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Fast oscillations in cortical-striatal networks switch frequency following rewarding events and stimulant drugs

dc.contributor.authorBerke, Joshua D.en_US
dc.date.accessioned2010-06-01T18:57:52Z
dc.date.available2010-06-01T18:57:52Z
dc.date.issued2009-09en_US
dc.identifier.citationBerke, J. D. (2009). "Fast oscillations in cortical-striatal networks switch frequency following rewarding events and stimulant drugs." European Journal of Neuroscience 30(5): 848-859. <http://hdl.handle.net/2027.42/72155>en_US
dc.identifier.issn0953-816Xen_US
dc.identifier.issn1460-9568en_US
dc.identifier.urihttps://hdl.handle.net/2027.42/72155
dc.identifier.urihttp://www.ncbi.nlm.nih.gov/sites/entrez?cmd=retrieve&db=pubmed&list_uids=19659455&dopt=citationen_US
dc.format.extent2178521 bytes
dc.format.extent3109 bytes
dc.format.mimetypeapplication/pdf
dc.format.mimetypetext/plain
dc.publisherBlackwell Publishing Ltden_US
dc.rightsJournal compilation © 2009 Federation of European Neuroscience Societies and Blackwell Publishing Ltden_US
dc.subject.otherAmphetamineen_US
dc.subject.otherInterneuronsen_US
dc.subject.otherPiriformen_US
dc.subject.otherRatsen_US
dc.subject.otherRhythmen_US
dc.subject.otherStriatumen_US
dc.titleFast oscillations in cortical-striatal networks switch frequency following rewarding events and stimulant drugsen_US
dc.typeArticleen_US
dc.subject.hlbsecondlevelNeurosciencesen_US
dc.subject.hlbtoplevelHealth Sciencesen_US
dc.description.peerreviewedPeer Revieweden_US
dc.identifier.pmid19659455en_US
dc.description.bitstreamurlhttp://deepblue.lib.umich.edu/bitstream/2027.42/72155/1/j.1460-9568.2009.06843.x.pdf
dc.identifier.doi10.1111/j.1460-9568.2009.06843.xen_US
dc.identifier.sourceEuropean Journal of Neuroscienceen_US
dc.identifier.citedreferenceAddison, P.S. ( 2002 ) The Illustrated Wavelet Transform Handbook. Institute of Physics Publishing, London.en_US
dc.identifier.citedreferenceAdrian, E.D. ( 1942 ) Olfactory reactions in the brain of the hedgehog. J. Physiol., 100, 459 – 473.en_US
dc.identifier.citedreferenceAlbin, R.L., Young, A.B. & Penney, J.B. ( 1989 ) The functional anatomy of basal ganglia disorders. Trends Neurosci., 12, 366 – 375.en_US
dc.identifier.citedreferenceBerke, J.D. ( 2005 ) Participation of striatal neurons in large-scale oscillatory networks. In Bolamm, J.P., Ingham, C.A. & Magill, P.J. ( Eds ), The Basal Ganglia VIII. Springer, New York, pp. 25 – 35.en_US
dc.identifier.citedreferenceBerke, J.D. ( 2008 ) Uncoordinated firing rate changes of striatal fast-spiking interneurons during behavioral task performance. J. Neurosci., 28, 10075 – 10080.en_US
dc.identifier.citedreferenceBerke, J.D. & Kunec, S. ( 2004 ) Behavioral correlates of beta and gamma oscillations in the rat striatum. Soc. Neurosci. Abstr. 70.21.en_US
dc.identifier.citedreferenceBerke, J.D., Okatan, M., Skurski, J. & Eichenbaum, H.B. ( 2003 ) Synchronous striatal spindles and gamma-oscillations in freely-moving rats. Soc. Neurosci. Abstr. 390.16.en_US
dc.identifier.citedreferenceBerke, J.D., Okatan, M., Skurski, J. & Eichenbaum, H.B. ( 2004 ) Oscillatory entrainment of striatal neurons in freely moving rats. Neuron, 43, 883 – 896.en_US
dc.identifier.citedreferenceBerke, J.D., Hetrick, V., Breck, J. & Greene, R.W. ( 2008 ) Transient 23–30Hz oscillations in mouse hippocampus during exploration of novel environments. Hippocampus, 18, 519 – 529.en_US
dc.identifier.citedreferenceBerke, J.D., Breck, J.T. & Eichenbaum, H. ( 2009 ) Striatal versus hippocampal representations during win-stay maze performance. J. Neurophysiol., 101, 1575 – 1587.en_US
dc.identifier.citedreferenceBevan, M.D., Magill, P.J., Terman, D., Bolam, J.P. & Wilson, C.J. ( 2002 ) Move to the rhythm: oscillations in the subthalamic nucleus-external globus pallidus network. Trends Neurosci., 25, 525 – 531.en_US
dc.identifier.citedreferenceBracci, E., Centonze, D., Bernardi, G. & Calabresi, P. ( 2002 ) Dopamine excites fast-spiking interneurons in the striatum. J. Neurophysiol., 87, 2190 – 2194.en_US
dc.identifier.citedreferenceBracci, E., Centonze D, Bernardi.G. & Calabresi, P. ( 2003 ) Voltage-dependent membrane potential oscillations of rat striatal fast-spiking interneurons. J. Physiol., 549, 121 – 130.en_US
dc.identifier.citedreferenceBuzsÁki, G. ( 2002 ) Theta oscillations in the hippocampus. Neuron, 33, 325 – 340.en_US
dc.identifier.citedreferenceBuzsÁki, G. ( 2006 ) Rhythms of the Brain. Oxford University Press, New York.en_US
dc.identifier.citedreferenceCanolty, R.T., Edwards, E., Dalal, S.S., Soltani, M., Nagarajan, S.S., Kirsch, H.E., Berger, M.S., Barbaro, N.M. & Knight, R.T. ( 2006 ) High gamma power is phase-locked to theta oscillations in human neocortex. Science, 313, 1626 – 1628.en_US
dc.identifier.citedreferenceCardin, J.A., CarlÉn, M., Meletis, K., Knoblich, U., Zhang, F., Deisseroth, K., Tsai, L.H. & Moore, C.I. ( 2009 ) Driving fast-spiking cells induces gamma rhythm and controls sensory responses. Nature, 459, 663 – 667.en_US
dc.identifier.citedreferenceCassidy, M., Mazzone, P., Oliviero, A., Insola, A., Tonali, P., Di Lazzaro, V. & Brown, P. ( 2002 ) Movement-related changes in synchronization in the human basal ganglia. Brain, 125, 1235 – 1246.en_US
dc.identifier.citedreferenceCohen, M.X., Axmacher, N., Lenartz, D., Elger, C.E., Sturm, V. & Schlaepfer, T.E. ( 2009 ) Good Vibrations: Cross-frequency Coupling in the Human Nucleus Accumbens during Reward Processing. J. Cogn. Neurosci., 21, 875 – 889.en_US
dc.identifier.citedreferenceCowan, R.L. & Wilson, C.J. ( 1994 ) Spontaneous firing patterns and axonal projections of single corticostriatal neurons in the rat medial agranular cortex. J. Neurophysiol., 71, 17 – 32.en_US
dc.identifier.citedreferenceDay, J.J., Roitman, M.F., Wightman, R.M. & Carelli, R.M. ( 2007 ) Associative learning mediates dynamic shifts in dopamine signaling in the nucleus accumbens. Nat. Neurosci., 10, 1020 – 1028.en_US
dc.identifier.citedreferenceEeckman, F.H. & Freeman, W.J. ( 1990 ) Correlations between unit firing and EEG in the rat olfactory system. Brain Res., 528, 238 – 244.en_US
dc.identifier.citedreferenceFogelson, N., Pogosyan, A., Kuhn, A.A., Kupsch, A., van Bruggen, G., Speelman, H., Tijssen, M., Quartarone, A., Insola, A., Mazzone, P., Di Lazzaro, V., Limousin, P. & Brown, P. ( 2005 ) Reciprocal interactions between oscillatory activities of different frequencies in the subthalamic region of patients with Parkinson’s disease. Eur. J. Neurosci., 22, 257 – 266.en_US
dc.identifier.citedreferenceFries, P., Reynolds, J.H., Rorie, A.E. & Desimone, R. ( 2001 ) Modulation of oscillatory neuronal synchronization by selective visual attention. Science, 291, 1560 – 1563.en_US
dc.identifier.citedreferenceFries, P., Nikolic, D. & Singer, W. ( 2007 ) The gamma cycle. Trends Neurosci., 30, 309 – 316.en_US
dc.identifier.citedreferenceFukuda, T. ( 2009 ) Network architecture of gap junction-coupled neuronal linkage in the striatum. J. Neurosci., 29, 1235 – 1243.en_US
dc.identifier.citedreferenceHammond, C., Bergman, H. & Brown, P. ( 2007 ) Pathological synchronization in Parkinson’s disease: networks, models and treatments. Trends Neurosci., 30, 357 – 364.en_US
dc.identifier.citedreferenceHarris, K.D., Csicsvari, J., Hirase, H., Dragoi, G. & Buzsaki, G. ( 2003 ) Organization of cell assemblies in the hippocampus. Nature, 424, 552 – 556.en_US
dc.identifier.citedreferenceHjorth, J., Blackwell, K.T. & Kotaleski, J.H. ( 2009 ) Gap Junctions between Striatal Fast-Spiking Interneurons Regulate Spiking Activity and Synchronization as a Function of Cortical Activity. J. Neurosci., 29, 5276 – 5286.en_US
dc.identifier.citedreferenceJones, M.W. & Wilson, M.A. ( 2005 ) Theta rhythms coordinate hippocampal-prefrontal interactions in a spatial memory task. PLoS Biol., 3, e402.en_US
dc.identifier.citedreferenceKalanithi, P.S., Zheng, W., Kataoka, Y., DiFiglia, M., Grantz, H., Saper, C.B., Schwartz, M.L., Leckman, J.F. & Vaccarino, F.M. ( 2005 ) Altered parvalbumin-positive neuron distribution in basal ganglia of individuals with Tourette syndrome. Proc. Natl Acad. Sci. USA, 102, 13307 – 13312.en_US
dc.identifier.citedreferenceKasanetz, F., Riquelme, L.A. & Murer, M.G. ( 2002 ) Disruption of the two-state membrane potential of striatal neurones during cortical desynchronisation in anaesthetised rats. J. Physiol., 543, 577 – 589.en_US
dc.identifier.citedreferenceKay, L.M. ( 2003 ) Two species of gamma oscillations in the olfactory bulb: dependence on behavioral state and synaptic interactions. J. Integr. Neurosci., 2, 31 – 44.en_US
dc.identifier.citedreferenceKay, L.M., Beshel, J., Brea, J., Martin, C., Rojas-Libano, D. & Kopell, N. ( 2009 ) Olfactory oscillations: the what, how and what for. Trends Neurosci., 32, 207 – 214.en_US
dc.identifier.citedreferenceKlausberger, T., Magill, P.J., Marton, L.F., Roberts, J.D., Cobden, P.M., Buzsaki, G. & Somogyi, P. ( 2003 ) Brain-state- and cell-type-specific firing of hippocampal interneurons in vivo. Nature, 421, 844 – 848.en_US
dc.identifier.citedreferenceKoos, T. & Tepper, J.M. ( 1999 ) Inhibitory control of neostriatal projection neurons by GABAergic interneurons. Nat. Neurosci., 2, 467 – 472.en_US
dc.identifier.citedreferenceKoos, T., Tepper, J.M. & Wilson, C.J. ( 2004 ) Comparison of IPSCs evoked by spiny and fast-spiking neurons in the neostriatum. J. Neurosci., 24, 7916 – 7922.en_US
dc.identifier.citedreferenceKuhn, A.A., Kempf, F., Brucke, C., Gaynor Doyle, L., Martinez-Torres, I., Pogosyan, A., Trottenberg, T., Kupsch, A., Schneider, G.H., Hariz, M.I., Vandenberghe, W., Nuttin, B. & Brown, P. ( 2008 ) High-frequency stimulation of the subthalamic nucleus suppresses oscillatory beta activity in patients with Parkinson’s disease in parallel with improvement in motor performance. J. Neurosci., 28, 6165 – 6173.en_US
dc.identifier.citedreferenceLaurent, G. ( 2002 ) Olfactory network dynamics and the coding of multidimensional signals. Nat. Rev. Neurosci., 3, 884 – 895.en_US
dc.identifier.citedreferenceLewis, P.A. & Miall, R.C. ( 2006 ) Remembering the time: a continuous clock. Trends. Cogn. Sci., 10, 401 – 406.en_US
dc.identifier.citedreferenceLuk, K.C. & Sadikot, A.F. ( 2001 ) GABA promotes survival but not proliferation of parvalbumin–immunoreactive interneurons in rodent neostriatum: an in vivo study with stereology. Neuroscience, 104, 93 – 103.en_US
dc.identifier.citedreferenceMagill, P.J., Bolam, J.P. & Bevan, M.D. ( 2000 ) Relationship of activity in the subthalamic nucleus-globus pallidus network to cortical electroencephalogram. J. Neurosci., 20, 820 – 833.en_US
dc.identifier.citedreferenceMallet, N., Le Moine, C., Charpier, S. & Gonon, F. ( 2005 ) Feedforward inhibition of projection neurons by fast-spiking GABA interneurons in the rat striatum in vivo. J. Neurosci., 25, 3857 – 3869.en_US
dc.identifier.citedreferenceMatell, M.S. & Meck, W.H. ( 2004 ) Cortico-striatal circuits and interval timing: coincidence detection of oscillatory processes. Brain Res. Cogn. Brain Res., 21, 139 – 170.en_US
dc.identifier.citedreferenceMatsumoto, M. & Hikosaka, O. ( 2009 ) Two types of dopamine neuron distinctly convey positive and negative motivational signals. Nature, 459, 837 – 841.en_US
dc.identifier.citedreferenceMeck, W.H., Penney, T.B. & Pouthas, V. ( 2008 ) Cortico-striatal representation of time in animals and humans. Curr. Opin. Neurobiol., 18, 145 – 152.en_US
dc.identifier.citedreferenceMink, J.W. ( 1996 ) The basal ganglia: focused selection and inhibition of competing motor programs. Prog. Neurobiol., 50, 381 – 425.en_US
dc.identifier.citedreferenceMoyer, J.T., Wolf, J.A. & Finkel, L.H. ( 2007 ) Effects of dopaminergic modulation on the integrative properties of the ventral striatal medium spiny neuron. J. Neurophysiol., 98, 3731 – 3748.en_US
dc.identifier.citedreferenceNeville, K.R. & Haberly, L.B. ( 2004 ) Olfactory cortex. In Shepherd, G.M. ( Ed ) The synaptic Organization of the Brain. Oxford University Press, New York.en_US
dc.identifier.citedreferenceNunez, P.L. & Srinivasan, R. ( 2006 ) Electric Fields of the Brain, 2nd Edn. Oxford University Press, Oxford.en_US
dc.identifier.citedreferencePare, D. & Gaudreau, H. ( 1996 ) Projection cells and interneurons of the lateral and basolateral amygdala: distinct firing patterns and differential relation to theta and delta rhythms in conscious cats. J. Neurosci., 16, 3334 – 3350.en_US
dc.identifier.citedreferenceQuilodran, R., Rothe, M. & Procyk, E. ( 2008 ) Behavioral shifts and action valuation in the anterior cingulate cortex. Neuron, 57, 314 – 325.en_US
dc.identifier.citedreferenceRojas-Libano, D. & Kay, L.M. ( 2008 ) Olfactory system gamma oscillations: the physiological dissection of a cognitive neural system. Cogn. Neurodyn., 2, 179 – 194.en_US
dc.identifier.citedreferenceRuskin, D.N., Bergstrom, D.A., Kaneoke, Y., Patel, B.N., Twery, M.J. & Walters, J.R. ( 1999 ) Multisecond oscillations in firing rate in the basal ganglia: robust modulation by dopamine receptor activation and anesthesia. J. Neurophysiol., 81, 2046 – 2055.en_US
dc.identifier.citedreferenceSchultz, W. ( 1998 ) Predictive reward signal of dopamine neurons. J. Neurophysiol., 80, 1 – 27.en_US
dc.identifier.citedreferenceShen, W., Flajolet, M., Greengard, P. & Surmeier, D.J. ( 2008 ) Dichotomous dopaminergic control of striatal synaptic plasticity. Science, 321, 848 – 851.en_US
dc.identifier.citedreferenceSirota, A., Montgomery, S., Fujisawa, S., Isomura, Y., Zugaro, M. & Buzsaki, G. ( 2008 ) Entrainment of neocortical neurons and gamma oscillations by the hippocampal theta rhythm. Neuron, 60, 683 – 697.en_US
dc.identifier.citedreferenceSt-Cyr, J.A. ( 2003 ) Frontal-striatal circuit functions: context, sequence and consequence. J. Int. Neuropsychol. Soc., 9, 103 – 128.en_US
dc.identifier.citedreferenceStern, E.A., Kincaid, A.E. & Wilson, C.J. ( 1997 ) Spontaneous subthreshold membrane potential fluctuations and action potential variability of rat corticostriatal and striatal neurons in vivo. J. Neurophysiol., 77, 1697 – 1715.en_US
dc.identifier.citedreferenceTaverna, S., Canciani, B. & Pennartz, C.M. ( 2007 ) Membrane properties and synaptic connectivity of fast-spiking interneurons in rat ventral striatum. Brain Res., 1152, 49 – 56.en_US
dc.identifier.citedreferenceTort, A.B., Kramer, M.A., Thorn, C., Gibson, D.J., Kubota, Y., Graybiel, A.M. & Kopell, N.J. ( 2008 ) Dynamic cross-frequency couplings of local field potential oscillations in rat striatum and hippocampus during performance of a T-maze task. Proc. Natl Acad. Sci. USA, 105, 20517 – 20522.en_US
dc.identifier.citedreferenceTraub, R.D., Kopell, N., Bibbig, A., Buhl, E.H., LeBeau, F.E. & Whittington, M.A. ( 2001 ) Gap junctions between interneuron dendrites can enhance synchrony of gamma oscillations in distributed networks. J. Neurosci., 21, 9478 – 9486.en_US
dc.identifier.citedreferenceTseng, K.Y., Kasanetz, F., Kargieman, L., Riquelme, L.A. & Murer, M.G. ( 2001 ) Cortical slow oscillatory activity is reflected in the membrane potential and spike trains of striatal neurons in rats with chronic nigrostriatal lesions. J. Neurosci., 21, 6430 – 6439.en_US
dc.identifier.citedreferenceVanderwolf, C.H. ( 2000 ) What is the significance of gamma wave activity in the pyriform cortex? Brain Res., 877, 125 – 133.en_US
dc.identifier.citedreferenceWang, X.J. & Buzsaki, G. ( 1996 ) Gamma oscillation by synaptic inhibition in a hippocampal interneuronal network model. J. Neurosci., 16, 6402 – 6413.en_US
dc.identifier.citedreferenceWhittington, M.A., Traub, R.D., Kopell, N., Ermentrout, B. & Buhl, E.H. ( 2000 ) Inhibition-based rhythms: experimental and mathematical observations on network dynamics. Int. J. Psychophysiol., 38, 315 – 336.en_US
dc.identifier.citedreferenceWiltschko, A.B., Gage, G.J. & Berke, J.D. ( 2008 ) Wavelet filtering before spike detection preserves waveform shape and enhances single-unit discrimination. J. Neurosci. Methods, 173, 34 – 40.en_US
dc.identifier.citedreferenceWolf, J.A., Moyer, J.T., Lazarewicz, M.T., Contreras, D., Benoit-Marand, M., O’Donnell, P. & Finkel, L.H. ( 2005 ) NMDA/AMPA ratio impacts state transitions and entrainment to oscillations in a computational model of the nucleus accumbens medium spiny projection neuron. J. Neurosci., 25, 9080 – 9095.en_US
dc.owningcollnameInterdisciplinary and Peer-Reviewed


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