Flow cytometric bacterial cell counts challenge conventional heterotrophic plate counts for routine microbiological drinking water monitoring.
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J S Vrouwenvelder | N Boon | N. Boon | E. Prest | J. Vrouwenvelder | S. Van Nevel | S. Koetzsch | F. Hammes | A. Knezev | C. Proctor | M. Besmer | S Van Nevel | S Koetzsch | C R Proctor | M D Besmer | E I Prest | A Knezev | F Hammes
[1] J. Crawford,et al. Siderophores from neighboring organisms promote the growth of uncultured bacteria. , 2010, Chemistry & biology.
[2] P Monfort,et al. Comparison of flow cytometry and epifluorescence microscopy for counting bacteria in aquatic ecosystems. , 1992, Cytometry.
[3] J. Oliver,et al. Recent findings on the viable but nonculturable state in pathogenic bacteria. , 2010, FEMS microbiology reviews.
[4] K. Lewis,et al. Uncultured microorganisms as a source of secondary metabolites , 2010, The Journal of Antibiotics.
[5] U. Ijaz,et al. Emerging investigators series: microbial communities in full-scale drinking water distribution systems – a meta-analysis , 2016 .
[6] A. Nocker,et al. Molecular monitoring of disinfection efficacy using propidium monoazide in combination with quantitative PCR. , 2007, Journal of microbiological methods.
[7] D. Karl,et al. Cellular nucleotide measurements and applications in microbial ecology. , 1980, Microbiological reviews.
[8] Yingying Wang,et al. Overnight stagnation of drinking water in household taps induces microbial growth and changes in community composition. , 2010, Water research.
[9] M Zeder,et al. Multispot live‐image autofocusing for high‐throughput microscopy of fluorescently stained bacteria , 2009, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[10] D. Reasoner. Heterotrophic plate count methodology in the United States. , 2004, International journal of food microbiology.
[11] J. Bailey,et al. Characterization of bacterial growth by means of flow microfluorometry. , 1977, Science.
[12] P. Lebaron,et al. Comparison of Blue Nucleic Acid Dyes for Flow Cytometric Enumeration of Bacteria in Aquatic Systems , 1998, Applied and Environmental Microbiology.
[13] Frederik Hammes,et al. A pipeline for developing and testing staining protocols for flow cytometry, demonstrated with SYBR Green I and propidium iodide viability staining. , 2016, Journal of microbiological methods.
[14] F. Rosario‐Ortiz,et al. Using digital flow cytometry to assess the degradation of three cyanobacteria species after oxidation processes. , 2013, Water research.
[15] M. V. van Loosdrecht,et al. Long-Term Bacterial Dynamics in a Full-Scale Drinking Water Distribution System , 2016, PloS one.
[16] O. Holm‐Hansen,et al. THE MEASUREMENT OF ADENOSINE TRIPHOSPHATE IN THE OCEAN AND ITS ECOLOGICAL SIGNIFICANCE1 , 1966 .
[17] C. Saint,et al. Profiling bacterial survival through a water treatment process and subsequent distribution system , 2005, Journal of applied microbiology.
[18] Yingying Wang,et al. The impact of industrial-scale cartridge filtration on the native microbial communities from groundwater. , 2008, Water research.
[19] Xiaomei Yan,et al. Rapid, absolute, and simultaneous quantification of specific pathogenic strain and total bacterial cells using an ultrasensitive dual-color flow cytometer. , 2010, Analytical chemistry.
[20] C. Courties,et al. Recent applications of flow cytometry in aquatic microbial ecology , 1993, Biology of the cell.
[21] M. Sinreich,et al. Microbiological monitoring and classification of karst springs , 2013, Environmental Earth Sciences.
[22] O. Köster,et al. Flow-cytometric total bacterial cell counts as a descriptive microbiological parameter for drinking water treatment processes. , 2008, Water research.
[23] Nico Boon,et al. Routine bacterial analysis with automated flow cytometry. , 2013, Journal of microbiological methods.
[24] A. Farnleitner,et al. Heterotrophic plate count vs. in situ bacterial 16S rRNA gene amplicon profiles from drinking water reveal completely different communities with distinct spatial and temporal allocations in a distribution net. , 2009 .
[25] I. Lake,et al. Microbiological surveillance of private water supplies in England: the impact of environmental and climate factors on water quality. , 2009, Water research.
[26] Frederik Hammes,et al. Cytometric methods for measuring bacteria in water: advantages, pitfalls and applications , 2010, Analytical and bioanalytical chemistry.
[27] Nico Boon,et al. A microbiology-based multi-parametric approach towards assessing biological stability in drinking water distribution networks. , 2013, Water research.
[28] P Foladori,et al. Direct quantification of bacterial biomass in influent, effluent and activated sludge of wastewater treatment plants by using flow cytometry. , 2010, Water research.
[29] Valerie L. Ng,et al. Practical Flow Cytometry, 4th Edition , 2004 .
[30] Howard M. Shapiro,et al. Practical Flow Cytometry , 1985 .
[31] M. Keller,et al. Capturing the uncultivated majority. , 2006, Current opinion in biotechnology.
[32] K. Helmi,et al. Methods for microbiological quality assessment in drinking water: a comparative study. , 2015, Journal of water and health.
[33] Karen De Roy,et al. Bacterial invasion potential in water is determined by nutrient availability and the indigenous community. , 2013, FEMS microbiology ecology.
[34] Bernhard Sonnleitner,et al. Development and laboratory‐scale testing of a fully automated online flow cytometer for drinking water analysis , 2012, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[35] Rehan Sadiq,et al. Modeling of heterotrophic bacteria counts in a water distribution system. , 2009, Water research.
[36] A. E. Greenberg,et al. Standard methods for the examination of water and wastewater : supplement to the sixteenth edition , 1988 .
[37] Frederik Hammes,et al. Bacterial growth in batch-operated membrane filtration systems for drinking water treatment , 2015 .
[38] D. Grasso,et al. Flow cytometry. , 1998, Methods in molecular medicine.
[39] H. Leclerc,et al. Relationships between common water bacteria and pathogens in drinking-water , 2003 .
[40] A. Magic-Knezev,et al. Optimisation and significance of ATP analysis for measuring active biomass in granular activated carbon filters used in water treatment. , 2004, Water research.
[41] José Luis Cortina,et al. On-line bacteriological detection in water , 2013 .
[42] O. Köster,et al. Development of biomass in a drinking water granular active carbon (GAC) filter. , 2011, Water research.
[43] Willy Verstraete,et al. Past, present and future applications of flow cytometry in aquatic microbiology. , 2010, Trends in biotechnology.
[44] T. Egli,et al. Rapid, cultivation-independent assessment of microbial viability in drinking water. , 2008, Water research.
[45] W. Hijnen,et al. Inactivation credit of UV radiation for viruses, bacteria and protozoan (oo)cysts in water: a review. , 2006, Water research.
[46] J. Lisle,et al. The use of multiple indices of physiological activity to access viability in chlorine disinfected Escherichia coli O157:H7 , 1999, Letters in applied microbiology.
[47] Shakhawat Chowdhury,et al. Heterotrophic bacteria in drinking water distribution system: a review , 2012, Environmental Monitoring and Assessment.
[48] Greg Finak,et al. Critical assessment of automated flow cytometry data analysis techniques , 2013, Nature Methods.
[49] Grace C. Frankland,et al. Micro-Organisms in Water: Their Significance, Identification, and Removal , 1894, Edinburgh Medical Journal.
[50] Paul Weir,et al. Assessing microbiological water quality in drinking water distribution systems with disinfectant residual using flow cytometry. , 2014, Water research.
[51] Dick van der Kooij,et al. Effect of water composition, distance and season on the adenosine triphosphate concentration in unchlorinated drinking water in the Netherlands. , 2010 .
[52] S. Giovannoni,et al. Cultivation of the ubiquitous SAR11 marine bacterioplankton clade , 2002, Nature.
[53] K. Lewis,et al. Isolating "Uncultivable" Microorganisms in Pure Culture in a Simulated Natural Environment , 2002, Science.
[54] L. Legendre,et al. Overview of flow cytometry and image analysis in biological oceanography and limnology. , 1989, Cytometry.
[55] Jannis Epting,et al. Online flow cytometry reveals microbial dynamics influenced by concurrent natural and operational events in groundwater used for drinking water treatment , 2016, Scientific Reports.
[56] S. Sørensen,et al. A low-cost, multiplexable, automated flow cytometry procedure for the characterization of microbial stress dynamics in bioreactors , 2013, Microbial Cell Factories.
[57] Frederik Hammes,et al. Flow cytometry and adenosine tri-phosphate analysis: alternative possibilities to evaluate major bacteriological changes in drinking water treatment and distribution systems. , 2012, Water research.
[58] Gang Wen,et al. Using coagulation to restrict microbial re-growth in tap water by phosphate limitation in water treatment. , 2014, Journal of hazardous materials.
[59] W. Waegeman,et al. Absolute quantification of microbial taxon abundances , 2016, The ISME Journal.
[60] M. V. van Loosdrecht,et al. Biological Stability of Drinking Water: Controlling Factors, Methods, and Challenges , 2016, Front. Microbiol..
[61] T. Egli,et al. Evaluating the Growth Potential of Pathogenic Bacteria in Water , 2010, Applied and Environmental Microbiology.
[62] A. Magic-Knezev,et al. Quantification and identification of particle-associated bacteria in unchlorinated drinking water from three treatment plants by cultivation-independent methods. , 2013, Water research.
[63] T. Egli,et al. New method for assimilable organic carbon determination using flow-cytometric enumeration and a natural microbial consortium as inoculum. , 2005, Environmental science & technology.
[64] A K Camper,et al. Bacteria associated with granular activated carbon particles in drinking water , 1986, Applied and environmental microbiology.
[65] R. Koch. Zur Untersuchung von pathogenen Organismen , 2010 .
[66] A. Farnleitner,et al. Eubacterial 16S-rDNA amplicon profiling: a rapid technique for comparison and differentiation of heterotrophic plate count communities from drinking water. , 2004, International journal of food microbiology.
[67] O. Köster,et al. Abundance and composition of indigenous bacterial communities in a multi-step biofiltration-based drinking water treatment plant. , 2014, Water research.
[68] P. W. van der Wielen,et al. Effect of water composition, distance and season on the adenosine triphosphate concentration in unchlorinated drinking water in the Netherlands. , 2010, Water research.
[69] D. Kell,et al. Viability and activity in readily culturable bacteria: a review and discussion of the practical issues , 1998, Antonie van Leeuwenhoek.
[70] T. Egli,et al. Growth of Vibrio cholerae O1 Ogawa Eltor in freshwater. , 2007, Microbiology.
[71] J. Vrouwenvelder,et al. Elucidation and control of biofilm formation processes in water treatment and distribution using the Unified Biofilm Approach. , 2003, Water science and technology : a journal of the International Association on Water Pollution Research.
[72] J. Oliver. The viable but nonculturable state in bacteria. , 2005, Journal of microbiology.
[73] P. Janssen,et al. Detection and Cultivation of Soil Verrucomicrobia , 2005, Applied and Environmental Microbiology.
[74] M C M van Loosdrecht,et al. Quantitative biofouling diagnosis in full scale nanofiltration and reverse osmosis installations. , 2008, Water research.
[75] P. Grimont,et al. Are UV-induced nonculturable Escherichia coli K-12 cells alive or dead? , 2003, European journal of biochemistry.
[76] Frederik Hammes,et al. Behavior and stability of adenosine triphosphate (ATP) during chlorine disinfection. , 2016, Water research.
[77] Jamie Bartram,et al. Heterotrophic Plate Counts and Drinking-water Safety: The Significance of HPCs for Water Quality and Human Health , 2003 .
[78] J. Block,et al. Nucleic acid fluorochromes and flow cytometry prove useful in assessing the effect of chlorination on drinking water bacteria. , 2005, Water research.
[79] L. Kahlisch,et al. Assessing the Viability of Bacterial Species in Drinking Water by Combined Cellular and Molecular Analyses , 2012, Microbial Ecology.
[80] H. Winterberg. Zur Methodik der Bakterienzählung , 1898, Zeitschrift für Hygiene und Infektionskrankheiten.
[81] J. Bartram ... et al.,et al. Heterotrophic plate counts and drinking-water safety , 2013 .
[82] E. Geldreich,et al. A new medium for the enumeration and subculture of bacteria from potable water , 1985, Applied and environmental microbiology.
[83] F. Hammes,et al. Drinking water microbiology--from measurement to management. , 2015, Current opinion in biotechnology.
[84] M C M van Loosdrecht,et al. Monitoring microbiological changes in drinking water systems using a fast and reproducible flow cytometric method. , 2013, Water research.
[85] Ameet J Pinto,et al. Bacterial community structure in the drinking water microbiome is governed by filtration processes. , 2012, Environmental science & technology.
[86] David P Sartory,et al. Heterotrophic plate count monitoring of treated drinking water in the UK: a useful operational tool. , 2004, International journal of food microbiology.
[87] Lutgarde Raskin,et al. Microbial ecology of drinking water distribution systems. , 2006, Current opinion in biotechnology.
[88] G. Andersen,et al. Evaluation of Methods for the Extraction of DNA from Drinking Water Distribution System Biofilms , 2011, Microbes and environments.
[89] A. Sessitsch,et al. Effect of different heterotrophic plate count methods on the estimation of the composition of the culturable microbial community , 2015, PeerJ.
[90] S. Edberg,et al. Heterotrophic plate count bacteria--what is their significance in drinking water? , 2004, International journal of food microbiology.
[91] L. Kahlisch,et al. Molecular analysis of the bacterial drinking water community with respect to live/dead status. , 2010, Water science and technology : a journal of the International Association on Water Pollution Research.
[92] W. Uhl,et al. Establishment of HPC(R2A) for regrowth control in non-chlorinated distribution systems. , 2004, International journal of food microbiology.
[93] Neil Hunter,et al. Determination of bacterial load by real-time PCR using a broad-range (universal) probe and primers set. , 2002, Microbiology.
[94] T. Egli,et al. Cultivation-independent assessment of bacterial viability. , 2011, Advances in biochemical engineering/biotechnology.
[95] Paul Monis,et al. Comparison of drinking water treatment process streams for optimal bacteriological water quality. , 2012, Water research.
[96] M. V. van Loosdrecht,et al. Combining flow cytometry and 16S rRNA gene pyrosequencing: a promising approach for drinking water monitoring and characterization. , 2014, Water research.
[97] Yingying Wang,et al. Flow cytometry for fast microbial community fingerprinting. , 2012, Water research.
[98] Fabien Thomas,et al. Influence of phosphate on bacterial adhesion onto iron oxyhydroxide in drinking water. , 2002, Environmental science & technology.
[99] M. Wagner,et al. Microbial diversity and the genetic nature of microbial species , 2008, Nature Reviews Microbiology.
[100] David L. Sedlak,et al. Water 4.0 : the past, present, and future of the world's most vital resource , 2014 .
[101] C. Biggs,et al. Methodological approaches for studying the microbial ecology of drinking water distribution systems. , 2014, Water research.
[102] Yingying Wang,et al. Measurement and interpretation of microbial adenosine tri-phosphate (ATP) in aquatic environments. , 2010, Water research.
[103] G. Bogosian,et al. A matter of bacterial life and death , 2001, EMBO reports.
[104] T. Egli,et al. Correlations between total cell concentration, total adenosine tri-phosphate concentration and heterotrophic plate counts during microbial monitoring of drinking water , 2008 .
[105] Lutgarde Raskin,et al. Spatial-Temporal Survey and Occupancy-Abundance Modeling To Predict Bacterial Community Dynamics in the Drinking Water Microbiome , 2014, mBio.
[106] Paul Turner,et al. Reagent and laboratory contamination can critically impact sequence-based microbiome analyses , 2014, BMC Biology.
[107] Uwe Schröder,et al. Cytometric fingerprints: evaluation of new tools for analyzing microbial community dynamics , 2014, Front. Microbiol..
[108] T. Egli,et al. Isolation and characterization of low nucleic acid (LNA)-content bacteria , 2009, The ISME Journal.
[109] J. Q. J. C. Verberk,et al. Flow Cytometry Total Cell Counts: A Field Study Assessing Microbiological Water Quality and Growth in Unchlorinated Drinking Water Distribution Systems , 2013, BioMed research international.
[110] M. Gessner,et al. Comparison of detachment procedures for direct counts of bacteria associated with sediment particles, plant litter and epiphytic biofilms , 2002 .
[111] Andreas Baumgartner,et al. Rapid detection of total and viable Legionella pneumophila in tap water by immunomagnetic separation, double fluorescent staining and flow cytometry , 2012, Microbial biotechnology.
[112] Karim Helmi,et al. Monitoring of three drinking water treatment plants using flow cytometry , 2014 .
[113] M. Lechevallier,et al. Enumeration and characterization of standard plate count bacteria in chlorinated and raw water supplies , 1980, Applied and environmental microbiology.
[114] Frederik Hammes,et al. Short-term microbial dynamics in a drinking water plant treating groundwater with occasional high microbial loads. , 2016, Water research.
[115] Frederik Hammes,et al. Microbiological tap water profile of a medium-sized building and effect of water stagnation , 2014, Environmental technology.
[116] Donald J. Reasoner,et al. Monitoring Heterotrophic Bacteria in Potable Water , 1990 .
[117] Frederik Hammes,et al. Biological Instability in a Chlorinated Drinking Water Distribution Network , 2014, PloS one.
[118] C. Gerba,et al. Tracking the concentration of heterotrophic plate count bacteria from the source to the consumer's tap. , 2004, Journal of food microbiology.
[119] A K Camper,et al. Disinfection of bacteria attached to granular activated carbon , 1984, Applied and environmental microbiology.
[120] Brian C. Thomas,et al. A new view of the tree of life , 2016, Nature Microbiology.
[121] I. Miettinen,et al. Selection of NF membrane to improve quality of chemically treated surface water. , 2003, Water research.
[122] Yingying Wang,et al. Rapid quantification of bacteria and viruses in influent, settled water, activated sludge and effluent from a wastewater treatment plant using flow cytometry. , 2013, Water science and technology : a journal of the International Association on Water Pollution Research.
[123] Stefano Papa,et al. Determination of the Viability of Aeromonas hydrophila in Different Types of Water by Flow Cytometry, and Comparison with Classical Methods , 2005, Applied and Environmental Microbiology.
[124] Daniel Hoefel,et al. Enumeration of water-borne bacteria using viability assays and flow cytometry: a comparison to culture-based techniques. , 2003, Journal of microbiological methods.
[125] David G. Weissbrodt,et al. The feasibility of automated online flow cytometry for in-situ monitoring of microbial dynamics in aquatic ecosystems , 2014, Front. Microbiol..
[126] S. Epstein,et al. The phenomenon of microbial uncultivability. , 2013, Current opinion in microbiology.
[127] Nico Boon,et al. Flow cytometric examination of bacterial growth in a local drinking water network , 2016 .
[128] D. Washington,et al. Standard Methods for the Examination of Water and Wastewater , 1971 .
[129] W. Verstraete,et al. Transparent exopolymer particle removal in different drinking water production centers. , 2012, Water research.
[130] 三原 忠紘,et al. てんかん治療の Expert Consensus , 2004 .
[131] Christopher P. Saint,et al. Culture-Independent Techniques for Rapid Detection of Bacteria Associated with Loss of Chloramine Residual in a Drinking Water System , 2005, Applied and Environmental Microbiology.
[132] A. Paau,et al. Flow-microfluorometric analysis of Escherichia coli, Rhizobium meliloti, and Rhizobium japonicum at different stages of the growth cycle. , 1977, Canadian journal of microbiology.
[133] J. T. Staley,et al. Measurement of in situ activities of nonphotosynthetic microorganisms in aquatic and terrestrial habitats. , 1985, Annual review of microbiology.
[134] Frederik Hammes,et al. Kinetics of membrane damage to high (HNA) and low (LNA) nucleic acid bacterial clusters in drinking water by ozone, chlorine, chlorine dioxide, monochloramine, ferrate(VI), and permanganate. , 2011, Water research.