Chen K, Baram TZ, Soltesz I. (1999). Febrile seizures in the developing brain result in persistent modification of neuronal excitability in limbic circuits. Nature medicine. 5 [PubMed]

See more from authors: Chen K · Baram TZ · Soltesz I

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

Aradi I, Santhakumar V, Chen K, Soltesz I. (2002). Postsynaptic effects of GABAergic synaptic diversity: regulation of neuronal excitability by changes in IPSC variance. Neuropharmacology. 43 [PubMed]

Aradi I, Santhakumar V, Soltesz I. (2004). Impact of heterogeneous perisomatic IPSC populations on pyramidal cell firing rates. Journal of neurophysiology. 91 [PubMed]

Aradi I, Soltesz I. (2002). Modulation of network behaviour by changes in variance in interneuronal properties. The Journal of physiology. 538 [PubMed]

Chen K et al. (2001). Persistently modified h-channels after complex febrile seizures convert the seizure-induced enhancement of inhibition to hyperexcitability. Nature medicine. 7 [PubMed]

Földy C, Aradi I, Howard A, Soltesz I. (2004). Diversity beyond variance: modulation of firing rates and network coherence by GABAergic subpopulations. The European journal of neuroscience. 19 [PubMed]

Lewin N, Aksay E, Clancy CE. (2012). Computational modeling reveals dendritic origins of GABA(A)-mediated excitation in CA1 pyramidal neurons. PloS one. 7 [PubMed]

Santhakumar V, Aradi I, Soltesz I. (2005). Role of mossy fiber sprouting and mossy cell loss in hyperexcitability: a network model of the dentate gyrus incorporating cell types and axonal topography. Journal of neurophysiology. 93 [PubMed]

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