Robustness of the non-neuronal cholinergic system in rat large intestine against luminal challenges
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[1] M. Diener,et al. Segmental differences in the non-neuronal cholinergic system in rat caecum , 2018, Pflügers Archiv - European Journal of Physiology.
[2] T. Alexander,et al. Incubation Temperature, But Not Pequi Oil Supplementation, Affects Methane Production, and the Ruminal Microbiota in a Rumen Simulation Technique (Rusitec) System , 2017, Front. Microbiol..
[3] N. Mach,et al. The Crosstalk between the Gut Microbiota and Mitochondria during Exercise , 2017, Front. Physiol..
[4] M. Diener,et al. Stimulation of Na+‐K+‐pump currents by epithelial nicotinic receptors in rat colon , 2017, British journal of pharmacology.
[5] B. Spengler,et al. Epithelial propionyl‐ and butyrylcholine as novel regulators of colonic ion transport , 2016, British journal of pharmacology.
[6] W. Garrett,et al. Gut microbiota, metabolites and host immunity , 2016, Nature Reviews Immunology.
[7] T. Iwanaga,et al. Non‐neuronal, but atropine‐sensitive ileal contractile responses to short‐chain fatty acids: age‐dependent desensitization and restoration under inflammatory conditions in mice , 2016, Physiological reports.
[8] T. R. Licht,et al. Antibiotic Treatment Affects Intestinal Permeability and Gut Microbial Composition in Wistar Rats Dependent on Antibiotic Class , 2015, PloS one.
[9] B. Campbell,et al. Review article: dietary fibre–microbiota interactions , 2015, Alimentary pharmacology & therapeutics.
[10] N. Natarajan,et al. From microbe to man: the role of microbial short chain fatty acid metabolites in host cell biology. , 2014, American journal of physiology. Cell physiology.
[11] M. Diener,et al. Choline acetyltransferase and organic cation transporters are responsible for synthesis and propionate-induced release of acetylcholine in colon epithelium. , 2014, European journal of pharmacology.
[12] A. Douglas,et al. Comparative digestive physiology. , 2013, Comprehensive Physiology.
[13] G. Gäbel,et al. Cholinergic Modulation of Epithelial Integrity in the Proximal Colon of Pigs , 2013, Cells Tissues Organs.
[14] R. Inoue,et al. The G‐protein on cholesterol‐rich membrane microdomains mediates mucosal sensing of short‐ chain fatty acid and secretory response in rat colon , 2011, Acta physiologica.
[15] P. Bork,et al. Enterotypes of the human gut microbiome , 2011, Nature.
[16] R. Inoue,et al. Non‐neuronal release of ACh plays a key role in secretory response to luminal propionate in rat colon , 2011, The Journal of physiology.
[17] A. Schwiertz,et al. Microbiota and SCFA in Lean and Overweight Healthy Subjects , 2010, Obesity.
[18] S. Karaki,et al. Propionate-induced epithelial K+ and Cl−/HCO3− secretion and free fatty acid receptor 2 (FFA2, GPR43) expression in the guinea pig distal colon , 2010, Pflügers Archiv - European Journal of Physiology.
[19] J. Doré,et al. Low counts of Faecalibacterium prausnitzii in colitis microbiota , 2009, Inflammatory bowel diseases.
[20] Y. Sanz,et al. Specific duodenal and faecal bacterial groups associated with paediatric coeliac disease , 2008, Journal of Clinical Pathology.
[21] C. Drachenberg,et al. Acetylcholine release by human colon cancer cells mediates autocrine stimulation of cell proliferation. , 2008, American journal of physiology. Gastrointestinal and liver physiology.
[22] G. Macfarlane,et al. Mucosa-Associated Bacterial Diversity in Relation to Human Terminal Ileum and Colonic Biopsy Samples , 2007, Applied and Environmental Microbiology.
[23] L. Skillman,et al. 16S rDNA directed PCR primers and detection of methanogens in the bovine rumen , 2006, Letters in applied microbiology.
[24] M. Taciak,et al. The short-chain fatty acid content in the caecal digesta of rats fed diets with various sources of fibre , 2005 .
[25] J. Fujimoto,et al. Use of 16S rRNA Gene-Targeted Group-Specific Primers for Real-Time PCR Analysis of Predominant Bacteria in Human Feces , 2004, Applied and Environmental Microbiology.
[26] Claus Lindbjerg Andersen,et al. Normalization of Real-Time Quantitative Reverse Transcription-PCR Data: A Model-Based Variance Estimation Approach to Identify Genes Suited for Normalization, Applied to Bladder and Colon Cancer Data Sets , 2004, Cancer Research.
[27] H. Kilbinger,et al. The non-neuronal cholinergic system in humans: expression, function and pathophysiology. , 2003, Life sciences.
[28] G. Horgan,et al. Relative expression software tool (REST©) for group-wise comparison and statistical analysis of relative expression results in real-time PCR , 2002 .
[29] C. Winckler,et al. Colonic fermentation as affected by antibiotics and acidic pH: Application of an in vitro model. , 2001, Zeitschrift fur Gastroenterologie.
[30] W. Caspary,et al. Application of the Colon-Simulation Technique for Studying the Effects of Saccharomyces boulardii on Basic Parameters of Porcine Cecal Microbial Metabolism Disturbed by Clindamycin , 2000, Digestion.
[31] C. Kirkpatrick,et al. Non-neuronal acetylcholine, a signalling molecule synthezised by surface cells of rat and man , 1997, Naunyn-Schmiedeberg's Archives of Pharmacology.
[32] T. Machen,et al. Bicarbonate conductance and pH regulatory capability of cystic fibrosis transmembrane conductance regulator. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[33] H. Sann,et al. Identification of cholinergic neurons in enteric nervous system by antibodies against choline acetyltransferase. , 1993, The American journal of physiology.
[34] A. Sutton,et al. Effect of galactan on selected microbial populations and pH and volatile fatty acids in the ileum of the weanling pig. , 1993, Journal of animal science.
[35] G. Breves,et al. Volumen und Retentionszeit der partikelfreien Flüssigkeit im Dickdarm von wachsenden Schweinen , 1988 .
[36] M. Bugaut. Occurrence, absorption and metabolism of short chain fatty acids in the digestive tract of mammals. , 1987, Comparative biochemistry and physiology. B, Comparative biochemistry.
[37] J. Rossier. Acetyl-coenzyme A and coenzyme A analogues. Their effects on rat brain choline acetyltransferase. , 1977, The Biochemical journal.
[38] R. Argenzio,et al. Sites of organic acid production and absorption in gastrointestinal tract of the pig. , 1975, The American journal of physiology.
[39] D. Farrell,et al. Utilization of cellulose by pigs and its effects on caecal function , 1972 .