Metagenomics analysis of ecosystem integrating methane and sulfide generation in urban sewer systems
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Xiaochang C. Wang | P. Jin | Bo Ren | Xin Jin | Xuan Shi | Wei Liu | Yuxuan Hou | Dongwei Xu | Dongwei Xu
[1] Xiaochang C. Wang,et al. Mechanism of microbial metabolic responses and ecological system conversion under different nitrogen conditions in sewers. , 2020, Water research.
[2] Xiaochang C. Wang,et al. Symbiosis of sulfate-reducing bacteria and methanogenic archaea in sewer systems. , 2020, Environment international.
[3] Hainan Ai,et al. A conceptual method to simultaneously inhibit methane and hydrogen sulfide production in sewers: The carbon metabolic pathway and microbial community shift. , 2019, Journal of environmental management.
[4] F. Jiang,et al. Different ferric dosing strategies could result in different control mechanisms of sulfide and methane production in sediments of gravity sewers. , 2019, Water research.
[5] Jianhua Guo,et al. Elucidating functional microorganisms and metabolic mechanisms in a novel engineered ecosystem integrating C, N, P and S biotransformation by metagenomics. , 2019, Water research.
[6] G. A. Grant. D-3-Phosphoglycerate Dehydrogenase , 2018, Front. Mol. Biosci..
[7] Xiaochang C. Wang,et al. Pollutant exchange between sewage and sediment in urban sewer systems , 2018, Chemical Engineering Journal.
[8] Yiqi Liu,et al. Improved sulfide mitigation in sewers through on-line control of ferrous salt dosing. , 2018, Water research.
[9] Zhiguo Yuan,et al. Modelling the long-term effect of wastewater compositions on maximum sulfide and methane production rates of sewer biofilm. , 2018, Water research.
[10] Xiaochang C. Wang,et al. Co-Variation between Distribution of Microbial Communities and Biological Metabolization of Organics in Urban Sewer Systems. , 2018, Environmental science & technology.
[11] Minoru Kanehisa,et al. KEGG: new perspectives on genomes, pathways, diseases and drugs , 2016, Nucleic Acids Res..
[12] Bin Wang,et al. Characterization of microflora and transformation of organic matters in urban sewer system. , 2015, Water research.
[13] Zhiguo Yuan,et al. Effects of nitrate dosing on sulfidogenic and methanogenic activities in sewer sediment. , 2015, Water research.
[14] Zhiguo Yuan,et al. Dosing free nitrous acid for sulfide control in sewers: results of field trials in Australia. , 2013, Water research.
[15] Niels W. Hanson,et al. MetaPathways: a modular pipeline for constructing pathway/genome databases from environmental sequence information , 2013, BMC Bioinformatics.
[16] Jurg Keller,et al. Optimization of intermittent, simultaneous dosage of nitrite and hydrochloric acid to control sulfide and methane productions in sewers. , 2011, Water research.
[17] Oriol Gutierrez,et al. Effects of nitrite concentration and exposure time on sulfide and methane production in sewer systems. , 2010, Water research.
[18] Bernhard Jaun,et al. The key nickel enzyme of methanogenesis catalyses the anaerobic oxidation of methane , 2010, Nature.
[19] Miriam L. Land,et al. Trace: Tennessee Research and Creative Exchange Prodigal: Prokaryotic Gene Recognition and Translation Initiation Site Identification Recommended Citation Prodigal: Prokaryotic Gene Recognition and Translation Initiation Site Identification , 2022 .
[20] Jurg Keller,et al. Development of a model for assessing methane formation in rising main sewers. , 2009, Water research.
[21] Xiong Zheng,et al. Enhancement of waste activated sludge protein conversion and volatile fatty acids accumulation during waste activated sludge anaerobic fermentation by carbohydrate substrate addition: the effect of pH. , 2009, Environmental science & technology.
[22] Oriol Gutierrez,et al. Effects of long-term pH elevation on the sulfate-reducing and methanogenic activities of anaerobic sewer biofilms. , 2009, Water research.
[23] Jean-Michel Claverie,et al. Phylogeny.fr: robust phylogenetic analysis for the non-specialist , 2008, Nucleic Acids Res..
[24] S. Khanal,et al. Effect of High Influent Sulfate on Anaerobic Wastewater Treatment , 2005, Water environment research : a research publication of the Water Environment Federation.
[25] W. Metcalf,et al. Loss of the mtr operon in Methanosarcina blocks growth on methanol, but not methanogenesis, and reveals an unknown methanogenic pathway. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[26] Sanghamitra Dey,et al. Crystal Structure of Mycobacterium tuberculosis D-3-Phosphoglycerate Dehydrogenase , 2005, Journal of Biological Chemistry.
[27] K. Shanmugam,et al. Pyruvate Formate Lyase and Acetate Kinase Are Essential for Anaerobic Growth of Escherichia coli on Xylose , 2004, Journal of bacteriology.
[28] Guang-hao Chen,et al. Biofilm in the sediment phase of a sanitary gravity sewer. , 2003, Water research.
[29] Hiroyuki Ogata,et al. KEGG: Kyoto Encyclopedia of Genes and Genomes , 1999, Nucleic Acids Res..
[30] A. Gruez,et al. The FNR-like domain of the Escherichia coli sulfite reductase flavoprotein component: crystallization and preliminary X-ray analysis. , 1998, Acta Crystallographica Section D: Biological Crystallography.
[31] F. Rébeillé,et al. Interaction between glycine decarboxylase, serine hydroxymethyltransferase and tetrahydrofolate polyglutamates in pea leaf mitochondria. , 1994, The Biochemical journal.
[32] H. Harada,et al. Interaction between sulfate-reducing bacteria and methane-producing bacteria in UASB reactors fed with low strength wastes containing different levels of sulfate , 1994 .