Kozlov A, Kotaleski JH, Aurell E, Grillner S, Lansner A. (2001). Modeling of substance P and 5-HT induced synaptic plasticity in the lamprey spinal CPG: consequences for network pattern generation. Journal of computational neuroscience. 11 [PubMed]

See more from authors: Kozlov A · Kotaleski JH · Aurell E · Grillner S · Lansner A

References and models cited by this paper

Abbott LF, Varela JA, Sen K, Nelson SB. (1997). Synaptic depression and cortical gain control. Science (New York, N.Y.). 275 [PubMed]

Abraham WC, Bear MF. (1996). Metaplasticity: the plasticity of synaptic plasticity. Trends in neurosciences. 19 [PubMed]

Bower JM, Beeman D. (1998). 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]

Buchanan JT. (1982). Identification of interneurons with contralateral, caudal axons in the lamprey spinal cord: synaptic interactions and morphology. Journal of neurophysiology. 47 [PubMed]

Buchanan JT. (1992). Neural network simulations of coupled locomotor oscillators in the lamprey spinal cord. Biological cybernetics. 66 [PubMed]

Buchanan JT. (1996). Lamprey spinal interneurons and their roles in swimming activity. Brain, behavior and evolution. 48 [PubMed]

Buchanan JT. (1999). Commissural interneurons in rhythm generation and intersegmental coupling in the lamprey spinal cord. Journal of neurophysiology. 81 [PubMed]

Buchanan JT, Grillner S. (1987). Newly identified 'glutamate interneurons' and their role in locomotion in the lamprey spinal cord. Science (New York, N.Y.). 236 [PubMed]

Ekeberg O. (1993). A combined neuronal and mechanical model of fish swimming. Biol Cybern. 69

Ekeberg O, Grillner S. (1999). Simulations of neuromuscular control in lamprey swimming. Philosophical transactions of the Royal Society of London. Series B, Biological sciences. 354 [PubMed]

Ekeberg O et al. (1991). A computer based model for realistic simulations of neural networks. I. The single neuron and synaptic interaction. Biological cybernetics. 65 [PubMed]

Friesen WO. (1994). Reciprocal inhibition: a mechanism underlying oscillatory animal movements. Neuroscience and biobehavioral reviews. 18 [PubMed]

Gray CM. (1994). Synchronous oscillations in neuronal systems: mechanisms and functions. Journal of computational neuroscience. 1 [PubMed]

Grillner S et al. (1995). Neural networks that co-ordinate locomotion and body orientation in lamprey. Trends in neurosciences. 18 [PubMed]

Grillner S et al. (1998). Intrinsic function of a neuronal network - a vertebrate central pattern generator. Brain research. Brain research reviews. 26 [PubMed]

Grillner S, Parker D, el Manira A. (1998). Vertebrate locomotion--a lamprey perspective. Annals of the New York Academy of Sciences. 860 [PubMed]

Grillner S, Wallén P, Brodin L, Lansner A. (1991). Neuronal network generating locomotor behavior in lamprey: circuitry, transmitters, membrane properties, and simulation. Annual review of neuroscience. 14 [PubMed]

Hellgren J, Grillner S, Lansner A. (1992). Computer simulation of the segmental neural network generating locomotion in lamprey by using populations of network interneurons. Biological cybernetics. 68 [PubMed]

Hempel CM, Hartman KH, Wang XJ, Turrigiano GG, Nelson SB. (2000). Multiple forms of short-term plasticity at excitatory synapses in rat medial prefrontal cortex. Journal of neurophysiology. 83 [PubMed]

Hill R, Matsushima T, Schotland J, Grillner S. (1992). Apamin blocks the slow AHP in lamprey and delays termination of locomotor bursts. Neuroreport. 3 [PubMed]

Koch C, Crick F. (1990). Towards a neurobiological theory of consciousness Semin Neurosc. 2

Kotaleski JH, Grillner S, Lansner A. (1999). Neural mechanisms potentially contributing to the intersegmental phase lag in lamprey.I. Segmental oscillations dependent on reciprocal inhibition. Biological cybernetics. 81 [PubMed]

Kotaleski JH, Lansner A, Grillner S. (1999). Neural mechanisms potentially contributing to the intersegmental phase lag in lamprey.II. Hemisegmental oscillations produced by mutually coupled excitatory neurons. Biological cybernetics. 81 [PubMed]

Lansner A, Grillner S, Wadden T, Hellgren J. (1997). Intersegmental coordination in the lamprey: simulations using a network model without segmental boundaries Biol Cybern. 76

Laurent G, Davidowitz H. (1994). Encoding of olfactory information with oscillating neural assemblies. Science (New York, N.Y.). 265 [PubMed]

Marder E, Calabrese RL. (1996). Principles of rhythmic motor pattern generation. Physiological reviews. 76 [PubMed]

Matsushima T, Grillner S. (1992). Local serotonergic modulation of calcium-dependent potassium channels controls intersegmental coordination in the lamprey spinal cord. Journal of neurophysiology. 67 [PubMed]

McClellan AD, Hagevik A. (1997). Descending control of turning locomotor activity in larval lamprey: neurophysiology and computer modeling. Journal of neurophysiology. 78 [PubMed]

Milner B, Squire LR, Kandel ER. (1998). Cognitive neuroscience and the study of memory. Neuron. 20 [PubMed]

Nadim F, Manor Y. (2000). The role of short-term synaptic dynamics in motor control. Current opinion in neurobiology. 10 [PubMed]

Parker D. (). The activity-dependent plasticity of segmental and intersegmental synaptic connections in the lamprey spinal cord (motoneurons and interneurons) Private Communication.

Parker D. (2000). Activity and calcium-dependent mechanisms maintain reliable interneuron synaptic transmission in a rhythmic neural network. The Journal of neuroscience : the official journal of the Society for Neuroscience. 20 [PubMed]

Parker D, Grillner S. (1996). Tachykinin-mediated modulation of sensory neurons, interneurons, and synaptic transmission in the lamprey spinal cord. Journal of neurophysiology. 76 [PubMed]

Parker D, Grillner S. (1998). Cellular and synaptic modulation underlying substance P-mediated plasticity of the lamprey locomotor network. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Parker D, Grillner S. (1999). Activity-dependent metaplasticity of inhibitory and excitatory synaptic transmission in the lamprey spinal cord locomotor network. The Journal of neuroscience : the official journal of the Society for Neuroscience. 19 [PubMed]

Parker D, Grillner S. (2000). The activity-dependent plasticity of segmental and intersegmental synaptic connections in the lamprey spinal cord. The European journal of neuroscience. 12 [PubMed]

Parker D, Zhang W, Grillner S. (1998). Substance P modulates NMDA responses and causes long-term protein synthesis-dependent modulation of the lamprey locomotor network. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Rovainen CM. (1983). Identified neurons in the lamprey spinal cord and their roles in fictive swimming Neural Origin of Rhythmic Movements.

Sen K, Abbott LF, Nelson SB, Variela JA. (1997). Functional significance of synaptic depression between cortical neurons Computational Neuroscience: Trends in Research.

Singer W. (1993). Synchronization of cortical activity and its putative role in information processing and learning. Annual review of physiology. 55 [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]

Tabak J, Senn W, O'Donovan MJ, Rinzel J. (2000). Modeling of spontaneous activity in developing spinal cord using activity-dependent depression in an excitatory network. The Journal of neuroscience : the official journal of the Society for Neuroscience. 20 [PubMed]

Tegnér J, Grillner S. (1999). Interactive effects of the GABABergic modulation of calcium channels and calcium-dependent potassium channels in lamprey. Journal of neurophysiology. 81 [PubMed]

Tegnér J, Hellgren-Kotaleski J, Lansner A, Grillner S. (1997). Low-voltage-activated calcium channels in the lamprey locomotor network: simulation and experiment. Journal of neurophysiology. 77 [PubMed]

Tegnér J, Lansner A, Grillner S. (1998). Modulation of burst frequency by calcium-dependent potassium channels in the lamprey locomotor system: dependence of the activity level. Journal of computational neuroscience. 5 [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]

Wallen P, Grillner S, Cangiano L, Woolley JD. (2000). The isolated lamprey hemicord is capable of generating coordinated rhythmic motor activity Soc Neurosci Abstr. 26

Wallen P, Grillner S, Deliagina TG, Orlovsky GN, Fagerstedt P. (1997). Supraspinal and spinal inputs to lateral and crossed interneurons in the lamprey spinal cord Soc Neurosci Abstract. 23

Wallén P et al. (1989). Effects of 5-hydroxytryptamine on the afterhyperpolarization, spike frequency regulation, and oscillatory membrane properties in lamprey spinal cord neurons. Journal of neurophysiology. 61 [PubMed]

Wallén P et al. (1992). A computer-based model for realistic simulations of neural networks. II. The segmental network generating locomotor rhythmicity in the lamprey. Journal of neurophysiology. 68 [PubMed]

Wikström MA, El Manira A. (1998). Calcium influx through N- and P/Q-type channels activate apamin-sensitive calcium-dependent potassium channels generating the late afterhyperpolarization in lamprey spinal neurons. The European journal of neuroscience. 10 [PubMed]

Williams TL. (1992). Phase coupling by synaptic spread in chains of coupled neuronal oscillators. Science (New York, N.Y.). 258 [PubMed]

el Manira A, Tegnér J, Grillner S. (1994). Calcium-dependent potassium channels play a critical role for burst termination in the locomotor network in lamprey. Journal of neurophysiology. 72 [PubMed]

References and models that cite this paper

Huss M et al. (2007). Roles of ionic currents in lamprey CpG neurons: a modeling study. Journal of neurophysiology. 97 [PubMed]

Huss M, Wang D, Trané C, Wikström M, Hellgren Kotaleski J. (2008). An experimentally constrained computational model of NMDA oscillations in lamprey CPG neurons. Journal of computational neuroscience. 25 [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.