Barth BB, Henriquez CS, Grill WM, Shen X. (2017). Electrical stimulation of gut motility guided by an in silico model. Journal of neural engineering. 14 [PubMed]

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References and models cited by this paper

Bayliss WM, Starling EH. (1899). The movements and innervation of the small intestine. The Journal of physiology. 24 [PubMed]

Bornstein JC et al. (1997). Computer simulation of the enteric neural circuits mediating an ascending reflex: roles of fast and slow excitatory outputs of sensory neurons. Journal of the autonomic nervous system. 64 [PubMed]

Bornstein JC, Marks KA, Foong JP, Gwynne RM, Wang ZH. (2010). Nitric oxide enhances inhibitory synaptic transmission and neuronal excitability in Guinea-pig submucous plexus. Frontiers in neuroscience. 4 [PubMed]

Bossetti CA, Birdno MJ, Grill WM. (2008). Analysis of the quasi-static approximation for calculating potentials generated by neural stimulation. Journal of neural engineering. 5 [PubMed]

Bostock H, Sears TA, Sherratt RM. (1983). The spatial distribution of excitability and membrane current in normal and demyelinated mammalian nerve fibres. The Journal of physiology. 341 [PubMed]

Brette R, Stimberg M, Goodman DFM, Benichoux V. (2013). Brian 2 - the second coming: spiking neural network simulation in Python with code generation BMC Neurosci.. 14

Brookes SJ, Meedeniya AC, Jobling P, Costa M. (1997). Orally projecting interneurones in the guinea-pig small intestine. The Journal of physiology. 505 ( Pt 2) [PubMed]

Campbell I. (2012). Gut motility and its control Anaesth Intensive Care Med. 13

Carvajal JA, Germain AM, Huidobro-Toro JP, Weiner CP. (2000). Molecular mechanism of cGMP-mediated smooth muscle relaxation. Journal of cellular physiology. 184 [PubMed]

Chambers JD, Bornstein JC, Thomas EA. (2008). Insights into mechanisms of intestinal segmentation in guinea pigs: a combined computational modeling and in vitro study. American journal of physiology. Gastrointestinal and liver physiology. 295 [PubMed]

Chambers JD, Bornstein JC, Thomas EA. (2011). Multiple neural oscillators and muscle feedback are required for the intestinal fed state motor program. PloS one. 6 [PubMed]

Chambers JD, Thomas EA, Bornstein JC. (2014). Mathematical modelling of enteric neural motor patterns. Clinical and experimental pharmacology & physiology. 41 [PubMed]

Cheng LK, Du P, O'Grady G. (2013). Mapping and modeling gastrointestinal bioelectricity: from engineering bench to bedside. Physiology (Bethesda, Md.). 28 [PubMed]

Chey WD, Kurlander J, Eswaran S. (2015). Irritable bowel syndrome: a clinical review. JAMA. 313 [PubMed]

Connor JA, Stevens CF. (1971). Prediction of repetitive firing behaviour from voltage clamp data on an isolated neurone soma. The Journal of physiology. 213 [PubMed]

Drion G, O'Leary T, Marder E. (2015). Ion channel degeneracy enables robust and tunable neuronal firing rates. Proceedings of the National Academy of Sciences of the United States of America. 112 [PubMed]

Du P, Paskaranandavadivel N, Angeli TR, Cheng LK, O'Grady G. (2016). The virtual intestine: in silico modeling of small intestinal electrophysiology and motility and the applications. Wiley interdisciplinary reviews. Systems biology and medicine. 8 [PubMed]

Du P et al. (2011). A preliminary model of gastrointestinal electromechanical coupling. IEEE transactions on bio-medical engineering. 58 [PubMed]

Edwards FR, Hirst GD. (2003). Mathematical description of regenerative potentials recorded from circular smooth muscle of guinea pig antrum. American journal of physiology. Gastrointestinal and liver physiology. 285 [PubMed]

Edwards FR, Hirst GD. (2005). An electrical description of the generation of slow waves in the antrum of the guinea-pig. The Journal of physiology. 564 [PubMed]

Edwards FR, Hirst GD. (2006). An electrical analysis of slow wave propagation in the guinea-pig gastric antrum. The Journal of physiology. 571 [PubMed]

Edwards FR, Hirst GD, Suzuki H. (1999). Unitary nature of regenerative potentials recorded from circular smooth muscle of guinea-pig antrum. The Journal of physiology. 519 Pt 1 [PubMed]

Famm K, Litt B, Tracey KJ, Boyden ES, Slaoui M. (2013). Drug discovery: a jump-start for electroceuticals. Nature. 496 [PubMed]

Furness JB. (2006). The Enteric Nervous System.

Furness JB, Kunze WA, Bertrand PP, Clerc N, Bornstein JC. (1998). Intrinsic primary afferent neurons of the intestine. Progress in neurobiology. 54 [PubMed]

Geddes LA, Bourland JD. (1985). The strength-duration curve. IEEE transactions on bio-medical engineering. 32 [PubMed]

Gershon MD. (1999). The enteric nervous system: a second brain. Hospital practice (1995). 34 [PubMed]

Heredia DJ et al. (2013). Important role of mucosal serotonin in colonic propulsion and peristaltic reflexes: in vitro analyses in mice lacking tryptophan hydroxylase 1. The Journal of physiology. 591 [PubMed]

Hirst GD, Garcia-Londoño AP, Edwards FR. (2006). Propagation of slow waves in the guinea-pig gastric antrum. The Journal of physiology. 571 [PubMed]

Hirst GD, Holman ME, McKirdy HC. (1975). Two descending nerve pathways activated by distension of guinea-pig small intestine. The Journal of physiology. 244 [PubMed]

Huizinga JD, Chen JH. (2014). The myogenic and neurogenic components of the rhythmic segmentation motor patterns of the intestine. Frontiers in neuroscience. 8 [PubMed]

Huizinga JD et al. (2015). Motor patterns of the small intestine explained by phase-amplitude coupling of two pacemaker activities: the critical importance of propagation velocity. American journal of physiology. Cell physiology. 309 [PubMed]

Huizinga JD, Shin A, Chow E. (1988). Electrical coupling and pacemaker activity in colonic smooth muscle. The American journal of physiology. 255 [PubMed]

Imtiaz MS, Smith DW, van Helden DF. (2002). A theoretical model of slow wave regulation using voltage-dependent synthesis of inositol 1,4,5-trisphosphate. Biophysical journal. 83 [PubMed]

Lin AS, Buist ML, Smith NP, Pullan AJ. (2006). Modelling slow wave activity in the small intestine. Journal of theoretical biology. 242 [PubMed]

Martellucci J, Valeri A. (2014). Colonic electrical stimulation for the treatment of slow-transit constipation: a preliminary pilot study. Surgical endoscopy. 28 [PubMed]

Mayer CJ, Wood JD. (1975). Properties of mechanosensitive neurons within Auerbach's plexus of the small intestine of the cat. Pflugers Archiv : European journal of physiology. 357 [PubMed]

Mayer EA. (2011). Gut feelings: the emerging biology of gut-brain communication. Nature reviews. Neuroscience. 12 [PubMed]

Mazzuoli G, Schemann M. (2012). Mechanosensitive enteric neurons in the myenteric plexus of the mouse intestine. PloS one. 7 [PubMed]

McClain J et al. (2014). Ca2+ responses in enteric glia are mediated by connexin-43 hemichannels and modulate colonic transit in mice. Gastroenterology. 146 [PubMed]

Otterson MF, Sarna SK. (1994). Neural control of small intestinal giant migrating contractions. The American journal of physiology. 266 [PubMed]

Ozaki H, Stevens RJ, Blondfield DP, Publicover NG, Sanders KM. (1991). Simultaneous measurement of membrane potential, cytosolic Ca2+, and tension in intact smooth muscles. The American journal of physiology. 260 [PubMed]

Parsons SP, Huizinga JD. (2015). Effects of gap junction inhibition on contraction waves in the murine small intestine in relation to coupled oscillator theory. American journal of physiology. Gastrointestinal and liver physiology. 308 [PubMed]

Permezel NC, Webling DD. (1971). The length and mucosal surface area of the small and large gut in young rats. Journal of anatomy. 108 [PubMed]

Randhawa S, Nazeran H, Mayo R, Brookes SJ, Costa M. (1996). The enteric neural network and three dimensional computer modelling of intestinal peristalsis. Australasian physical & engineering sciences in medicine. 19 [PubMed]

Sanders KM, Ward SM, Hennig GW. (2016). Problems with extracellular recording of electrical activity in gastrointestinal muscle. Nature reviews. Gastroenterology & hepatology. 13 [PubMed]

Schultz T, Daniel V, Daniel EE. (2003). Does ICC pacing require functional gap junctions between ICC and smooth muscle in mouse intestine? Neurogastroenterology and motility : the official journal of the European Gastrointestinal Motility Society. 15 [PubMed]

Spencer N, Walsh M, Smith TK. (1999). Does the guinea-pig ileum obey the 'law of the intestine'? The Journal of physiology. 517 ( Pt 3) [PubMed]

Spencer NJ, Dinning PG, Brookes SJ, Costa M. (2016). Insights into the mechanisms underlying colonic motor patterns. The Journal of physiology. 594 [PubMed]

Spencer NJ, Hennig GW, Smith TK. (2001). Spatial and temporal coordination of junction potentials in circular muscle of guinea-pig distal colon. The Journal of physiology. 535 [PubMed]

Stebbing MJ, Bornstein JC. (1996). Electrophysiological mapping of fast excitatory synaptic inputs to morphologically and chemically characterized myenteric neurons of guinea-pig small intestine. Neuroscience. 73 [PubMed]

Tack J, Talley NJ. (2013). Functional dyspepsia--symptoms, definitions and validity of the Rome III criteria. Nature reviews. Gastroenterology & hepatology. 10 [PubMed]

Takeda Y, Ward SM, Sanders KM, Koh SD. (2005). Effects of the gap junction blocker glycyrrhetinic acid on gastrointestinal smooth muscle cells. American journal of physiology. Gastrointestinal and liver physiology. 288 [PubMed]

Thomas EA, Bertrand PP, Bornstein JC. (1999). Genesis and role of coordinated firing in a feedforward network: a model study of the enteric nervous system. Neuroscience. 93 [PubMed]

Thomas EA, Bornstein JC. (2003). Inhibitory cotransmission or after-hyperpolarizing potentials can regulate firing in recurrent networks with excitatory metabotropic transmission. Neuroscience. 120 [PubMed]

Thomas EA, Sjövall H, Bornstein JC. (2004). Computational model of the migrating motor complex of the small intestine. American journal of physiology. Gastrointestinal and liver physiology. 286 [PubMed]

Tong WC et al. (2011). A computational model of the ionic currents, Ca2+ dynamics and action potentials underlying contraction of isolated uterine smooth muscle. PloS one. 6 [PubMed]

Vetuschi A et al. (2006). Smad3-null mice lack interstitial cells of Cajal in the colonic wall. European journal of clinical investigation. 36 [PubMed]

Ward SM, Baker SA, de Faoite A, Sanders KM. (2003). Propagation of slow waves requires IP3 receptors and mitochondrial Ca2+ uptake in canine colonic muscles. The Journal of physiology. 549 [PubMed]

Zanninelli G et al. (2006). Smad3 knock-out mice as a useful model to study intestinal fibrogenesis. World journal of gastroenterology. 12 [PubMed]

van Helden DF, Imtiaz MS. (2003). Ca2+ phase waves: a basis for cellular pacemaking and long-range synchronicity in the guinea-pig gastric pylorus. The Journal of physiology. 548 [PubMed]

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