Abstract
Dorsal striatum is important for the development of drug addiction; however, a precise understanding of the roles of striatopallidal (indirect) and striatonigral (direct) pathway neurons in regulating behaviors remains elusive. Using viral-mediated expression of an engineered G protein-coupled receptor (hM(4)D), we found that activation of hM(4)D receptors with clozapine-N-oxide (CNO) potently reduced striatal neuron excitability. When hM(4)D receptors were selectively expressed in either direct or indirect pathway neurons, CNO did not change acute locomotor responses to amphetamine, but did alter behavioral plasticity associated with repeated drug treatment. Specifically, transiently disrupting striatopallidal neuronal activity facilitated behavioral sensitization, whereas decreasing excitability of striatonigral neurons impaired its persistence. These findings suggest that acute drug effects can be parsed from the behavioral adaptations associated with repeated drug exposure and highlight the utility of this approach for deconstructing neuronal pathway contributions to behavior.
MeSH Terms
Amphetamine/pharmacology
Animals
Cell Line, Transformed
Clozapine/analogs & derivatives,pharmacology
Corpus Striatum/drug effects,physiology
Dopamine/metabolism
Genetic Vectors
Herpes Simplex/genetics
Humans
Male
Membrane Potentials/drug effects,physiology
Motor Activity/drug effects,physiology
Neural Inhibition/drug effects,genetics,physiology
Neural Pathways/drug effects,physiology
Rats
Rats, Sprague-Dawley
Receptor, Muscarinic M4/agonists,genetics,physiology
Reward
Ventral Tegmental Area/metabolism,physiology
Chemicals
Receptor, Muscarinic M4
Amphetamine
Clozapine
clozapine N-oxide
Dopamine
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Ferguson Susan M
Department of Psychiatry and Behavioral Sciences, University of Washington, Seattle, Washington, USA.
Eskenazi Daniel
Ishikawa Masago
Wanat Matthew J
Phillips Paul E M
Dong Yan
Roth Bryan L
Neumaier John F
References (14)
14 references, click to expand
-
Addiction, dopamine, and the molecular mechanisms of memory.
Neuron. 2000 Mar;25(3):515-32
PMID: 10774721
-
D2R striatopallidal neurons inhibit both locomotor and drug reward processes.
Nat Neurosci. 2009 Apr;12(4):393-5
PMID: 19270687
-
Environmental modulation of amphetamine-induced c-fos expression in D1 versus D2 striatal neurons.
Behav Brain Res. 1999 Sep;103(2):203-9
PMID: 10513588
-
Chronic microsensors for longitudinal, subsecond dopamine detection in behaving animals.
Nat Methods. 2010 Feb;7(2):126-9
PMID: 20037591
-
Microcircuitry of the direct and indirect pathways of the basal ganglia.
Neuroscience. 1998 Sep;86(2):353-87
PMID: 9881853
-
Addiction and the brain: the neurobiology of compulsion and its persistence.
Nat Rev Neurosci. 2001 Oct;2(10):695-703
PMID: 11584307
-
Molecular basis of long-term plasticity underlying addiction.
Nat Rev Neurosci. 2001 Feb;2(2):119-28
PMID: 11252991
-
Dichotomous dopaminergic control of striatal synaptic plasticity.
Science. 2008 Aug 8;321(5890):848-51
PMID: 18687967
-
Engineering GPCR signaling pathways with RASSLs.
Nat Methods. 2008 Aug;5(8):673-8
PMID: 18668035
-
Opposite effects of GluR1 and PKA-resistant GluR1 overexpression in the ventral tegmental area on cocaine reinforcement.
Ann N Y Acad Sci. 2003 Nov;1003:372-4
PMID: 14684464
-
Remote control of neuronal activity in transgenic mice expressing evolved G protein-coupled receptors.
Neuron. 2009 Jul 16;63(1):27-39
PMID: 19607790
-
Drugs of abuse and immediate-early genes in the forebrain.
Mol Neurobiol. 1998 Jun;16(3):221-67
PMID: 9626665
-
Evolving the lock to fit the key to create a family of G protein-coupled receptors potently activated by an inert ligand.
Proc Natl Acad Sci U S A. 2007 Mar 20;104(12):5163-8
PMID: 17360345
-
Incentive-sensitization and addiction.
Addiction. 2001 Jan;96(1):103-14
PMID: 11177523