Bliss TV, Collingridge GL. (1993). A synaptic model of memory: long-term potentiation in the hippocampus. Nature. 361 [PubMed]

See more from authors: Bliss TV · Collingridge GL

References and models cited by this paper
References and models that cite this paper

Benke TA et al. (2001). Mathematical modelling of non-stationary fluctuation analysis for studying channel properties of synaptic AMPA receptors. The Journal of physiology. 537 [PubMed]

Bhalla US. (2002). Biochemical signaling networks decode temporal patterns of synaptic input. Journal of computational neuroscience. 13 [PubMed]

Bhalla US, Iyengar R. (1999). Emergent properties of networks of biological signaling pathways. Science (New York, N.Y.). 283 [PubMed]

Bianchi D et al. (2022). Membrane electrical properties of mouse hippocampal CA1 pyramidal neurons during strong inputs Biophysical journal. 121 [PubMed]

Bogacz R, Brown MW, Giraud-Carrier C. (2001). Model of familiarity discrimination in the perirhinal cortex. Journal of computational neuroscience. 10 [PubMed]

Brzosko Z, Zannone S, Schultz W, Clopath C, Paulsen O. (2017). Sequential neuromodulation of Hebbian plasticity offers mechanism for effective reward-based navigation. eLife. 6 [PubMed]

Carnevale NT, Tsai KY, Brown TH. (1994). Hebbian learning is jointly controlled by electrotonic and input structure Network. 5

Clopath C, Ziegler L, Vasilaki E, Büsing L, Gerstner W. (2008). Tag-trigger-consolidation: a model of early and late long-term-potentiation and depression. PLoS computational biology. 4 [PubMed]

Cook EP, Johnston D. (1997). Active dendrites reduce location-dependent variability of synaptic input trains. Journal of neurophysiology. 78 [PubMed]

Crook SM, Dur-E-Ahmad M, Baer SM. (2007). A model of activity-dependent changes in dendritic spine density and spine structure. Mathematical biosciences and engineering : MBE. 4 [PubMed]

Dahlhaus R, Eichler M, Sandkühler J. (1997). Identification of synaptic connections in neural ensembles by graphical models. Journal of neuroscience methods. 77 [PubMed]

De Schutter E. (1997). A new functional role for cerebellar long-term depression. Progress in brain research. 114 [PubMed]

Deneve S. (2008). Bayesian spiking neurons II: learning. Neural computation. 20 [PubMed]

Devore S, de Almeida L, Linster C. (2014). Distinct roles of bulbar muscarinic and nicotinic receptors in olfactory discrimination learning. The Journal of neuroscience : the official journal of the Society for Neuroscience. 34 [PubMed]

Ebner C, Clopath C, Jedlicka P, Cuntz H. (2019). Unifying Long-Term Plasticity Rules for Excitatory Synapses by Modeling Dendrites of Cortical Pyramidal Neurons. Cell reports. 29 [PubMed]

Franks KM, Sejnowski TJ. (2002). Complexity of calcium signaling in synaptic spines. BioEssays : news and reviews in molecular, cellular and developmental biology. 24 [PubMed]

Garrido JA, Luque NR, D'Angelo E, Ros E. (2013). Distributed cerebellar plasticity implements adaptable gain control in a manipulation task: a closed-loop robotic simulation Frontiers in neural circuits. 7 [PubMed]

Gerkin RC, Lau PM, Nauen DW, Wang YT, Bi GQ. (2007). Modular competition driven by NMDA receptor subtypes in spike-timing-dependent plasticity. Journal of neurophysiology. 97 [PubMed]

Gerstner W, Kistler WM. (2002). Mathematical formulations of Hebbian learning. Biological cybernetics. 87 [PubMed]

Hasselmo ME, Howard MW, Siekmeier PJ, Coyle J. (2007). Online Supplement to Modeling of context-dependent retrieval in hippocampal region CA1: implications for cognitive function in schizophrenia. Schizophr Res. online

Helfer P, Shultz TR. (2018). Coupled feedback loops maintain synaptic long-term potentiation: A computational model of PKMzeta synthesis and AMPA receptor trafficking. PLoS computational biology. 14 [PubMed]

Helfer P, Shultz TR. (2018). Coupled feedback loops maintain synaptic long-term potentiation: A computational model arXiv.

Hituri K, Linne ML. (2013). Comparison of models for IP3 receptor kinetics using stochastic simulations. PloS one. 8 [PubMed]

Holmes WR. (2000). Models of calmodulin trapping and CaM kinase II activation in a dendritic spine. Journal of computational neuroscience. 8 [PubMed]

Holmes WR, Grover LM. (2006). Quantifying the magnitude of changes in synaptic level parameters with long-term potentiation. Journal of neurophysiology. 96 [PubMed]

Jaffe DB, Fisher SA, Brown TH. (1994). Confocal laser scanning microscopy reveals voltage-gated calcium signals within hippocampal dendritic spines. Journal of neurobiology. 25 [PubMed]

Jedlicka P et al. (2011). Increased dentate gyrus excitability in neuroligin-2-deficient mice in vivo. Cerebral cortex (New York, N.Y. : 1991). 21 [PubMed]

Kalitzin S, van Dijk BW, Spekreijse H. (2000). Self-organized dynamics in plastic neural networks: bistability and coherence. Biological cybernetics. 83 [PubMed]

Kampa BM, Clements J, Jonas P, Stuart GJ. (2004). Kinetics of Mg2+ unblock of NMDA receptors: implications for spike-timing dependent synaptic plasticity. The Journal of physiology. 556 [PubMed]

Kampa BM, Stuart GJ. (2006). Calcium spikes in basal dendrites of layer 5 pyramidal neurons during action potential bursts. The Journal of neuroscience : the official journal of the Society for Neuroscience. 26 [PubMed]

Kim Y, Hsu CL, Cembrowski MS, Mensh BD, Spruston N. (2015). Dendritic sodium spikes are required for long-term potentiation at distal synapses on hippocampal pyramidal neurons. eLife. 4 [PubMed]

Lien CC, Martina M, Schultz JH, Ehmke H, Jonas P. (2002). Gating, modulation and subunit composition of voltage-gated K(+) channels in dendritic inhibitory interneurones of rat hippocampus. The Journal of physiology. 538 [PubMed]

Liu Z, Golowasch J, Marder E, Abbott LF. (1998). A model neuron with activity-dependent conductances regulated by multiple calcium sensors. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Lörincz A, Buzsáki G. (2000). Two-phase computational model training long-term memories in the entorhinal-hippocampal region. Annals of the New York Academy of Sciences. 911 [PubMed]

Manninen T, Hituri K, Kotaleski JH, Blackwell KT, Linne ML. (2010). Postsynaptic signal transduction models for long-term potentiation and depression. Frontiers in computational neuroscience. 4 [PubMed]

Migliore M, De Simone G, Migliore R. (2015). Effect of the initial synaptic state on the probability to induce long-term potentiation and depression. Biophysical journal. 108 [PubMed]

Miller P, Wang XJ. (2006). Stability of discrete memory states to stochastic fluctuations in neuronal systems. Chaos (Woodbury, N.Y.). 16 [PubMed]

Narayanan R, Chattarji S. (2010). Computational analysis of the impact of chronic stress on intrinsic and synaptic excitability in the hippocampus. Journal of neurophysiology. 103 [PubMed]

Narayanan R, Johnston D. (2007). Long-term potentiation in rat hippocampal neurons is accompanied by spatially widespread changes in intrinsic oscillatory dynamics and excitability. Neuron. 56 [PubMed]

Narayanan R, Johnston D. (2010). The h current is a candidate mechanism for regulating the sliding modification threshold in a BCM-like synaptic learning rule. Journal of neurophysiology. 104 [PubMed]

Paré D, Lang EJ, Destexhe A. (1998). Inhibitory control of somatodendritic interactions underlying action potentials in neocortical pyramidal neurons in vivo: an intracellular and computational study. Neuroscience. 84 [PubMed]

Rusakov DA, Richter-Levin G, Stewart MG, Bliss TV. (1997). Reduction in spine density associated with long-term potentiation in the dentate gyrus suggests a spine fusion-and-branching model of potentiation. Hippocampus. 7 [PubMed]

Rusakov DA, Stewart MG, Korogod SM. (1996). Branching of active dendritic spines as a mechanism for controlling synaptic efficacy. Neuroscience. 75 [PubMed]

Sah P, Bekkers JM. (1996). Apical dendritic location of slow afterhyperpolarization current in hippocampal pyramidal neurons: implications for the integration of long-term potentiation. The Journal of neuroscience : the official journal of the Society for Neuroscience. 16 [PubMed]

Schiller J, Major G, Koester HJ, Schiller Y. (2000). NMDA spikes in basal dendrites of cortical pyramidal neurons. Nature. 404 [PubMed]

Sejnowski TJ, Destexhe A. (2000). Why do we sleep? Brain research. 886 [PubMed]

Shirke AM, Malinow R. (1997). Mechanisms of potentiation by calcium-calmodulin kinase II of postsynaptic sensitivity in rat hippocampal CA1 neurons. Journal of neurophysiology. 78 [PubMed]

Siekmeier PJ, Hasselmo ME, Howard MW, Coyle J. (2007). Modeling of context-dependent retrieval in hippocampal region CA1: implications for cognitive function in schizophrenia. Schizophrenia research. 89 [PubMed]

Song D, Wang Z, Berger TW. (2002). Contribution of T-type VDCC to TEA-induced long-term synaptic modification in hippocampal CA1 and dentate gyrus. Hippocampus. 12 [PubMed]

Stuart G, Spruston N, Sakmann B, Häusser M. (1997). Action potential initiation and backpropagation in neurons of the mammalian CNS. Trends in neurosciences. 20 [PubMed]

Stuart GJ, Häusser M. (2001). Dendritic coincidence detection of EPSPs and action potentials. Nature neuroscience. 4 [PubMed]

Toyoizumi T, Pfister JP, Aihara K, Gerstner W. (2007). Optimality model of unsupervised spike-timing-dependent plasticity: synaptic memory and weight distribution. Neural computation. 19 [PubMed]

Wallenstein GV, Eichenbaum H, Hasselmo ME. (1998). The hippocampus as an associator of discontiguous events. Trends in neurosciences. 21 [PubMed]

Wallenstein GV, Hasselmo ME. (1997). GABAergic modulation of hippocampal population activity: sequence learning, place field development, and the phase precession effect. Journal of neurophysiology. 78 [PubMed]

Wang Z, Song D, Berger TW. (2002). Contribution of NMDA receptor channels to the expression of LTP in the hippocampal dentate gyrus. Hippocampus. 12 [PubMed]

de Almeida L, Idiart M, Linster C. (2013). A model of cholinergic modulation in olfactory bulb and piriform cortex. Journal of neurophysiology. 109 [PubMed]

Świetlik D, Białowąs J, Kusiak A, Cichońska D. (2018). Memory and forgetting processes with the firing neuron model. Folia morphologica. 77 [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.