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Citations to this article

Mechanism of deoxycholic acid stimulation of the rabbit colon.
S J Shiff, … , R D Soloway, W J Snape Jr
S J Shiff, … , R D Soloway, W J Snape Jr
Published April 1, 1982
Citation Information: J Clin Invest. 1982;69(4):985-992. https://doi.org/10.1172/JCI110538.
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Research Article

Mechanism of deoxycholic acid stimulation of the rabbit colon.

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Abstract

Previous studies showed that deoxycholic acid (DCA) stimulated migrating action potential complexes (MAPC) in the colon. The aim of this study was to clarify the mechanism of DCA-stimulated colonic motility. Myoelectrical and contractile activity were measured in New Zealand White rabbits from a loop constructed in the proximal colon. During the control period, slow waves were present at a frequency of 10.8 +/- 0.5 cycle/min and there were 1.5 +/- 0.5 MAPC/ h. After adding DCA (16 mM) to the loop the slow wave activity was unchanged. However, MAPC increased to 15.1 +/- 2.4 MAPC/h (P less than 0.001). MAPC activity was not stimulated in the colonic smooth muscle outside the loop. The intraluminal addition of procaine or tetrodotoxin to the colonic loop inhibited the DCA-stimulated increase in MAPC activity (0.2 +/- 0.2 MAPC/h) (P less than 0.005). Intravenous administration of atropine or phentolamine also inhibited MAPC activity that had been stimulated by DCA (P less than 0.005). Pretreatment with 6-hydroxydopamine also inhibited an increase in MAPC activity. Propranolol, trimethaphan camsylate, or hexamethonium had no effect on DCA stimulation of MAPC activity. Although the concentration of bile salt increased in the mesenteric venous outflow from the colonic loop, the intravenous administration of bile salt did not stimulate colonic MAPC activity. These studies suggest: (a) the action of DCA on smooth muscle activity is a local phenomenon, (b) the increase in MAPC activity is dependent on intact cholinergic and alpha adrenergic neurons, and (c) an increase in the concentration of bile salts in the serum is not associated with an increase in colonic MAPC activity.

Authors

S J Shiff, R D Soloway, W J Snape Jr

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Total citations by year

Year: 2022 2021 2020 2019 2017 2014 2010 2009 2004 2001 1994 1991 1989 1987 1986 1985 1984 Total
Citations: 2 2 1 2 1 1 1 1 1 1 1 1 1 1 2 1 1 21
Citation information
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Citations to this article (21)

Title and authors Publication Year
Role of gut microbiota-derived signals in the regulation of gastrointestinal motility.
Zheng Z, Tang J, Hu Y, Zhang W
Frontiers in Medicine 2022
Bile Acid and Gut Microbiota in Irritable Bowel Syndrome.
Min YW, Rezaie A, Pimentel M
Journal of Neurogastroenterology and Motility 2022
Aberrant Gut-To-Brain Signaling in Irritable Bowel Syndrome - The Role of Bile Acids
RN Dhonnabháín, Q Xiao, D OMalley
Frontiers in Endocrinology 2021
The contribution of bile acid metabolism to the pathogenesis of Clostridioides difficile infection
BH Mullish, JR Allegretti
Therapeutic advances in gastroenterology 2021
Molecular Physiology of Bile Acid Signaling in Health, Disease and Aging
A Perino, H Demagny, LA Velazquez-Villegas, K Schoonjans
Physiological reviews 2020
Bile acid receptors and gastrointestinal functions
AL Ticho, P Malhotra, PK Dudeja, RK Gill, WA Alrefai
Liver Research 2019
Bile acid receptors and gastrointestinal functions
AL Ticho, P Malhotra, PK Dudeja, RK Gill, WA Alrefai
Liver Research 2019
The Effect of Deoxycholic Acid on Secretion and Motility in the Rat and Guinea Pig Large Intestine
NH Kim, JH Park, J Park, YH Joung
Journal of Neurogastroenterology and Motility 2017
Comprehensive Physiology
SN Cheuvront, RW Kenefick
Comprehensive Physiology 2014
Bile acids: short and long term effects in the intestine
A Bajor, PG Gillberg, H Abrahamsson
Scandinavian Journal of Gastroenterology 2010
OST alpha-OST beta: a key membrane transporter of bile acids and conjugated steroids
N Ballatori, N Li, F Fang, JL Boyer, WV Christian, CL Hammond
Frontiers in bioscience : a journal and virtual library 2009
Inhibition of nitric oxide synthesis potentiates the colonic permeability increase triggered by luminal bile acids
Y Sun, BM Fihn, M Jodal, H Sjovall
Acta Physiologica Scandinavica 2004
Differences in Ca 2+ signaling underlie age-specific effects of secretagogues on colonic Cl − transport
J Venkatasubramanian, N Selvaraj, M Carlos, S Skaluba, MM Rasenick, MC Rao
American journal of physiology. Cell physiology 2001
Intrahepatic cholestasis of pregnancy: A retrospective case-control study of perinatal outcome
AJ Rioseco, MB Ivankovic, A Manzur, F Hamed, SR Kato, JT Parer, AM Germain
American Journal of Obstetrics and Gynecology 1994
Effect of eating on colonic motility and transit in patients with functional diarrhea
G Bazzocchi, J Ellis, J Villanueva-Meyer, SN Reddy, I Mena, WJ Snape
Gastroenterology 1991
Pathogenesis of Functional Bowel Disease
WJ Snape
1989
Influence of sodium deoxycholate on morphology, net fluid transport and motility in the small intestine of the rat
L Karlström, G Hansson, M Jodal, O Lundgren
Acta Physiologica Scandinavica 1987
Technology illuminates a shadowy syndrome
WG Hardison
Gastroenterology 1986
Evidence of Involvement of the Enteric Nervous System in the Effects of Sodium Deoxycholate on Small-Intestinal Transepithelial Fluid Transport and Motility
L Karlström
Scandinavian Journal of Gastroenterology 1986
Comparison of intraluminal and intravenous mediators of colonic response to eating
S Levinson, M Bhasker, TR Gibson, R Morin, WJ Snape
Digestive Diseases and Sciences 1985
Mechanisms of Gastrointestinal Motility and Secretion
A Bennett, G Velo
1984

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