References
- Standard methods for the Examination of Water and Wastewater(19th Edition) APHA
- J. Mol. Biol. v.215 Basic local alignment search tool Altschul,S.F.;W.Gish;W.Miller;E.W.Myers;D.J.Lipman
- Water Res. v.30 Denitrification behavior in biological excess phosphorus removal activated system Barker,P.S.;P.L.Dold https://doi.org/10.1016/0043-1354(95)00217-0
- Wat. Sci. Tech. v.34 Biological anoxic phosphorous removal-the Dephanox process Bortone,G.;R.Saltarelli;V.Alonso;R.Sorm;J.Wanner;A.Tilcbe
- J. Env. Eng. v.123 Temperature effects on biological phosphorous removal Brdjanovic,D.;M.C.M.van Loodsdrecht;C.M.Hooijmans;G.J.Alaerts;J.J.Heijnen https://doi.org/10.1061/(ASCE)0733-9372(1997)123:2(144)
- Ph.D. thesis. University of Newcastle upon Tyne Computer-assisted classification and identification of actinomycetes Chun,J.
- Appl. Environ. Microbiol. v.65 Thermal gradient gel electrophoresis analysis of bioprotection from pollutant shocks in the activated sludge microbial community Eichner,C.A.;R.W.Erb;K.N.Timmis;I.Wagner-Dobler
- Wat. Sci. Tech. v.47 The competition between PAOs (phosphorous accumulating organisms) and GAOs (glycogen accumulating organisms) in EBPR (enhanced biological phosphorus removal) systems at different temperatures and the effects on system performance Erdal,U.G.;Z.K.Erdal;C.W.Randall
- Appl. Environ. Microbiol. v.66 Flexible community structure correlates with stable community function in methanogenic bioreactor communities perturbed by glucose Fernandez,A.S.;S.A.Hashsham;S.L.Dollhopf;L.Raskin;O.Glagoleva;F.B.Dazzo;R.F.Hickey;C.S.Criddle;J.M.Tiedje https://doi.org/10.1128/AEM.66.9.4058-4067.2000
- Appl. Environ. Microbiol. v.65 How stable is stale? Function versus community composition Fernandez,A.S.;S.Huang;S.Seston;J.Xing;R.Hickey;C.Criddle;J.Tiedje
- Science v.155 Construction of phylogenetic trees: a method based on mutation distances as estimated from cytochrome c sequences is of general applicability Fitch,W.M.;E.Margoliash https://doi.org/10.1126/science.155.3760.279
- Anaerobe v.1 Polyphosphate accumulation among denitrifying bacteria in activated sludge Jorgensen,S.J.;L.P.Pauli https://doi.org/10.1006/anae.1995.1014
- Mammalian protein metabolism Evolution of protein molecules Jukes,T.H.;C.R.Cantor;H.N.Munro(ed.)
- Syst. Zool. v.18 Quantitative phyletics and the evolution of annurans N.Y.Kluge;A.G.;F.S.Farris https://doi.org/10.2307/2412407
- Water Sci. Technol. v.27 Biological phosphorus removal from wastewater by anaerobic-anoxic sequencing batch reactor Kuba,T.;G.Smolders;M.C.M.van Loosdrecht;J.J.Heijnen
- Nucleic acid techniques in bacterial systematics 16S/23S rRNA sequencing Lane,D.J.;E.Stackebrandt(ed.);M.Goodfellow(ed.)
- Appl. Environ. Microbiol. v.62 Estimation of the Abundance of an Unculturable Soil Bacterial strain by a Competitive Quantitative PCR Method Lee,S.Y.;J.B.Bollinger;D.Bezdicek;A.Ogram
- Nucleic Acids Res. v.25 The RDP (Ribosomal Database Project) Maidak,B.L.;G.J.Olsen;N.Larsen;R.Overbeek;M.J.McCaughey;C.R.Woese https://doi.org/10.1093/nar/25.1.109
- Wat. Sci. Tech. v.26 The effects of MCRT and temperature on enhanced biological phosphorous removal Mamais,D.;D.Jenkins
- Environmental Engineering. Proceedings of the 1991 Specialty Conference on Environmental Engineering The effects of temperature and mean cell residence time on enhanced biological phosphorous removal. McClintock,S.;C.W.Randall;V.Pattarkine
- Water Res. v.32 Microbiology and biochemistry of the enhanced biological phosphate removal processes Mino,T.;M.C.M.van Loosdrecht;J.J.Heijnen https://doi.org/10.1016/S0043-1354(98)00129-8
- Appl. Environ. Microbiol. v.59 Profiling of complex microbial populations by denaturing gradient gel electrophoresis analysis of polymerase chain reaction-amplified genes coding for 16S rRNA Muyzer,G.;E.C.Dewaal;A.G.Uitterlinden
- Appl. Environ. Microbiol. v.65 Identification of a novel group of bacteria in sludge from a deteriorated biological phosphorous removal reactor Nielsen,A.T.;W.T.Liu;C.Filipe;L.Grady,Jr.;S.Molin;D.A.Stahl
- J. Microbiol. Biotechnol. v.12 Microbial community analysis of 5-stage biological nutrient removal process with step feed system Park,J.B.;H.W.Lee;S.Y.Lee;J.O.Lee;I.S.Bang;E.S.Choi;D.H.Park;Y.K.Park
- Mol. Biol. Evol. v.4 The neighbor-joining method: A new method for reconstructing phylogenetic trees Saitou,N.;M.Nei
- FEMS Microbiol. Rev. v.27 The microbiology of biological phosphorous removal in activated sludge systems Seviour,R.J.;T.Mono;M.Onuki https://doi.org/10.1016/S0168-6445(03)00021-4
- Wat. Sci. Tech. v.47 Quantitative estimation of the role of denitrifying phosphate accumulating organisms in nutrient removal Shoji,T.;H.Satoch;T.Mino
- Appl. Environ. Microbiol. v.65 Detritus-dependent development of the microbial community in an experimental system: qualitative analysis by denaturing gradient gel electrophoresis Van Hannen,E.J.;W.Mooij;M.P.van Agterveld;H.J.Gons;H.J.Laanbroek
- Water Environ. Res. v.72 Experience with biological nutrient removal at low temperature Ydstebo,L.;T.Bilstad;J.Barnard https://doi.org/10.2175/106143000X137987