A literature review on coliform detection methods in wáter sources: Recent international developments

Authors

  • Rocio Jara-Vilca Universidad Nacional Toribio Rodríguez de Mendoza de Amazonas

DOI:

https://doi.org/10.55996/dekamuagropec.v4i1.145

Keywords:

Detection methods, total coliforms and water quality

Abstract

The consumption of contaminated water, especially total coliforms, causes multiple intestinal diseases and is currently a latent problem. In this sense, the objective of the research was to analyze the detection methods for microbiological analysis of water at international level. The literature review was conducted based on data from the National Center for Biotechnology Information (NCBI), Latin American and Caribbean Literature on Health Sciences (LILACS) and Scopus, from 2012 to December 2022. Data analysis was performed according to the selected articles and their origin. Co-authorship networks were performed with VOSviewer software. The results show that studies based on water quality analysis methods began to stand out during the years 2021 and the country where research was developed with greater emphasis was the United States. It is concluded that molecular methods are a good alternative for water quality analysis because they are fast and specific.

Downloads

Download data is not yet available.

References

Amidoun, S. (2017). Escherichia coli Recent Advances on Physiology, Pathogenesis and Biotechnological Applications.

Fusco, A., Batista, K., Oliveira, C., & Brito, E. (2010). Desenvolvimento de PCR multiplex para detecção e diferenciação de categorias de Escherichia coli diarreiogênicas. Revista Pan-Amazônica de Saúde, 1(2). https://doi.org/10.5123/s2176-6223201000020000

Girones, R., Ferrús, M. A., Alonso, J. L., Rodriguez-Manzano, J., Calgua, B., de Abreu Corrêa, A., Hundesa, A., Carratala, A., & Bofill-Mas, S. (2010). Molecular detection of pathogens in water - The pros and cons of molecular techniques. In Water Research (Vol. 44, Issue 15, pp. 4325–4339). Elsevier Ltd. https://doi.org/10.1016/j.watres.2010.06.030

Mendes, D., & Domingues, L. (2015). On the track for an efficient detection of Escherichia coli in water: A review on PCR-based methods. In Ecotoxicology and Environmental Safety (Vol. 113, pp. 400–411). Academic Press. https://doi.org/10.1016/j.ecoenv.2014.12.015

Moyano, S., & Marín, G. (2014). Técnica de filtración ISO 9308 aplicada al monitoreo de agua de red. RADI, 450(5900), 53–58.

Md Khudzari, J., Kurian, J., Tartakovsky, B., & Raghavan, G. S. V. (2018). Bibliometric analysis of global research trends on microbial fuel cells using Scopus database. Biochemical Engineering Journal, 136, 51–60. https://doi.org/10.1016/j.bej.2018.05.002

Nurliyana, M. R., Sahdan, M. Z., Wibowo, K. M., Muslihati, A., Saim, H., Ahmad, S. A., Sari, Y., & Mansor, Z. (2018). The Detection Method of Escherichia coli in Water Resources: A Review. Journal of Physics: Conference Series, 995(1). https://doi.org/10.1088/1742-6596/995/1/012065

Salaz R (2019). Métodos de búsqueda de información Bibliográfica

Silva, R., Rocha, R. S., Ramos, G. L. P. A., Xavier-Santos, D., Pimentel, T. C., Lorenzo, J. M., Henrique Campelo, P., Cristina Silva, M., Esmerino, E. A., Freitas, M. Q., & Cruz, A. G. (2022). What are the challenges for ohmic heating in the food industry? Insights of a bibliometric analysis. Food Research International, 157(March). https://doi.org/10.1016/j.foodres.2022.111272

Maguire M., Kase J.A., Brown E.W., Allard M.W., Musser S.M., González-Escalona N (2022). Metagenomic survey of agricultural water using long read sequencing: Considerations for a successful análisis.

Treebupachatsakul T., Lochotinunt C., Teechot T., Pensupa N., Pechprasarn S.(2022). Gelatin-Based Microfluidic Channel for Quantitative E. Coli Detection Using Blue Fluorescence of 4-Methyl-Umbelliferone Product and a Smartphone Camera

Rishi M., Amreen K., Mohan J.M., Javed A., Dubey S.K., Goel S. (2002). Rapid, sensitive and specific electrochemical detection of E. coli using graphitized mesoporous carbon-modified electrodes

Zarrinkhat F., Jofre-Roca L., Jofre M., Rius J.M., Romeu J. (2022). Experimental Verification of Dielectric Models with a Capacitive Wheatstone Bridge Biosensor for Living Cells: E. coli

Saez J., Catalan-Carrio R., Owens R.M., Basabe-Desmonts L., Benito-Lopez F. (2021). Microfluidics and materials for smart water monitoring: A review

Rani A., Ravindran V.B., Surapaneni A., Mantri N., Ball A.S. (2021) Review: Trends in point-of-care diagnosis for Escherichia coli O157:H7 in food and wáter.

Khan I.U.H., Becker A., Cloutier M., Plötz M., Lapen D.R., Wilkes G., Topp E., Abdulmawjood A. (2021). Loop-mediated isothermal amplification: Development, validation and application of simple and rapid assays for quantitative detection of species of Arcobacteraceae family- and species-specific Aliarcobacter faecis and Aliarcobacter lanthieri.

Shaik S., Saminathan A., Sharma D., Krishnaswamy J.A., Mahapatra D.R.(2021) Monitoring microbial growth on a microfluidic lab-on-chip with electrochemical impedance spectroscopic technique.

Vishwakarma A., Lal R., Ramya M. (2021). Aptamer-based approaches for the detection of waterborne pathogens.

Olalemi A.O., Ige O.M., James G.A., Obasoro F.I., Okoko F.O., Ogunleye C.O. (2021). Detection of enteric bacteria in t w o groundwater sources a n d associated microbial health risks.

Demoliner M., Gularte J.S., Girardi V., Eisen A.K.A., de Souza F.G., Staggemeier R., Henzel A., Spilki F.R. (2021). Microbial Source Tracking in Small Farms: Use of Different Methods for Adenovirus Detection

Gangar T., Satyam K., Patra S. (2021). Monitoring/sensing techniques to address pollutant heterogeneity assessment in wastewater.

Kora A.J. (2021). Zirconium alginate beads: A renewable source for the biosorption of fluoride from contaminated ground wáter.

Ward J.S.T., Lapworth D.J., Read D.S., Pedley S., Banda S.T., Monjerezi M., Gwengweya G., MacDonald A.M. (2021). Tryptophan-like fluorescence as a high-level screening tool for detecting microbial contamination in drinking wáter.

Khan F.M., Gupta R. (2020). Escherichia coli (e. coli) as an indicator of fecal contamination in groundwater: A review.

Bigham T., Dooley J.S.G., Ternan N.G., Snelling W.J., Héctor Castelán M.C., Davis J. (2019). Assessing microbial water quality: Electroanalytical approaches to the detection of coliforms.

Wolf-Baca M., Siedlecka A. (2019). Detection of pathogenic bacteria in hot tap water using the qPCR method: preliminary research.

Han E.J.Y., Palanisamy K., Hinks J., Wuertz S. (2019). Parameter selection for a microvolume electrochemical Escherichia coli detector for pairing with a concentration device.

Loo A., Bivins A., John V., Becker S., Evanchec S., George A., Hernandez V., Mullaney J., Tolentino L., Yoo R., Nagarnaik P., Labhasetwar P., Brown J.(2019). Development and field testing of low-cost, quantal microbial assays with volunteer reporting as scalable means of drinking water safety estimation.

Lacey R.F., Ye D., Ruffing A.M. (2019). Engineering and characterization of copper and gold sensors in Escherichia coli and Synechococcus sp. PCC 7002.

Malec A., Kokkinis G., Haiden C., Giouroudi I. (2018). Biosensing system for concentration quantification of magnetically labeled e. Coli in water simples.

Wu G., Meyyappan M., Lai K.W.C. (2018). Simulation of graphene field-effect transistor biosensors for bacterial detection,

Yin H.-B., Patel J.(2018). Comparison of methods to determine the microbial quality of alternative irrigation Waters,

Ozeh U.O., Nnanna A.G.A., Ndukaife J.C. (2018). Coupling immunofluorescence and optoelectrokinetic technique for Escherichia coli detection and quantification in wáter.

Gutiérrez-del-Río I., Marín L., Fernández J., Millán M.Á.S., Ferrero F.J., Valledor M., Campo J.C., Cobián N., Méndez I., Lombó F. (2018). Development of a biosensor protein bullet as a fluorescent method for fast detection of Escherichia coli in drinking wáter

Gunda N.S.K., Dasgupta S., Mitra S.K. (2017). DipTest: A litmus test for E. coli detection in wáter.

Kheiri R., Ranjbar R., Memariani M., Akhtari L. (2017). Multiplex PCR for detection of water-borne bacteria.

Eltzov E., Marks R.S. (2016). Miniaturized Flow Stacked Immunoassay for Detecting Escherichia coli in a Single Step.

Yang X., Yang K., Luo Y., Fu W. (2016). Terahertz spectroscopy for bacterial detection: opportunities and challenges.

Shaibani P.M., Jiang K., Haghighat G., Hassanpourfard M., Etayash H., Naicker S., Thundat T. (2016). The detection of Escherichia coli (E. coli) with the pH sensitive hydrogel nanofiber-light addressable potentiometric sensor (NF-LAPS).

Ramasamy M., Yi D.K., An S.S.A. (2015). Enhanced detection sensitivity of escherichia coli 0157:H7 using surface–modified gold nanorods.

Bridgeman J., Baker A., Brown D., Boxall J.B. (2015). Portable LED fluorescence instrumentation for the rapid assessment of potable water quality.

Nigam V.K., Shukla P. (2015). Enzyme based biosensors for detection of environmental pollutants-A review.

Saxena T., Kaushik P., Krishna Mohan M. (2015). Prevalence of E. coli O157: H7 in water sources: An overview on associated diseases, outbreaks and detection methods.

Nicolini A.M., Fronczek C.F., Yoon J.-Y. (2015). Droplet-based immunoassay on a 'sticky' nanofibrous surface for multiplexed and dual detection of bacteria using smartphones.

Gomi R., Matsuda T., Matsui Y., Yoneda M. (2014). Fecal source tracking in water by next-generation sequencing technologies using host-specific escherichia coli genetic markers.

Bari M.L., Yeasmin S. (2014). Water Quality Assessment: Modern Microbiological Techniques.

Loff M., Mare L., De Kwaadsteniet M., Khan W. (2014). 3M™ Molecular Detection system versus MALDI-TOF mass spectrometry and molecular techniques for the identification of Escherichia coli 0157: H7, Salmonella spp. & Listeria spp

Stauber C., Miller C., Cantrell B., Kroell K. (2014). Evaluation of the compartment bag test for the detection of Escherichia coli in wáter.

Gonzalez R.A., Noble R.T. (2014). Comparisons of statistical models to predict fecal indicator bacteria concentrations enumerated byqPCR- and culture-based methods.

Kim T., Han J.-I. (2013). Fast detection and quantification of Escherichia coli using the base principle of the microbial fuel cell.

Durso L.M. (2013). Primary isolation of shiga toxigenic escherichia coli from environmental sources.

Sbodio A., Maeda S., Lopez-Velasco G., Suslow T.V. (2013). Modified Moore swab optimization and validation in capturing E. Coli O157: H7 and Salmonella enterica in large volume field samples of irrigation wáter.

Nagalambika C., Murthy S.M. (2013). Revalidation of testing methods for assessing microbial safety of groundwater.

Wandermur G.L., Rodrigues D.M.C., Queiroz V.M., Gonçalves M.N., Miguel M.A.L., Werneck M.M., Allil R.C.S.B. (2013). Development of an immunosensor of plastic optical fiber for detection of microorganisms in water and environmental monitoring.

McMahan L., Grunden A.M., Devine A.A., Sobsey M.D. (2012). Evaluation of a quantitative H2S MPN test for fecal microbes analysis of water using biochemical and molecular identification.

Published

2023-06-28

How to Cite

Jara-Vilca, R. (2023). A literature review on coliform detection methods in wáter sources: Recent international developments. Dékamu Agropec Scientific Journal, 4(1), 100–113. https://doi.org/10.55996/dekamuagropec.v4i1.145