Blautia and Prevotella sequences distinguish human and animal fecal pollution in Brazil surface waters.
暂无分享,去创建一个
A Murat Eren | Sandra L McLellan | A. M. Eren | M. Reis | R. Blanton | S. McLellan | J. Fisher | Amber M. Koskey | Amber M Koskey | Jenny C Fisher | Rafael Ponce-Terashima | Mitermayer G Reis | Ronald E Blanton | R. Ponce-Terashima
[1] Orin C. Shanks,et al. Recommendations following a multi-laboratory comparison of microbial source tracking methods. , 2013, Water research.
[2] Katharine G Field,et al. Fecal source tracking, the indicator paradigm, and managing water quality. , 2007, Water research.
[3] Hilary G. Morrison,et al. A Microbial Signature Approach to Identify Fecal Pollution in the Waters Off an Urbanized Coast of Lake Michigan , 2013, Microbial Ecology.
[4] Timothy Bartrand,et al. Estimated human health risks from exposure to recreational waters impacted by human and non-human sources of faecal contamination. , 2010, Water research.
[5] Sandy Cairncross,et al. Effect of city-wide sanitation programme on reduction in rate of childhood diarrhoea in northeast Brazil: assessment by two cohort studies , 2007, The Lancet.
[6] Stefan Wuertz,et al. Quo vadis source tracking? Towards a strategic framework for environmental monitoring of fecal pollution. , 2007, Water research.
[7] P. Roslev,et al. State of the art molecular markers for fecal pollution source tracking in water , 2011, Applied Microbiology and Biotechnology.
[8] R. Guerrant,et al. Prospective study of diarrheal illnesses in northeastern Brazil: patterns of disease, nutritional impact, etiologies, and risk factors. , 1983, The Journal of infectious diseases.
[9] Sandra L. McLellan,et al. Analysis of the Gull Fecal Microbial Community Reveals the Dominance of Catellicoccus marimammalium in Relation to Culturable Enterococci , 2013, Applied and Environmental Microbiology.
[10] Orin C. Shanks,et al. Sewage reflects the distribution of human faecal Lachnospiraceae. , 2013, Environmental microbiology.
[11] A. Goonetilleke,et al. Evaluation of multiple sewage-associated Bacteroides PCR markers for sewage pollution tracking. , 2009, Water research.
[12] Michael J Sadowsky,et al. Use of barcoded pyrosequencing and shared OTUs to determine sources of fecal bacteria in watersheds. , 2010, Environmental science & technology.
[13] S. McLellan,et al. Detection of the human specific Bacteroides genetic marker provides evidence of widespread sewage contamination of stormwater in the urban environment. , 2011, Water research.
[14] Marion W. Jenkins,et al. Identifying human and livestock sources of fecal contamination in Kenya with host-specific Bacteroidales assays. , 2009, Water research.
[15] J. Clemente,et al. Human gut microbiome viewed across age and geography , 2012, Nature.
[16] Orin C. Shanks,et al. Comparison of the Microbial Community Structures of Untreated Wastewaters from Different Geographic Locales , 2013, Applied and Environmental Microbiology.
[17] M. Reis,et al. Schistosoma mansoni population structure and persistence after praziquantel treatment in two villages of Bahia, Brazil. , 2011, International journal for parasitology.
[18] C. Yost,et al. Evaluation of host-specific Bacteroidales 16S rRNA gene markers as a complementary tool for detecting fecal pollution in a prairie watershed. , 2009, Water research.
[19] A. Farnleitner,et al. Quantitative PCR Method for Sensitive Detection of Ruminant Fecal Pollution in Freshwater and Evaluation of This Method in Alpine Karstic Regions , 2006, Applied and Environmental Microbiology.
[20] F. Bushman,et al. Linking Long-Term Dietary Patterns with Gut Microbial Enterotypes , 2011, Science.
[21] B. Roe,et al. A core gut microbiome in obese and lean twins , 2008, Nature.
[22] A. Farnleitner,et al. A quantitative real‐time PCR assay for the highly sensitive and specific detection of human faecal influence in spring water from a large alpine catchment area , 2007, Letters in applied microbiology.
[23] Susan M. Huse,et al. Acinetobacter, Aeromonas and Trichococcus populations dominate the microbial community within urban sewer infrastructure. , 2012, Environmental microbiology.
[24] R. Knight,et al. Diversity, stability and resilience of the human gut microbiota , 2012, Nature.
[25] A. Rincé,et al. Evaluation of Two Library-Independent Microbial Source Tracking Methods To Identify Sources of Fecal Contamination in French Estuaries , 2007, Applied and Environmental Microbiology.
[26] M. Sogin,et al. A Filtering Method to Generate High Quality Short Reads Using Illumina Paired-End Technology , 2013, PloS one.
[27] S. Massart,et al. Impact of diet in shaping gut microbiota revealed by a comparative study in children from Europe and rural Africa , 2010, Proceedings of the National Academy of Sciences.
[28] M. Sogin,et al. A single genus in the gut microbiome reflects host preference and specificity , 2014, The ISME Journal.
[29] A. Goonetilleke,et al. Quantitative PCR assay of sewage-associated Bacteroides markers to assess sewage pollution in an urban lake in Dhaka, Bangladesh. , 2010, Canadian journal of microbiology.
[30] Susan M. Huse,et al. Diversity and population structure of sewage-derived microorganisms in wastewater treatment plant influent. , 2010, Environmental microbiology.
[31] Linda K. Dick,et al. Host Distributions of Uncultivated Fecal Bacteroidales Bacteria Reveal Genetic Markers for Fecal Source Identification , 2005, Applied and Environmental Microbiology.
[32] V. Harwood,et al. Validation and field testing of library-independent microbial source tracking methods in the Gulf of Mexico. , 2009, Water research.
[33] Scot E. Dowd,et al. Exploring the Diversity of Gardnerella vaginalis in the Genitourinary Tract Microbiota of Monogamous Couples Through Subtle Nucleotide Variation , 2011, PloS one.
[34] Orin C. Shanks,et al. Evaluation of genetic markers from the 16S rRNA gene V2 region for use in quantitative detection of selected Bacteroidales species and human fecal waste by qPCR. , 2010, Systematic and applied microbiology.
[35] Susan M. Huse,et al. Exploring Microbial Diversity and Taxonomy Using SSU rRNA Hypervariable Tag Sequencing , 2008, PLoS genetics.
[36] S. Wuertz,et al. 16S rRNA-based assays for quantitative detection of universal, human-, cow-, and dog-specific fecal Bacteroidales: a Bayesian approach. , 2007, Water research.
[37] Katharine G. Field,et al. A PCR Assay To Discriminate Human and Ruminant Feces on the Basis of Host Differences in Bacteroides-Prevotella Genes Encoding 16S rRNA , 2000, Applied and Environmental Microbiology.
[38] Lisa R. Fogarty,et al. Comparison of Bacteroides-Prevotella 16S rRNA Genetic Markers for Fecal Samples from Different Animal Species , 2005, Applied and Environmental Microbiology.
[39] S. Wuertz,et al. Performance Characteristics of qPCR Assays Targeting Human- and Ruminant-Associated Bacteroidetes for Microbial Source Tracking across Sixteen Countries on Six Continents , 2013, Environmental science & technology.
[40] Sharon L. Grim,et al. Oligotyping: differentiating between closely related microbial taxa using 16S rRNA gene data , 2013, Methods in ecology and evolution.
[41] T. A. Gomes,et al. Etiology of childhood diarrhea in the northeast of Brazil: significant emergent diarrheal pathogens. , 2010, Diagnostic microbiology and infectious disease.
[42] L. Beutin,et al. Prevalence of diarrheagenic Escherichia coli in children with diarrhea in Salvador, Bahia, Brazil. , 2005, Memorias do Instituto Oswaldo Cruz.
[43] Steven A. Esrey,et al. CLOSING THE LOOP Ecological sanitation for food security , 2002 .
[44] G. Andersen,et al. Application of phylogenetic microarray analysis to discriminate sources of fecal pollution. , 2012, Environmental science & technology.
[45] M. Gourmelon,et al. Phylogenetic analysis of Bacteroidales 16S rRNA gene sequences from human and animal effluents and assessment of ruminant faecal pollution by real‐time PCR , 2010, Journal of applied microbiology.
[46] Les Dethlefsen,et al. The Pervasive Effects of an Antibiotic on the Human Gut Microbiota, as Revealed by Deep 16S rRNA Sequencing , 2008, PLoS biology.
[47] J. Comerlato,et al. Enteric viruses in water samples from Brazilian dairy farms , 2012 .
[48] Mark A. Borchardt,et al. Lachnospiraceae and Bacteroidales Alternative Fecal Indicators Reveal Chronic Human Sewage Contamination in an Urban Harbor , 2011, Applied and Environmental Microbiology.