Works by Flint, Harry J.
Results: 66
How our gut microbes influence our behaviour.
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- Journal of Neuroendocrinology, 2013, v. 25, n. 5, p. 517, doi. 10.1111/jne.12027
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- Article
Mechanistic Insights Into the Cross-Feeding of Ruminococcus gnavus and Ruminococcus bromii on Host and Dietary Carbohydrates.
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- Frontiers in Microbiology, 2018, p. N.PAG, doi. 10.3389/fmicb.2018.02558
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- Article
microPop: Modelling microbial populations and communities in R.
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- Methods in Ecology & Evolution, 2018, v. 9, n. 2, p. 399, doi. 10.1111/2041-210X.12873
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Targeted Restoration of the Intestinal Microbiota with a Simple, Defined Bacteriotherapy Resolves Relapsing Clostridium difficile Disease in Mice.
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- PLoS Pathogens, 2012, v. 8, n. 10, p. 1, doi. 10.1371/journal.ppat.1002995
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Polysaccharide utilization by gut bacteria: potential for new insights from genomic analysis.
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- Nature Reviews Microbiology, 2008, v. 6, n. 2, p. 121, doi. 10.1038/nrmicro1817
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Microbiology: Antibiotics and adiposity.
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- Nature, 2012, v. 488, n. 7413, p. 601, doi. 10.1038/488601a
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- Article
Why does increased microbial fermentation in the human colon shift toward butyrate?
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- AIMS Microbiology, 2024, v. 10, n. 2, p. 1, doi. 10.3934/microbiol.2024016
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Dominant and diet-responsive groups of bacteria within the human colonic microbiota.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2011, v. 5, n. 2, p. 220, doi. 10.1038/ismej.2010.118
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- Article
Microbiota of De-Novo Pediatric IBD: Increased Faecalibacterium Prausnitzii and Reduced Bacterial Diversity in Crohn's But Not in Ulcerative Colitis.
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- American Journal of Gastroenterology (Springer Nature), 2012, v. 107, n. 12, p. 1913, doi. 10.1038/ajg.2012.335
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Functional genomics reveals that Clostridium difficile Spo0A coordinates sporulation, virulence and metabolism.
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- BMC Genomics, 2014, v. 15, n. 1, p. 1, doi. 10.1186/1471-2164-15-160
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- Article
Modulation of the human gut microbiota by dietary fibres occurs at the species level.
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- BMC Biology, 2016, v. 14, p. 1, doi. 10.1186/s12915-015-0224-3
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Higher total faecal short-chain fatty acid concentrations correlate with increasing proportions of butyrate and decreasing proportions of branched-chain fatty acids across multiple human studies.
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- Gut Microbiome, 2022, v. 3, p. 1, doi. 10.1017/gmb.2022.1
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Faecalibacterium prausnitzii Strain HTF-F and Its Extracellular Polymeric Matrix Attenuate Clinical Parameters in DSS-Induced Colitis.
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- PLoS ONE, 2015, v. 10, n. 4, p. 1, doi. 10.1371/journal.pone.0123013
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Links between diet, gut microbiota composition and gut metabolism.
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- Proceedings of the Nutrition Society, 2015, v. 74, n. 1, p. 13, doi. 10.1017/S0029665114001463
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- Article
The gut microbial metabolome: modulation of cancer risk in obese individuals.
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- Proceedings of the Nutrition Society, 2013, v. 72, n. 1, p. 178, doi. 10.1017/S0029665112002881
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- Article
16S rRNA gene-based profiling of the human infant gut microbiota is strongly influenced by sample processing and PCR primer choice.
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- Microbiome, 2015, v. 3, n. 1, p. 1, doi. 10.1186/s40168-015-0087-4
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The gut microbiota, bacterial metabolites and colorectal cancer.
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- Nature Reviews Microbiology, 2014, v. 12, n. 10, p. 661, doi. 10.1038/nrmicro3344
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- Article
Complexity of the Ruminococcus flavefaciens FD-1 cellulosome reflects an expansion of family-related protein-protein interactions.
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- Scientific Reports, 2017, p. 42355, doi. 10.1038/srep42355
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- Article
Faecalibacterium prausnitzii A2-165 has a high capacity to induce IL-10 in human and murine dendritic cells and modulates T cell responses.
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- Scientific Reports, 2016, p. 18507, doi. 10.1038/srep18507
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- Article
Type IV pili are widespread among non‐pathogenic Gram‐positive gut bacteria with diverse carbohydrate utilization patterns.
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- Environmental Microbiology, 2021, v. 23, n. 3, p. 1527, doi. 10.1111/1462-2920.15362
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β‐Glucan is a major growth substrate for human gut bacteria related to Coprococcus eutactus.
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- Environmental Microbiology, 2020, v. 22, n. 6, p. 2150, doi. 10.1111/1462-2920.14977
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Formate cross‐feeding and cooperative metabolic interactions revealed by transcriptomics in co‐cultures of acetogenic and amylolytic human colonic bacteria.
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- Environmental Microbiology, 2019, v. 21, n. 1, p. 259, doi. 10.1111/1462-2920.14454
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Sporulation capability and amylosome conservation among diverse human colonic and rumen isolates of the keystone starch‐degrader <italic>Ruminococcus bromii</italic>.
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- Environmental Microbiology, 2018, v. 20, n. 1, p. 324, doi. 10.1111/1462-2920.14000
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Formation of propionate and butyrate by the human colonic microbiota.
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- Environmental Microbiology, 2017, v. 19, n. 1, p. 29, doi. 10.1111/1462-2920.13589
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Lysozyme activity of the R uminococcus champanellensis cellulosome.
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- Environmental Microbiology, 2016, v. 18, n. 12, p. 5112, doi. 10.1111/1462-2920.13501
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Wheat bran promotes enrichment within the human colonic microbiota of butyrate-producing bacteria that release ferulic acid.
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- Environmental Microbiology, 2016, v. 18, n. 7, p. 2214, doi. 10.1111/1462-2920.13158
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Enzymatic profiling of cellulosomal enzymes from the human gut bacterium, R uminococcus champanellensis, reveals a fine-tuned system for cohesin-dockerin recognition.
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- Environmental Microbiology, 2016, v. 18, n. 2, p. 542, doi. 10.1111/1462-2920.13047
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Ruminococcal cellulosome systems from rumen to human.
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- Environmental Microbiology, 2015, v. 17, n. 9, p. 3407, doi. 10.1111/1462-2920.12868
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Modelling the emergent dynamics and major metabolites of the human colonic microbiota.
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- Environmental Microbiology, 2015, v. 17, n. 5, p. 1615, doi. 10.1111/1462-2920.12599
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Complete genome of a new Firmicutes species belonging to the dominant human colonic microbiota (' Ruminococcus bicirculans') reveals two chromosomes and a selective capacity to utilize plant glucans.
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- Environmental Microbiology, 2014, v. 16, n. 9, p. 2879, doi. 10.1111/1462-2920.12217
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Phylogenetic distribution of genes encoding β-glucuronidase activity in human colonic bacteria and the impact of diet on faecal glycosidase activities.
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- Environmental Microbiology, 2012, v. 14, n. 8, p. 1876, doi. 10.1111/j.1462-2920.2012.02711.x
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Phage-bacteria relationships and CRISPR elements revealed by a metagenomic survey of the rumen microbiome.
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- Environmental Microbiology, 2012, v. 14, n. 1, p. 207, doi. 10.1111/j.1462-2920.2011.02593.x
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Diversity of human colonic butyrate-producing bacteria revealed by analysis of the butyryl-CoA:acetate CoA-transferase gene.
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- Environmental Microbiology, 2010, v. 12, n. 2, p. 304, doi. 10.1111/j.1462-2920.2009.02066.x
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The role of pH in determining the species composition of the human colonic microbiota.
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- Environmental Microbiology, 2009, v. 11, n. 8, p. 2112, doi. 10.1111/j.1462-2920.2009.01931.x
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The species composition of the human intestinal microbiota differs between particle-associated and liquid phase communities.
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- Environmental Microbiology, 2008, v. 10, n. 12, p. 3275, doi. 10.1111/j.1462-2920.2008.01717.x
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Interactions and competition within the microbial community of the human colon: links between diet and health.
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- Environmental Microbiology, 2007, v. 9, n. 5, p. 1101, doi. 10.1111/j.1462-2920.2007.01281.x
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Selective colonization of insoluble substrates by human faecal bacteria.
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- Environmental Microbiology, 2007, v. 9, n. 3, p. 667, doi. 10.1111/j.1462-2920.2006.01186.x
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A bifunctional xylanase encoded by the xynA gene of the rumen cellulolytic bacterium Ruminococcus flavefaciens 17 comprises two dissimilar domains linked by an asparagine/glutamine-rich sequence.
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- Molecular Microbiology, 1992, v. 6, n. 8, p. 1013, doi. 10.1111/j.1365-2958.1992.tb02167.x
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Relative abundance of the Prevotella genus within the human gut microbiota of elderly volunteers determines the inter-individual responses to dietary supplementation with wheat bran arabinoxylan-oligosaccharides.
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- BMC Microbiology, 2020, v. 20, n. 1, p. N.PAG, doi. 10.1186/s12866-020-01968-4
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Expression of a cellulase gene, celA, from the rumen fungus Neocallimastix patriciarum in Streptococcus bovis by means of promoter fusions.
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- Biotechnology Letters, 2002, v. 24, n. 9, p. 735, doi. 10.1023/A:1015250504093
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Streptococcus bovis as a host for the expression of cloned polysaccharidase genes.
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- Biotechnology Letters, 2001, v. 23, n. 7, p. 501, doi. 10.1023/A:1010384828899
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Dietary fibers inhibit obesity in mice, but host responses in the cecum and liver appear unrelated to fiber-specific changes in cecal bacterial taxonomic composition.
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- Scientific Reports, 2018, v. 8, n. 1, p. 1, doi. 10.1038/s41598-018-34081-8
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Cohesin diversity revealed by the crystal structure of the anchoring cohesin from Ruminococcus flavefaciens.
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- Proteins, 2009, v. 77, n. 3, p. 699, doi. 10.1002/prot.22483
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Plant Cell Wall Breakdown by Anaerobic Microorganisms from the Mammalian Digestive Tract.
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- Annals of the New York Academy of Sciences, 2008, v. 1125, p. 280, doi. 10.1196/annals.1419.022
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From cellulosomes to cellulosomics.
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- Chemical Record, 2008, v. 8, n. 6, p. 364, doi. 10.1002/tcr.20160
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Specific substrate-driven changes in human faecal microbiota composition contrast with functional redundancy in short-chain fatty acid production.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2018, v. 12, n. 2, p. 610, doi. 10.1038/ismej.2017.196
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Challenges in microbial ecology: building predictive understanding of community function and dynamics.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2016, v. 10, n. 11, p. 2557, doi. 10.1038/ismej.2016.45
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Impact of diet and individual variation on intestinal microbiota composition and fermentation products in obese men.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2014, v. 8, n. 11, p. 2218, doi. 10.1038/ismej.2014.63
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Phylogenetic distribution of three pathways for propionate production within the human gut microbiota.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2014, v. 8, n. 6, p. 1323, doi. 10.1038/ismej.2014.14
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Phylogenetic distribution of three pathways for propionate production within the human gut microbiota.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2014, v. 8, n. 6, p. 1352, doi. 10.1038/ismej.2014.48
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