Tabak J, Moore LE. (1998). Simulation and parameter estimation study of a simple neuronal model of rhythm generation: role of NMDA and non-NMDA receptors. Journal of computational neuroscience. 5 [PubMed]

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References and models cited by this paper

Ascher P, Nowak L. (1988). The role of divalent cations in the N-methyl-D-aspartate responses of mouse central neurones in culture. The Journal of physiology. 399 [PubMed]

Bower JM, Beeman D. (1995). The Book of GENESIS: Exploring Realistic Neural Models with the GEneral NEural SImulation System..

Brodin L et al. (1991). Computer simulations of N-methyl-D-aspartate receptor-induced membrane properties in a neuron model. Journal of neurophysiology. 66 [PubMed]

Byrne GD, Hindmarsh AC. (1975). A polyalgorithm for the numerical solution of ordinary differential equations Acm Trans Math Software. 1

Dale N. (1985). Reciprocal inhibitory interneurones in the Xenopus embryo spinal cord. The Journal of physiology. 363 [PubMed]

Dale N. (1991). The Isolation and Identification of Spinal Neurons That Control Movement in the Xenopus Embryo. The European journal of neuroscience. 3 [PubMed]

Dale N. (1995). Kinetic characterization of the voltage-gated currents possessed by Xenopus embryo spinal neurons. The Journal of physiology. 489 ( Pt 2) [PubMed]

Dale N. (1995). Experimentally derived model for the locomotor pattern generator in the Xenopus embryo. The Journal of physiology. 489 ( Pt 2) [PubMed]

Dale N, Roberts A. (1985). Dual-component amino-acid-mediated synaptic potentials: excitatory drive for swimming in Xenopus embryos. The Journal of physiology. 363 [PubMed]

Dale N, Roberts A, Soffe SR. (1986). Spinal interneurones and swimming in frog embryos Neurobiology Of Vertebrate Locomotion.

Dale N, Roberts A, Soffe_sr . (1984). Sustained responses to brief stimuli: Swimming in Xenopus embryos J Exper Biol. 112

Foster WR, Ungar LH, Schwaber JS. (1993). Significance of conductances in Hodgkin-Huxley models. Journal of neurophysiology. 70 [PubMed]

HODGKIN AL, HUXLEY AF. (1952). A quantitative description of membrane current and its application to conduction and excitation in nerve. The Journal of physiology. 117 [PubMed]

Kahn JA, Roberts A. (1982). The central nervous origin of the swimming motor pattern in embryos of Xenopus laevis. The Journal of experimental biology. 99 [PubMed]

Kahn JA, Roberts A. (1982). Experiments on the central pattern generator for swimming in amphibian embryos. Philosophical transactions of the Royal Society of London. Series B, Biological sciences. 296 [PubMed]

Kirkpatrick S, Gelatt CD, Vecchi MP. (1983). Optimization by simulated annealing. Science (New York, N.Y.). 220 [PubMed]

Mayer ML, Westbrook GL, Guthrie PB. (1984). Voltage-dependent block by Mg2+ of NMDA responses in spinal cord neurones. Nature. 309 [PubMed]

Moore LE, Buchanan JT, Murphey CR. (1995). Localization and interaction of N-methyl-D-aspartate and non-N-methyl-D-aspartate receptors of lamprey spinal neurons. Biophysical journal. 68 [PubMed]

Moore LE, Christensen BN. (1985). White noise analysis of cable properties of neuroblastoma cells and lamprey central neurons. Journal of neurophysiology. 53 [PubMed]

Moore LE, Hill RH, Grillner S. (1993). Voltage-clamp frequency domain analysis of NMDA-activated neurons. The Journal of experimental biology. 175 [PubMed]

Murphey CR, Moore LE, Buchanan JT. (1995). Quantitative analysis of electrotonic structure and membrane properties of NMDA-activated lamprey spinal neurons. Neural computation. 7 [PubMed]

Murphey CR, Moore LE, Tabak J, Buchanan JT. (1996). Estimation of membrane properties from step current measurements of Xenopus neurons Computational Neuroscience.

Nelder JA, Mead J. (1965). A simplex algorithm for function minimization Computer J. 7

Nowak L, Bregestovski P, Ascher P, Herbet A, Prochiantz A. (1984). Magnesium gates glutamate-activated channels in mouse central neurones. Nature. 307 [PubMed]

Pakdaman K, Vibert JF, Azmy N. (1994). Interneural delay modification synchronizes biologically plausible neural networks Neural Networks. 7

Perrins R, Roberts A. (1995). Cholinergic contribution to excitation in a spinal locomotor central pattern generator in Xenopus embryos. Journal of neurophysiology. 73 [PubMed]

Press WH, Teukolsky SA, Flannery BP, Vellerling WT. (1992). Numerical Recipes In C: The Art Of Scientific Computing.

Prime L. (1994). Role des recepteurs au glutamate dans le reseau neuronal de la locomotion chez l embryon de x enope Memoire De Dea Neurosciences Universite Paris Vi.

Rinzel J, Wang XJ. (1992). Alternating and synchronous rhythms in reciprocally inhibitory model neurons Neural Comput. 4

Roberts A. (1990). How does a nervous system produce behaviour? A case study in neurobiology Sci Progress.

Roberts A, Tunstall MJ. (1990). Mutual Re-excitation with Post-Inhibitory Rebound: A Simulation Study on the Mechanisms for Locomotor Rhythm Generation in the Spinal Cord of Xenopus Embryos. The European journal of neuroscience. 2 [PubMed]

Roberts A, Tunstall MJ, Wolf E. (1995). Properties of networks controlling locomotion and significance of voltage dependency of NMDA channels: stimulation study of rhythm generation sustained by positive feedback. Journal of neurophysiology. 73 [PubMed]

Sands SB, Barish ME. (1989). A quantitative description of excitatory amino acid neurotransmitter responses on cultured embryonic Xenopus spinal neurons. Brain research. 502 [PubMed]

Schöner G, Kelso JA. (1988). Dynamic pattern generation in behavioral and neural systems. Science (New York, N.Y.). 239 [PubMed]

Sejnowski TJ, Destexhe A, Mainen Z. (1994). An efficient method for computing synaptic conductances based on a kinetic model of receptor binding Neural Comput. 6

Sillar KT, Simmers AJ. (1994). Electrical coupling and intrinsic neuronal oscillations in Rana temporaria spinal cord. European journal of morphology. 32 [PubMed]

Sillar KT, Simmers AJ. (1994). 5HT induces NMDA receptor-mediated intrinsic oscillations in embryonic amphibian spinal neurons. Proceedings. Biological sciences. 255 [PubMed]

Sillar KT, Simmers AJ, Wedderburn JF. (1992). The post-embryonic development of cell properties and synaptic drive underlying locomotor rhythm generation in Xenopus larvae. Proceedings. Biological sciences. 249 [PubMed]

Sillar KT, Wedderburn JF, Simmers AJ. (1991). The development of swimming rhythmicity in post-embryonic Xenopus laevis. Proceedings. Biological sciences. 246 [PubMed]

Sillar KT, Wedderburn JF, Simmers AJ. (1992). Modulation of swimming rhythmicity by 5-hydroxytryptamine during post-embryonic development in Xenopus laevis. Proceedings. Biological sciences. 250 [PubMed]

Skinner FK, Kopell N, Marder E. (1994). Mechanisms for oscillation and frequency control in reciprocally inhibitory model neural networks. Journal of computational neuroscience. 1 [PubMed]

Soffe SR. (1989). Roles of Glycinergic Inhibition and N-Methyl-D-Aspartate Receptor Mediated Excitation in the Locomotor Rhythmicity of One Half of the Xenopus Embryo Central Nervous System. The European journal of neuroscience. 1 [PubMed]

Soffe SR. (1990). Active and Passive Membrane Properties of Spinal Cord Neurons that Are Rhythmically Active during Swimming in Xenopus Embryos. The European journal of neuroscience. 2 [PubMed]

Soffe SR, Roberts A. (1989). The Influence of Magnesium Ions on the NMDA Mediated Responses of Ventral Rhythmic Neurons in the Spinal Cord of Xenopus Embryos. The European journal of neuroscience. 1 [PubMed]

Tråvén HG et al. (1993). Computer simulations of NMDA and non-NMDA receptor-mediated synaptic drive: sensory and supraspinal modulation of neurons and small networks. Journal of neurophysiology. 70 [PubMed]

Tunstall MJ, Roberts A. (1994). A longitudinal gradient of synaptic drive in the spinal cord of Xenopus embryos and its role in co-ordination of swimming. The Journal of physiology. 474 [PubMed]

Van Vreeswijk C, Abbott LF, Ermentrout GB. (1994). When inhibition not excitation synchronizes neural firing. Journal of computational neuroscience. 1 [PubMed]

Wall MJ, Dale N. (1994). A role for potassium currents in the generation of the swimming motor pattern of Xenopus embryos. Journal of neurophysiology. 72 [PubMed]

Wallén P, Grillner S. (1987). N-methyl-D-aspartate receptor-induced, inherent oscillatory activity in neurons active during fictive locomotion in the lamprey. The Journal of neuroscience : the official journal of the Society for Neuroscience. 7 [PubMed]

Wolf E, Roberts A. (1995). The influence of premotor interneuron populations on the frequency of the spinal pattern generator for swimming in Xenopus embryos: a simulation study. The European journal of neuroscience. 7 [PubMed]

Zipser D. (1992). Identification models of the nervous system. Neuroscience. 47

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Hines E. (2003). Genesis References .

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