Share this post on:

Crocircuits in entorhinal cortex. Proc Natl Acad Sci U S A
Crocircuits in entorhinal cortex. Proc Natl Acad Sci U S A 105, 185728577 (2008). 35. Cunningham, M. O., Davies, C. H., Buhl, E. H., Kopell, N. Whittington, M. A. Gamma oscillations induced by kainate receptor activation inside the entorhinal cortex in vitro. J Neurosci 23, 9761769 (2003). 36. Hajos, N. et al. Cannabinoids inhibit hippocampal GABAergic transmission and network oscillations. Eur J Neurosci 12, 3239249 (2000). 37. Traub, R. D., Bibbig, A., LeBeau, F. E., Buhl, E. H. Whittington, M. A. Cellular mechanisms of neuronal population oscillations inside the hippocampus in vitro. Annu Rev Neurosci 27, 24778 (2004). 38. Hajos, M. et al. The selective alpha7 nicotinic acetylcholine receptor agonist PNU282987 [N-[(3R)-1-Azabicyclo[2.two.2]oct-3-yl]-4-chlorobenzamide hydrochloride] enhances GABAergic MEK1 supplier synaptic activity in brain slices and restores auditory gating deficits in anesthetized rats. J Pharmacol Exp Ther 312, 1213222 (2005). 39. Leung, L. W. Yim, C. Y. Intrinsic membrane possible oscillations in hippocampal neurons in vitro. Brain Res 553, 26174 (1991). 40. Song, C. et al. Role of alpha7-nicotinic acetylcholine receptors in tetanic stimulation-induced gamma oscillations in rat hippocampal slices. Neuropharmacology 48, 86980 (2005). 41. Whittington, M. A., Traub, R. D., Faulkner, H. J., Jefferys, J. G. Chettiar, K. Morphine disrupts long-range synchrony of gamma oscillations in hippocampal slices. P Natl Acad Sci U S A 95, 5807811 (1998). 42. Mansvelder, H. D., van Aerde, K. I., Couey, J. J. Brussaard, A. B. Nicotinic modulation of neuronal networks: from receptors to cognition. Psychopharmacology (Berl) 184, 29205 (2006). 43. Tang, A. H. et al. Nerve terminal nicotinic acetylcholine receptors initiate quantal GABA release from perisomatic interneurons by activating axonal T-type (Cav3) Ca(2)(1) channels and Ca(2)(1) release from shops. J Neurosci 31, 135463561 (2011). 44. Mann, E. O. Mody, I. Control of hippocampal gamma oscillation frequency by tonic inhibition and excitation of interneurons. Nat Neurosci 13, 20512 (2010). 45. Fisahn, A. et al. Distinct roles for the kainate receptor subunits GluR5 and GluR6 in kainate-induced hippocampal gamma oscillations. J Neurosci 24, 9658668 (2004). 46. Alkondon, M., Pereira, E. F. Albuquerque, E. X. NMDA and AMPA receptors contribute for the nicotinic cholinergic excitation of CA1 interneurons in the rat hippocampus. J Neurophysiol 90, 1613625 (2003). 47. Lin, H. et al. Axonal alpha7 nicotinic ACh receptors modulate presynaptic NMDA receptor expression and structural plasticity of glutamatergic presynaptic boutons. P Natl Acad Sci U S A 107, 166616666 (2010). 48. Driver, J. E. et al. Impairment of hippocampal gamma-frequency oscillations in vitro in mice overexpressing human amyloid precursor protein (APP). Eur J Neurosci 26, 1280288 (2007). 49. Lu, C. B., Hamilton, J. B., Powell, A. D., Toescu, E. C. Vreugdenhil, M. Impact of ageing on CA3 interneuron sAHP and gamma oscillations is activity-dependent. Neurobiol Aging 32, 95665 (2011). 50. Cho, R. Y., Konecky, R. O. Carter, C. S. Impairments in frontal cortical gamma synchrony and cognitive control in schizophrenia. P Natl Acad Sci U S A 103, 198789883 (2006). 51. Woo, T. U., Spencer, K. McCarley, R. W. Gamma oscillation deficits plus the onset and early progression of schizophrenia. Harvard Rev Psychiat 18, 17389 (2010). 52. Spencer, K. M. Baseline gamma power throughout auditory steady-state HDAC4 medchemexpress stimulation in schizophrenia. Fron.

Share this post on:

Author: Sodium channel