Appukuttan S, Brain KL, Manchanda R. (2015). A computational model of urinary bladder smooth muscle syncytium : validation and investigation of electrical properties. Journal of computational neuroscience. 38 [PubMed]

See more from authors: Appukuttan S · Brain KL · Manchanda R

References and models cited by this paper

HODGKIN AL, RUSHTON WA. (1946). The electrical constants of a crustacean nerve fibre. Proceedings of the Royal Society of Medicine. 134 [PubMed]

Hashitani H, Yanai Y, Suzuki H. (2004). Role of interstitial cells and gap junctions in the transmission of spontaneous Ca2+ signals in detrusor smooth muscles of the guinea-pig urinary bladder. The Journal of physiology. 559 [PubMed]

Hayase M, Hashitani H, Kohri K, Suzuki H. (2009). Role of K+ channels in regulating spontaneous activity in detrusor smooth muscle in situ in the mouse bladder. The Journal of urology. 181 [PubMed]

Hines ML, Carnevale NT. (1997). The NEURON simulation environment. Neural computation. 9 [PubMed]

Hines ML, Carnevale NT. (2000). Expanding NEURON's repertoire of mechanisms with NMODL. Neural computation. 12 [PubMed]

Hines ML, Carnevale NT. (2001). NEURON: a tool for neuroscientists. The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry. 7 [PubMed]

Holman ME, Taylor GS, Tomita T. (1977). Some properties of the smooth muscle of mouse vas deferens. The Journal of physiology. 266 [PubMed]

Jack JJ, Redman SJ. (1971). The propagation of transient potentials in some linear cable structures. The Journal of physiology. 215 [PubMed]

Johnston D, Wu SMS. (1995). Foundations of Cellular Neurophysiology with simulations and illustrations by Richard Gray Foundations of Cellular Neurophysiology.

Katz B. (1948). The electrical properties of the muscle fibre membrane Proc Royal Soc B. 135

Keener JP. (1991). The effects of discrete gap junction coupling on propagation in myocardium. Journal of theoretical biology. 148 [PubMed]

Manchanda R. (1995). Membrane current and potential change during neurotransmission in smooth muscle. Curr. Sci.. 69(2)

Meng E, Young JS, Brading AF. (2008). Spontaneous activity of mouse detrusor smooth muscle and the effects of the urothelium. Neurourology and urodynamics. 27 [PubMed]

Moreno AP, Sáez JC, Fishman GI, Spray DC. (1994). Human connexin43 gap junction channels. Regulation of unitary conductances by phosphorylation. Circulation research. 74 [PubMed]

Neuhaus J, Wolburg H, Hermsdorf T, Stolzenburg JU, Dorschner W. (2002). Detrusor smooth muscle cells of the guinea-pig are functionally coupled via gap junctions in situ and in cell culture. Cell and tissue research. 309 [PubMed]

Palani D, Ghildyal P, Manchanda R. (2006). Effects of carbenoxolone on syncytial electrical properties and junction potentials of guinea-pig vas deferens. Naunyn-Schmiedeberg's archives of pharmacology. 374 [PubMed]

Petkov GV. (2011). Role of potassium ion channels in detrusor smooth muscle function and dysfunction. Nature reviews. Urology. 9 [PubMed]

Pongrácz F. (1985). The function of dendritic spines: a theoretical study. Neuroscience. 15 [PubMed]

Purves RD. (1976). Current flow and potential in a three-dimensional syncytium. Journal of theoretical biology. 60 [PubMed]

Rall W. (1964). Theoretical significance of dendritic trees for neuronal input output relations Neural Theory and Modeling.

Sourav S, Manchanda R. (2000). Influence of the size of syncytial units on synaptic potentials in smooth muscle. Medical & biological engineering & computing. 38 [PubMed]

Stjärne L, Stjärne E. (1995). Geometry, kinetics and plasticity of release and clearance of ATP and noradrenaline as sympathetic cotransmitters: roles for the neurogenic contraction. Progress in neurobiology. 47 [PubMed]

Sui GP et al. (2003). Impedance measurements and connexin expression in human detrusor muscle from stable and unstable bladders. BJU international. 92 [PubMed]

Sui GP, Wu C, Fry CH. (2001). The electrophysiological properties of cultured and freshly isolated detrusor smooth muscle cells. The Journal of urology. 165 [PubMed]

TASAKI I, HAGIWARA S. (1957). Capacity of muscle fiber membrane. The American journal of physiology. 188 [PubMed]

Tanaka I, Sasaki Y. (1966). On the electrotonic spread in cardiac muscle of the mouse. The Journal of general physiology. 49 [PubMed]

Tomita T. (1966). Membrane capacity and resistance of mammalian smooth muscle. Journal of theoretical biology. 12 [PubMed]

Tomita T. (1967). Current spread in the smooth muscle of the guinea-pig vas deferens. The Journal of physiology. 189 [PubMed]

Turale N, Devulapalli A, Manchanda R, Moudgalya K, Sivakumar G. (2003). Simulation framework for electrophysiological networks: effect of syncytial properties on smooth-muscle synaptic potentials. Medical & biological engineering & computing. 41 [PubMed]

Tuttle JB, Steers WD. (2009). Role of ion channels in bladder function and voiding disorders Current Bladder Dysfunction Reports. 4(3)

Wang XC, Maake D, Hauri JH. (2001). Occurrence of gap junctions in the urinary bladder European Urology. 39(5)

Young JS, Brain KL, Cunnane TC. (2007). The origin of the skewed amplitude distribution of spontaneous excitatory junction potentials in poorly coupled smooth muscle cells. Neuroscience. 145 [PubMed]

Young JS, Meng E, Cunnane TC, Brain KL. (2008). Spontaneous purinergic neurotransmission in the mouse urinary bladder. The Journal of physiology. 586 [PubMed]

References and models that cite this paper

Appukuttan S, Brain KL, Manchanda R. (2017). Modeling extracellular fields for a three-dimensional network of cells using NEURON. Journal of neuroscience methods. 290 [PubMed]

Appukuttan S, Sathe R, Manchanda R. (2016). Influence of gap junction subtypes on passive and active electrical properties of syncytial tissues 2016 International Conference on Systems in Medicine and Biology (ICSMB).

Mahapatra C, Brain KL, Manchanda R. (2018). A biophysically constrained computational model of the action potential of mouse urinary bladder smooth muscle. PloS one. 13 [PubMed]

This website requires cookies and limited processing of your personal data in order to function. By continuing to browse or otherwise use this site, you are agreeing to this use. See our Privacy policy and how to cite and terms of use.