Abstract
The striatum is a brain area implicated in the pharmacological action of drugs of abuse. To test the possible involvement of both cocaine and amphetamine in the modulation of synaptic transmission in this nucleus, we coupled whole-cell patch clamp recordings from striatal spiny neurons to the focal stimulation of glutamatergic or GABAergic nerve terminals. We found that neither cocaine (1–600 μM) nor amphetamine (0.3–300 μM) significantly affected the glutamate-mediated EPSCs recorded from these cells. Conversely, both pharmacological agents depressed GABA-mediated IPSCs in a dose-dependent manner. This effect was mediated by the stimulation of dopamine (DA) D2 receptors since it was prevented by 3 μM L-sulpiride (a DA D2-like receptor antagonist), mimicked by the DA D2-like receptor agonist quinpirole (0.3–30 μM), and absent in mice lacking DA D2 receptors. A presynaptic mechanism was likely involved in this action since both cocaine and amphetamine depress GABAergic transmission by increasing paired-pulse facilitation. Cocaine and amphetamine failed to affect GABAergic IPSCs after 6-OHDA-induced nigral lesion, indicating that both drugs cause their effects through the release of endogenous DA. The modulation of GABAergic synaptic transmission in the striatum might underlie some motor and cognitive effects of psychostimulants in mammalians.
Similar content being viewed by others
Log in or create a free account to read this content
Gain free access to this article, as well as selected content from this journal and more on nature.com
or
References
Aizman O, Brismar H, Uhlen P, Zettergren E, Levey AI, Forssberg H, Greengard P, Aperia A . (2000): Anatomical and physiological evidence for D1 and D2 dopamine receptor colocalization in neostriatal neurons. Nat Neurosci 3: 226–230
Albin RL, Young AB, Penney JB . (1989): The functional anatomy of basal ganglia disorders. Trends Neurosci 12: 366–375
Amalric M, Koob GF . (1993): Functionally selective neurochemical afferents and efferents of the mesocorticolimbic and nigrostriatal dopamine system. Prog Brain Res 99: 209–226
Apicella P, Ljungberg T, Scarnati E, Schultz W . (1991): Responses to reward in monkey dorsal and ventral striatum. Exp Brain Res 85: 491–500
Baik JH, Picetti R, Saiardi A, Thiriet G, Dierich A, Depaulis A, Le Meur M, Borrelli E . (1995): Parkinsonian-like locomotor impairment in mice like dopamine D2 receptors. Nature 377: 424–428
Barker EL, Blakely RD . (1995): Norepinephrine and serotonin transporters. Molecular targets of antidepressant drugs. In Bloom FS, Kupfer DJ (eds), Psychopharmacology: The Fourth Generation of Progress. New York, Raven Press, pp 321–333
Beiser DG, Houk JC . (1998): Model of cortical-basal ganglionic processing: encoding the serial order of sensory events. J Neurophysiol 79: 3168–3188
Bennett BD, Bolam JP . (1994): Synaptic input and output of parvalbumin-immunoreactive neurons in the neostriatum of the rat. Neuroscience 62: 707–719
Berke JD, Hyman SE . (2000): Addiction, dopamine, and the molecular mechanisms of memory. Neuron 25: 515–532
Bordet R, Ridray S, Carboni S, Diaz Y, Sokoloff P, Schwartz JC . (1997): Induction of dopamine D3 receptor expression as a mechanism of behavioral sensitization to levodopa. Proc Natl Acad Sci USA 94: 3363–3367
Breiter HC, Gollub RL, Weisskoff RM, Kennedy DN, Makris N, Berke JD, Goodman JM, Kantor HL, Gastfriend DR, Riorden JP, Mathew RT, Rosen BR, Hyman SE . (1997): Acute effects of cocaine on human brain activity and emotion. Neuron 19: 591–611
Calabresi P, Benedetti M, Mercuri NB, Bernardi G . (1988): Endogenous dopamine and dopaminergic agonists modulate synaptic excitation in neostriatum: intracellular studies from naive and catecholamine-depleted rats. Neuroscience 27: 145–157
Calabresi P, Centonze D, Pisani A, Sancesario G, Gubellini P, Marfia GA, Bernardi G . (1998): Striatal spiny neurons and cholinergic interneurons express differential ionotropic glutamatergic responses and vulnerability: implications for ischemia and Huntington's disease. Ann Neurol 43: 586–597
Calabresi P, De Murtas M, Mercuri NB, Bernardi G . (1992): Chronic neuroleptic treatment: D2 dopamine receptor supersensitivy and striatal glutamatergic transmission. Ann Neurol 31: 366–373
Calabresi P, De Murtas M, Pisani A, Stefani A, Sancesario G, Mercuri NB, Bernardi G . (1995) Vulnerability of medium spiny striatal neurons to glutamate: role of Na/K ATPase. Eur J Neurosci 7: 1674–1683
Calabresi P, Mercuri NB, Sancesario G, Bernardi G . (1993): Electrophysiology of dopamine-denervated striatal neurons: implications for Parkinson's disease. Brain 116: 433–452
Calabresi P, Pisani A, Mercuri NB, Bernardi G . (1996): The corticostriatal projection: from synaptic plasticity to dysfunctions of the basal ganglia. Trends Neurosci 19: 19–24
Calabresi P, Saiardi A, Pisani A, Baik J-H, Centonze D, Mercuri N, Bernardi G, Borrelli E . (1997): Abnormal synaptic plasticity in the striatum of mice lacking dopamine D2 receptors. J Neurosci 17: 4536–4544
Centonze D, Gubellini P, Picconi B, Calabresi P, Giacomini P, Bernardi G . (1999): Unilateral dopamine denervation blocks corticostriatal LTP. J Neurophysiol 82: 3575–3579
Cepeda C, Buchwald NA, Levine MS . (1992): Neuromodulatory actions of dopamine in the neostriatum are dependent upon the excitatory amino acid receptor subtypes activated. Proc Natl Acad Sci USA 90: 9576–9580
Cepeda C, Hurst RS, Altemus KL, Flores-Hernàndez J, Calvert CR, Jokel ES, Grandy DK, Low MJ, Rubinstein M, Ariano MA, Levine MS . (2001): Facilitated glutamatergic transmission in the striatum of D2 dopamine receptor-deficient mice. J Neurophysiol 85: 659–670
Delgado A, Sierra A, Querejeta E, Valdiosera RF, Aceves J . (2000): Inhibitory control of the GABAergic transmission by D2 dopamine receptors. Neuroscience 95: 1043–1048
Delle Donne KT, Sesack SR, Pickel VM . (1997): Ultrastructural immunocytochemical localization of the dopamine D2 receptor within GABAergic neurons in the rat striatum. Brain Res 746: 239–255
Di Chiara G, Imperato A . (1988): Drugs abused by humans preferentially increase synaptic dopamine concentrations in the mesolimbic system of freely moving rats. Proc Natl Acad Sci USA 85: 5274–5278
Flores-Hernàndez J, Gallaraga E, Bargas J . (1997): Dopamine selects glutamatergic inputs to neostriatal neurons. Synapse 25: 185–195
Graybiel AM . (1998): The basal ganglia and chunking of action repertoires. Neurobiol Learn Mem 70: 119–136
Graybiel AM, Aosaki T, Flaherty A, Kimura M . (1994): The basal ganglia and adaptive motor control. Science 265: 1826–1831
Graybiel AM, Moratalla R, Robertson HA . (1990): Amphetamine and cocaine induce drug-specific activation of the c-fos gene in striosome-matrix compartments and limbic subdivisions of the striatum. Proc Natl Acad Sci USA 87: 6912–6916
Hernandez-Lopez S, Tkatch T, Perez-Garci E, Gallaraga E, Bargas J, Hamm H, Surmeier DJ . (2000): D2 dopamine receptors in striatal medium spiny neurons reduce L-type Ca2+ currents and excitability via a novel PLCβ1-IP3-calcineurin-signaling cascade. J Neurosci 20: 8987–8995
Hsu KS, Huang CC, Yang CH, Gean PW . (1995): Presynaptic D2 dopaminergic receptors mediate inhibition of excitatory synaptic transmission in rat neostriatum. Brain Res 690: 264–268
Ito R, Dalley JW, Howes SR, Robbins TW, Everitt BJ . (2000): Dissociation in conditioned dopamine release in the nucleus accumbens core and shell in response to cocaine cues and during cocaine-seeking behavior in rats. J Neurosci 20: 7489–7495
Jaeger D, Kita H, Wilson CJ . (1994): Surround inhibition among projection neurons is weak or nonexistent in the rat neostriatum. J Neurophysiol 72: 2555–2558
Jiang Z-C, North RA . (1991): Membrane properties and synaptic responses of rat striatal neurones in vitro. J Physiol 443: 533–553
Johanson C-E, Schuster CR . (1995): Cocaine. In Bloom FE, Kupfer DJ (eds), Psychopharmacology: The Fourth Gof Progress. New York, Raven Press, pp 1685–1697
Kaneko S, Hikida T, Watanabe D, Ichinose H, Nagatsu T, Kreitman RJ, Pastan I, Nakanishi S . (2000): Synaptic integration mediated by striatal cholinergic interneurons in basal ganglia function. Science 289: 633–637
Kelly PH, Seviour PW, Iversen SD . (1975): Amphetamine and apomorphine responses in the rat following 6-OHDA lesions of the nucleus accumbens septi and corpus striatum. Brain Res 94: 507–522
Kincaid A, Wilson CJ . (1996): Corticostriatal innervation of the patch and matrix in the striatum. J Comp Neurol 374: 578–592
Kita H . (1996): Glutamatergic and GABAergic postsynaptic responses of striatal spiny neurons to intrastriatal and cortical stimulation recorded in slice preparations. Neuroscience 70: 925–940
Kita T, Kita H, Kitai ST . (1984): Passive electrical membrane properties of rat neostriatal neurons in an in vitro slice preparation. Brain Res 300: 129–139
Kiyatkin EA, Rebec GV . (2000): Dopamine-independent action of cocaine on striatal and accumbal neurons. Eur J Neurosci 12: 1789–1800
Knowlton BJ, Mangels JA, Squire LR . (1996): A neostriatal habit learning system in humans. Science 273: 1399–1402
Koob GF, Sanna PP, Bloom FE . (1998): Neuroscience of addiction. Neuron 21: 467–476
Koos T, Tepper JM . (1999): Inhibitory control of neostriatal projection neurons by GABAergic interneurons. Nat Neurosci 2: 467–472
Kuczenski R, Segal DS, Aizenstein ML . (1991): Amphetamine, cocaine, and fencamfamine: relationship between locomotor and stereotypy response profiles and caudate and caudate and accumbens dopamine dynamics. J Neurosci 11: 2703–2712
LaHoste GJ, Henry BL, Marshall JF . (2000): Dopamine D1 receptors synergize with D2, but not D3 or D4, receptors in the striatum without the involvement of action potentials. J Neurosci 20: 6666–6671
Lenz S, Perney TM, Qin Y, Robbins E, Chesselet MF . (1994): GABA-ergic interneurons of the striatum express the Shaw-like potassium channel Kv3.1. Synapse 18: 55–66
Levine MS, Li Z, Cepeda C, Cromwell HC, Altemus KL . (1996): Neuromodulatory actions of dopamine on synaptically-evoked neostriatal responses in slices. Synapse 24: 65–78
Lin YJ, Greif GJ, Freedman JE . (1996): Permeation and block of dopamine-modulated potassium channels on rat striatal neurons by cesium and barium. J Neurophysiol 76: 1413–1422
Lyons D, Friedman DP, Nader MA, Porrino LJ . (1996): Cocaine alters cerebral metabolism within the ventral striatum and limbic cortex of monkeys. J Neurosci 16: 1230–1238
Mansour A, Watson SJ . (1995): Dopamine receptor expression in the central nervous system. In Bloom FE, Kupfer DJ (eds), Psychopharmacology: The Fourth Generation of Progress. New York, Raven Press, pp 207–219
McGeonrge AJ, Faull RLM . (1989): The organization of the projection from the cerebral cortex to the striatum in the rat. Neuroscience 29: 503–537
Moratalla R, Vickers EA, Robertson HA, Cochran BH, Graybiel AM . (1993): Coordinate expression of c-fos and junB is induced in the rat striatum by cocaine. J Neurosci 13: 423–433
Nicola SM, Malenka RC . (1998): Modulation of synaptic transmission by dopamine and norepinephrine in ventral but not dorsal striatum. J Neurophysiol 79: 1768–1776
Nisenbaum ES, Berger TW . (1992): Functionally distinct subpopulations of striatal neurons are differentially regulated by GABAergic and dopaminergic inputs. I. In vivo analysis. Neuroscience 48: 561–578
Parthasarathy HB, Graybiel AM . (1997): Cortically driven immediate-early gene expression reflects modular influence of sensorimotor cortex on identified striatal neurons in the squirrel monkey. J Neurosci 17: 2477–2491
Paxinos G, Watson C . (1986): The Rat Brain in Stereotaxic Coordinates. Sydney, Academic Press
Penney JB, Young AB . (1983): Speculation on the functional anatomy of basal ganglia disorders. Annu Rev Neurosci 6: 73–94
Pisani A, Bonsi P, Centonze D, Calabresi P, Bernardi G . (2000): Activation of D2-like dopamine receptors reduces synaptic inputs to striatal cholinergic interneurons. J Neurosci 20: RC69
Plenz D, Kitai ST . (1998): Up and down states in striatal medium spiny neurons simultaneously recorded with spontaneous activity in fast-spiking interneurons studied in cortex-striatum-substantia nigra organotypic cultures. J Neurosci 18: 266–283
Qiao JT, Dougherty PM, Wiggins RC, Dufny N . (1990): Effects of microiontophoretic application of cocaine, alone and with receptor antagonists, upon the neurons of the medial prefrontal cortex, nucleus accumbens and caudate nucleus of rats. Neuropharmacology 29: 379–385
Saint-Cyr JA, Taylor AE, Lang AE . (1988): Procedural learning and neostriatal dysfunction in man. Brain 111: 941–959
Schiffmann SN, Lledo P-M, Vincent J-D . (1995): Dopamine D1 receptor modulates the voltage-gated sodium current in rat striatal neurones through a protein kinase A. J Physiol 483: 95–107
Seiden LS, Sabol KE, Ricaurte GA . (1993): Amphetamine: effects on catecholamine systems. Annu Rev Pharmacol Toxicol 32: 639–677
Stein EA, Fuller SA . (1993): Cocaine's time action profile on regional cerebral blood flow in the rat. Brain Res 626: 117–126
Stern EA, Jaeger D, Wilson CJ . (1998): Membrane potential synchrony of simultaneously recorded striatal spiny neurons in vivo. Nature 394: 475–478
Surmeier DJ, Bargas J, Hemmings HG, Nairn AC, Greengard P . (1995): Modulation of calcium currents by a D1 dopaminergic protein kinase/phosphatase cascade in rat neostriatal neurons. Neuron 14: 385–397
Surmeier DJ, Song W-J, Yan Z . (1996): Coordinated expression of dopamine receptors in neostriatal medium spiny neurons. J Neurosci 16: 6579–6591
Whishaw IQ, Mittleman G, Bunch ST, Dunnett SB . (1987): Impairments in the acquisition, retention and selection of spatial navigation strategies after medial caudate-putamen lesions in rats. Behav Brain Res 24: 125–138
White FJ, Hu XT, Henry DJ . (1993): Electrophysiological effects of cocaine in the rat nucleus accumbens: microiontophoretic studies. J Pharmacol Exp Ther 266: 1075–1084
Wickens JR, Kotter R, Alexander ME . (1995): Effects of local connectivity on striatal function: stimulation and analysis of a model. Synapse 20: 281–298
Wilson CJ, Groves PM . (1980): Fine structure and synaptic connections of the common spiny neuron of the rat neostriatum: a study employing intracellular injection of horseradish peroxidase. J Comp Neurol 194: 599–615
Wilson CJ, Kawaguchi Y . (1996): The origins of two-state spontaneous membrane potential fluctuations of neostriatal spiny neurons. J Neurosci 16: 2397–2410
Yamamoto BK, Spanos JL . (1988): The acute effects of methylenedioxymethamphetamine on dopamine release in the awake-behaving rat. Eur J Pharmacol 148: 195–203
Yung KK, Smith AD, Levey AI, Bolam JP . (1996): Synaptic connections between spiny neurons of the direct and indirect pathways in the neostriatum of the rat: evidence from dopamine receptor and neuropeptide immunostaining. Eur J Neurosci 8: 861–869
Acknowledgements
We thank Mr. Massimo Tolu for technical assistance. This work was supported by the following grants: BIOMED (BMH4-97-2215) and Telethon (N° E.729) to PC, MURST-CNR (legge 95/95) to GB, and Telethon (N° E.0930) to AP.
Author information
Authors and Affiliations
Corresponding author
Rights and permissions
About this article
Cite this article
Centonze, D., Picconi, B., Baunez, C. et al. Cocaine and Amphetamine Depress Striatal GABAergic Synaptic Transmission through D2 Dopamine Receptors. Neuropsychopharmacol 26, 164–175 (2002). https://doi.org/10.1016/S0893-133X(01)00299-8
Received:
Revised:
Accepted:
Published:
Issue date:
DOI: https://doi.org/10.1016/S0893-133X(01)00299-8
Keywords
This article is cited by
-
Protein Markers of Neurotransmitter Synthesis and Release in Postmortem Schizophrenia Substantia Nigra
Neuropsychopharmacology (2017)
-
Alterations in behavioral responses to dopamine agonists in olfactory bulbectomized mice: relationship to changes in the striatal dopaminergic system
Psychopharmacology (2016)
-
Cocaine-Induced Changes of Synaptic Transmission in the Striatum are Modulated by Adenosine A2A Receptors and Involve the Tyrosine Phosphatase STEP
Neuropsychopharmacology (2014)
-
Metabotropic Glutamate Receptor 7 Modulates the Rewarding Effects of Cocaine in Rats: Involvement of a Ventral Pallidal GABAergic Mechanism
Neuropsychopharmacology (2009)
-
Cannabinoid CB1 Receptor Antagonists Attenuate Cocaine's Rewarding Effects: Experiments with Self-Administration and Brain-Stimulation Reward in Rats
Neuropsychopharmacology (2008)