biochar amendment facilitates mitigating paddy CH4 emission stably over seven years. , 2021, Environmental pollution.
[11] Kerou Zhang,et al. Soil salinity and nutrients availability drive patterns in bacterial community and diversity along succession gradient in the Yellow River Delta , 2021, Estuarine, Coastal and Shelf Science.
[12] Meng Li,et al. Metatranscriptomics reveals different features of methanogenic archaea among global vegetated coastal ecosystems. , 2021, The Science of the total environment.
[13] Yuanhe Yang,et al. Methanogenic Community, CH4 Production Potential and Its Determinants in the Active Layer and Permafrost Deposits on the Tibetan Plateau. , 2021, Environmental science & technology.
[14] Qingfeng Chen,et al. Influence of plants and environmental variables on the diversity of soil microbial communities in the Yellow River Delta Wetland, China. , 2021, Chemosphere.
[15] Hongbing Luo,et al. The role and related microbial processes of Mn-dependent anaerobic methane oxidation in reducing methane emissions from constructed wetland-microbial fuel cell. , 2021, Journal of environmental management.
[16] 12,et al. Overriding water table control on managed peatland greenhouse gas emissions , 2021, Nature.
[17] Jian Zhang,et al. Exploring simultaneous nitrous oxide and methane sink in wetland sediments under anoxic conditions. , 2021, Water research.
[18] R. Delaune,et al. Peripheral freshwater deltaic wetlands are hotspots of methane flux in the coastal zone. , 2021, The Science of the total environment.
[19] K. Müller,et al. Interactions between methanotrophs and ammonia oxidizers modulate the response of in situ methane emissions to simulated climate change and its legacy in an acidic soil. , 2021, The Science of the total environment.
[20] B. Singh,et al. NosZ clade II rather than clade I determine in situ N2O emissions with different fertilizer types under simulated climate change and its legacy , 2020 .
[21] Fozia,et al. Anaerobic ammonium oxidation (anammox) bacterial diversity, abundance, and activity in sediments of the Indus Estuary , 2020 .
[22] X. Zhuang,et al. Niche differentiation of denitrifying anaerobic methane oxidizing bacteria and archaea leads to effective methane filtration in a Tibetan alpine wetland. , 2020, Environment international.
[23] Guocheng Wang,et al. Accuracy analysis in CH4MODwetland in the simulation of CH4 emissions from Chinese wetlands , 2020 .
[24] L. Yao,et al. Environmental factors and microbial diversity and abundance jointly regulate soil nitrogen and carbon biogeochemical processes in Tibetan wetlands. , 2020, Environmental science & technology.
[25] R. Fulweiler,et al. A synthesis of methane emissions from shallow vegetated coastal ecosystems , 2020, Global change biology.
[26] Yong-guan Zhu,et al. Rare microbial taxa as the major drivers of ecosystem multifunctionality in long-term fertilized soils , 2020, Soil Biology and Biochemistry.
[27] Jianwu Tang,et al. Enhanced Carbon Uptake and Reduced Methane Emissions in a Newly Restored Wetland , 2020, Journal of Geophysical Research: Biogeosciences.
[28] C. Hopkinson,et al. Global-change controls on soil-carbon accumulation and loss in coastal vegetated ecosystems , 2019, Nature Geoscience.
[29] Fengping Wang,et al. Methane biotransformation in the ocean and its effects on climate change: A review , 2018, Science China Earth Sciences.
[30] S. Yarwood,et al. The role of wetland microorganisms in plant-litter decomposition and soil organic matter formation: a critical review. , 2018, FEMS microbiology ecology.
[31] Beibei Guo,et al. Characteristics of CH4 and CO2 emissions and influence of water and salinity in the Yellow River delta wetland, China. , 2018, Environmental pollution.
[32] G. Tyson,et al. A methanotrophic archaeon couples anaerobic oxidation of methane to Fe(III) reduction , 2018, The ISME Journal.
[33] Quan-fa Zhang,et al. Edaphic Conditions Regulate Denitrification Directly and Indirectly by Altering Denitrifier Abundance in Wetlands along the Han River, China. , 2017, Environmental science & technology.
[34] Y. Kamagata,et al. Methane production from coal by a single methanogen , 2016, Science.
[35] R. Zeng,et al. New primers for detecting and quantifying denitrifying anaerobic methane oxidation archaea in different ecological niches , 2015, Applied Microbiology and Biotechnology.
[36] C. Kuske,et al. Soil microbial responses to nitrogen addition in arid ecosystems , 2015, Front. Microbiol..
[37] S. Joye,et al. High rates of anaerobic methane oxidation in freshwater wetlands reduce potential atmospheric methane emissions , 2015, Nature Communications.
[38] Y. Wang,et al. Abundance and diversity of methanogens: potential role in high arsenic groundwater in Hetao Plain of Inner Mongolia, China. , 2015, The Science of the total environment.
[39] A. Wagner,et al. Effects of fertilisation, temperature and water content on microbial properties and methane production and methane oxidation in subalpine soils , 2014 .
[40] Peter Bergamaschi,et al. Three decades of global methane sources and sinks , 2013 .
[41] S. Joye,et al. Impact of electron acceptor availability on the anaerobic oxidation of methane in coastal freshwater and brackish wetland sediments , 2013 .
[42] C. Ruggiero,et al. A new integrated treatment for the reduction of organic and nitrogen loads in methanogenic landfill leachates , 2013 .
[43] Xiaoxin Sun,et al. Seasonal and spatial variations of methane emissions from montane wetlands in Northeast China , 2011 .
[44] Ming L. Wu,et al. Nitrite-driven anaerobic methane oxidation by oxygenic bacteria , 2010, Nature.
[45] R. Greene,et al. Soil carbon dynamics in saline and sodic soils: a review , 2010 .
[46] V. Orphan,et al. Manganese- and Iron-Dependent Marine Methane Oxidation , 2009, Science.
[47] C. Dambreville,et al. Disentangling the rhizosphere effect on nitrate reducers and denitrifiers: insight into the role of root exudates. , 2008, Environmental microbiology.
[48] Anne-Kristin Kaster,et al. Methanogenic archaea: ecologically relevant differences in energy conservation , 2008, Nature Reviews Microbiology.
[49] W. Whitman,et al. Metabolic, Phylogenetic, and Ecological Diversity of the Methanogenic Archaea , 2008, Annals of the New York Academy of Sciences.
[50] Zhanfei Liu,et al. The role of organic matter in the sorption capacity of marine sediments , 2007 .
[51] B. Borremans,et al. DsrB gene-based DGGE for community and diversity surveys of sulfate-reducing bacteria. , 2006, Journal of microbiological methods.
[52] J. Beman,et al. Ubiquity and diversity of ammonia-oxidizing archaea in water columns and sediments of the ocean. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[53] Sara Hallin,et al. Reassessing PCR primers targeting nirS, nirK and nosZ genes for community surveys of denitrifying bacteria with DGGE. , 2004, FEMS microbiology ecology.
[54] E. Delong,et al. Growth and Methane Oxidation Rates of Anaerobic Methanotrophic Archaea in a Continuous-Flow Bioreactor , 2003, Applied and Environmental Microbiology.
[55] J. Germon,et al. Molecular Analysis of the Nitrate-Reducing Community from Unplanted and Maize-Planted Soils , 2002, Applied and Environmental Microbiology.
[56] M. Šimek,et al. The influence of soil pH on denitrification: progress towards the understanding of this interaction over the last 50 years , 2002 .
[57] G. Lamberti,et al. Factors regulating nitrification in aquatic sediments: effects of organic carbon, nitrogen availability, and pH , 2002 .
[58] Olaf Pfannkuche,et al. A marine microbial consortium apparently mediating anaerobic oxidation of methane , 2000, Nature.
[59] P. Martikainen,et al. Methane production and oxidation potentials in relation to water table fluctuations in two boreal mires , 1999 .
[60] Sara Hallin,et al. PCR Detection of Genes Encoding Nitrite Reductase in Denitrifying Bacteria , 1999, Applied and Environmental Microbiology.
[61] R. Conrad,et al. Intermediary metabolism in methanogenic paddy soil and the influence of temperature , 1995 .
[62] M. Andreae,et al. Methane in the Baltic and North Seas and a Reassessment of the Marine Emissions of Methane , 1994 .
[63] M. Nilsson,et al. Depth distribution of microbial production and oxidation of methane in northern boreal peatlands , 1994, Microbial Ecology.
[64] Ronald S. Oremland,et al. Methanogenesis and Sulfate Reduction: Competitive and Noncompetitive Substrates in Estuarine Sediments , 1982 .
[65] C. Craft,et al. Wetland Soils: Physical and Chemical Properties and Biogeochemical Processes , 2021, Reference Module in Earth Systems and Environmental Sciences.
[66] Hanqing Yu,et al. Regulation of coastal methane sinks by a structured gradient of microbial methane oxidizers. , 2019, Environmental pollution.
[67] K. Nauhaus,et al. Environmental regulation of the anaerobic oxidation of methane: a comparison of ANME-I and ANME-II communities. , 2005, Environmental microbiology.
[68] R. Delaune,et al. Soil Redox and pH Effects on Methane Production in a Flooded Rice Soil , 1993 .