Artigo Revisado por pares

Simulation of the electrical and mechanical gradient of the small intestine

1968; American Physiological Society; Volume: 214; Issue: 4 Linguagem: Inglês

10.1152/ajplegacy.1968.214.4.749

ISSN

2163-5773

Autores

Nelsen Ts, JC Becker,

Tópico(s)

Gastrointestinal motility and disorders

Resumo

ARTICLESSimulation of the electrical and mechanical gradient of the small intestineTS Nelsen, and JC BeckerTS Nelsen, and JC BeckerPublished Online:01 Apr 1968https://doi.org/10.1152/ajplegacy.1968.214.4.749MoreSectionsPDF (2 MB)Download PDF ToolsExport citationAdd to favoritesGet permissionsTrack citations ShareShare onFacebookTwitterLinkedInWeChat Previous Back to Top Next Download PDF FiguresReferencesRelatedInformationCited ByThe gastric conduction system in health and disease: a translational reviewGregory O'Grady, Armen A. Gharibans, Peng Du, and Jan D. Huizinga27 October 2021 | American Journal of Physiology-Gastrointestinal and Liver Physiology, Vol. 321, No. 5Current applications of mathematical models of the interstitial cells of Cajal in the gastrointestinal tract7 October 2020 | WIREs Mechanisms of Disease, Vol. 13, No. 2A Formal Approach for Scalable Simulation of Gastric ICC ElectrophysiologyIEEE Transactions on Biomedical Engineering, Vol. 66, No. 12Venous Vasomotion11 June 2019The virtual intestine: in silico modeling of small intestinal electrophysiology and motility and the applications12 November 2015 | WIREs Systems Biology and Medicine, Vol. 8, No. 1A Stochastic Algorithm for Generating Realistic Virtual Interstitial Cell of Cajal NetworksIEEE Transactions on Biomedical Engineering, Vol. 62, No. 8Effects of gap junction inhibition on contraction waves in the murine small intestine in relation to coupled oscillator theorySean P. Parsons and Jan D. Huizinga15 February 2015 | American Journal of Physiology-Gastrointestinal and Liver Physiology, Vol. 308, No. 4Slow wave conduction patterns in the stomach: from Waller's Foundations to Current Challenges15 November 2014 | Acta Physiologica, Vol. 213, No. 2An Improved Understanding of Gut Function through High-Resolution Mapping and Multiscale Computational Modeling of the Gastrointestinal TractMapping and Modeling Gastrointestinal Bioelectricity: From Engineering Bench to BedsideL. K. Cheng, P. Du, and G. O'Grady1 September 2013 | Physiology, Vol. 28, No. 5Modelling Tissue Electrophysiology in the GI Tract: Past, Present and Future2 June 2013The IUPS Physiome Project: A Worldwide Systems Biology Initiative10 October 2011Application of Electrogastrography to Public HealthNippon Eiseigaku Zasshi (Japanese Journal of Hygiene), Vol. 66, No. 1Generation and propagation of gastric slow wavesClinical and Experimental Pharmacology and Physiology, Vol. 37, No. 4On the electrical intestine turbulence induced by temperature changes10 February 2010 | Physical Biology, Vol. 7, No. 1Gastrointestinal system15 January 2010 | WIREs Systems Biology and Medicine, Vol. 2, No. 1Colonic Motility: From Bench Side to BedsideColloquium Series on Integrated Systems Physiology: From Molecule to Function, Vol. 2, No. 1Origin and propagation of individual slow waves along the intact feline small intestine25 January 2008 | Experimental Physiology, Vol. 93, No. 3Pacemaking through Ca2+ Stores Interacting as Coupled Oscillators via Membrane DepolarizationBiophysical Journal, Vol. 92, No. 11Multiscale modelling of human gastric electric activity: can the electrogastrogram detect functional electrical uncoupling?3 March 2006 | Experimental Physiology, Vol. 91, No. 2Manometric evaluation of jejunal limb after total gastrectomy and Roux-Orr anastomosis for gastric cancer6 December 2005 | British Journal of Surgery, Vol. 77, No. 9Ellipsoidal electrogastrographic forward modelling7 September 2005 | Physics in Medicine and Biology, Vol. 50, No. 18An anatomical model of the gastric system for producing bioelectric and biomagnetic fields23 July 2004 | Physiological Measurement, Vol. 25, No. 4Modelling gastrointestinal bioelectric activityProgress in Biophysics and Molecular Biology, Vol. 85, No. 2-3A Theoretical Model of Slow Wave Regulation Using Voltage-Dependent Synthesis of Inositol 1,4,5-TrisphosphateBiophysical Journal, Vol. 83, No. 4A Simple Nonlinear Model of Electrical Activity in the IntestineJournal of Theoretical Biology, Vol. 204, No. 1Biomagnetic Research in GastroenterologyThe Gastrointestinal System11 January 2010The slow wave does not propagate across the gastroduodenal junction in the isolated feline preparation4 January 2002 | Neurogastroenterology & Motility, Vol. 10, No. 4A 100-year perspective on gastrointestinal motilityJ. H. Szurszewski1 March 1998 | American Journal of Physiology-Gastrointestinal and Liver Physiology, Vol. 274, No. 3Wave Propagation and Wave Pattern Formation in Nonuniform Reaction-Diffusion SystemsMathematical modeling of the peristaltic reflex: A numerical experimentJournal of Mathematical Sciences, Vol. 71, No. 6Spectral analysis of intraluminal pressure in the anastomosed ileal segment of the rat in vitroJournal of the Autonomic Nervous System, Vol. 47, No. 1-2Interstitial cells of Cajal: are they major players in control of gastrointestinal motility?28 June 2008 | Neurogastroenterology & Motility, Vol. 4, No. 1Gastric emptying and myoelectric activity following Roux-en-Y gastrojejunostomyJournal of Surgical Research, Vol. 49, No. 5Computer-aided mode analysis of coupled nonlinear oscillatorsIEEE Transactions on Circuits and Systems, Vol. 37, No. 2Gastrointestinal Physiology, 1895–1975: Motility1 January 2011Electrophysiology of dissociated gastrointestinal muscle cells1 January 2011Electrophysiology of the gastric musculature1 January 2011Electrophysiology of the intestinal musculature1 January 2011In vivo myoelectric activity: methods, analysis, and interpretation1 January 2011Determinants of gastric emptying and transit in the small intestine1 January 2011Singular perturbation theory of traveling waves in excitable media (a review)Physica D: Nonlinear Phenomena, Vol. 32, No. 3The behavior of rings of coupled oscillatorsJournal of Mathematical Biology, Vol. 23, No. 1A model of extracellular waveshape of the gastric electrical activityMedical & Biological Engineering & Computing, Vol. 23, No. 1Mode analysis of a tubular structure of coupled non-linear oscillators for digestive-tract modellingBulletin of Mathematical Biology, Vol. 47, No. 1Nausea, Vomiting, and Abdominal Pain After Roux-en-Y Anastomosis: Motility of the Jejunal LimbGastroenterology, Vol. 88, No. 1Interaction of coupled nonlinear oscillators having different intrinsic resting levelsJournal of Theoretical Biology, Vol. 106, No. 1On a Population of Labile Synthesized Relaxation OscillatorsIEEE Transactions on Biomedical Engineering, Vol. BME-30, No. 11Multioscillator simulator for gastrointestinal electrical activity modellingMedical & Biological Engineering & Computing, Vol. 21, No. 5Analysis of limit-cycle conditions in intercoupled relay oscillators with reference to gastrointestinal modellingBulletin of Mathematical Biology, Vol. 45, No. 2BVP models: An adjustment to express a mechanism of inactivationBiological Cybernetics, Vol. 44, No. 3Electrophysiology of Intestinal Smooth MuscleTarget patterns in a realistic model of the Belousov–Zhabotinskii reactionThe Journal of Chemical Physics, Vol. 73, No. 5Electronic Modeling of Slow-Waves and Spike-Activity in Intestinal TissueIEEE Transactions on Biomedical Engineering, Vol. BME-27, No. 7Pulse Synchronization of Intestinal Myoelectrical ModelsIEEE Transactions on Biomedical Engineering, Vol. BME-27, No. 4Analysis and modelling of amplitude changes in human duodenal slow waves15 February 2001 | Clinical Physics and Physiological Measurement, Vol. 1, No. 1Propagation and entrainment of slow waves in cat small intestineJ. A. Connor, A. W. Mangel, and B. Nelson1 November 1979 | American Journal of Physiology-Cell Physiology, Vol. 237, No. 5Entrainment boundaries of relaxation oscillators coupled by low pass filters22 September 2008 | Journal of Interdisciplinary Cycle Research, Vol. 10, No. 3Effect of bethanechol, gastrin I, or cholecystokinin on myoelectrical activity.W J Snape, and S Cohen1 April 1979 | American Journal of Physiology-Endocrinology and Metabolism, Vol. 236, No. 4Frequency transients in a coupled oscillator model of intestinal myoelectrical activityComputers in Biology and Medicine, Vol. 9, No. 2A computer system for quantitative analysis of gastrointestinal signalsComputers in Biology and Medicine, Vol. 9, No. 4Estimation of frequencies of gastrointestinal electrical rhythms using autoregressive modellingMedical & Biological Engineering & Computing, Vol. 16, No. 3Spectral analysis of coupled non-linear oscillators under modulation conditions with reference to intestinal modellingComputers in Biology and Medicine, Vol. 8, No. 2Relaxation oscillatorsPHENOMENOLOGICAL INVESTIGATION OF A DISTRIBUTED PARAMETER MODEL FOR COORDINATING THE MECHANICAL ACTIVITY OF THE MAMMALIAN GUTStably Rotating Patterns of Reaction and DiffusionHuman colonic myoelectric activity in response to prostigmin and the gastrointestinal hormonesThe American Journal of Digestive Diseases, Vol. 22, No. 10The stability of entrainment conditions forRLC coupled van der pol oscillators used as a model for intestinal electrical rhythmsBulletin of Mathematical Biology, Vol. 39, No. 3Phenomenological Investigation of a Distributed Parameter Model for Coordinating the Mechanical Activity of the Mammalian GutIFAC Proceedings Volumes, Vol. 10, No. 5Mathematical Modeling of the Colorectal Myoelectrical Activity in HumansIEEE Transactions on Biomedical Engineering, Vol. BME-23, No. 2Stability of entrainment conditions for a particular form of mutually coupled Van der Pol oscillatorsIEEE Transactions on Circuits and Systems, Vol. 23, No. 2Action of coherin on the basic electrical rhythm and propagation in the isolated perfused canine jejunumJournal of Surgical Research, Vol. 19, No. 6Electrical Stimulation of Small Intestinal Electrical Control ActivityGastroenterology, Vol. 69, No. 3Gastrointestinal Electrical Activity: TerminologyGastroenterology, Vol. 68, No. 6Myoelectric Control of the ColonGastroenterology, Vol. 68, No. 3Nerve—Muscle Preparations of the Small IntestineModels of Smooth Muscle Electrical ActivityA mathematical model of the slow-wave electrical activity of the human small intestineMedical & Biological Engineering, Vol. 12, No. 6The effect of stimulation on the myoelectrical activity of the rectosigmoid in manGut, Vol. 15, No. 8Electrical activity of gastrointestinal smooth muscle.Gut, Vol. 15, No. 8Analytical solution of large numbers of mutually coupled nearly sinusoidal oscillatorsIEEE Transactions on Circuits and Systems, Vol. 21, No. 2Electrical and contractile activities of the small intestine of the catThe American Journal of Digestive Diseases, Vol. 19, No. 2The effects of humoral agents on the myoelectrical activity of the terminal ileumGut, Vol. 13, No. 7Electrical Slow Wave of the Proximal Colon of the Cat in DiarrheaGastroenterology, Vol. 62, No. 6The ultrastructural bases for coordination of intestinal motilityThe American Journal of Digestive Diseases, Vol. 17, No. 4Propagation and electrical entrainment of intestinal slow wavesThe American Journal of Digestive Diseases, Vol. 17, No. 4Circumferential propagation of the canine gastric pacesetter potentialThe American Journal of Digestive Diseases, Vol. 17, No. 4Electrical activity in the gastroduodenal area—Slow waves in the proximal duodenum a comparison of man and dogThe American Journal of Digestive Diseases, Vol. 17, No. 4Electrical activity of the stomach and upper intestineThe American Journal of Digestive Diseases, Vol. 16, No. 7The possible role of close contacts (nexuses) in the propagation of control electrical activity in the stomach and small intestineThe American Journal of Digestive Diseases, Vol. 16, No. 7Computer analysis and simulation of human gastroduodenal electrical activityMedical & Biological Engineering, Vol. 9, No. 4A theory of integrated gastrointestinal motor activity based on the chain oscillator modelThe American Journal of Digestive Diseases, Vol. 16, No. 6Localization of the duodenal pacemaker and its role in the organization of duodenal myoelectric activityGut, Vol. 12, No. 1The effects of ischemia on intestinal nerves and electrical slow wavesThe American Journal of Digestive Diseases, Vol. 15, No. 11Exploring biological signalsAnalysis of cluster evolution in a model of intestine electrical activityElectrical activity of small intestinal smooth muscleThe American Journal of Surgery, Vol. 117, No. 6On-line generation of a Joint Interval Histogram from slow rhythmic biological potentialsMedical & Biological Engineering, Vol. 6, No. 4 More from this issue > Volume 214Issue 4April 1968Pages 749-757 Copyright & PermissionsCopyright © 1968 by American Physiological Societyhttps://doi.org/10.1152/ajplegacy.1968.214.4.749PubMed5642936History Published online 1 April 1968 Published in print 1 April 1968 Metrics

Referência(s)