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Dopamine-enabled anti-Hebbian timing-dependent plasticity in prefrontal circuitry
- Source :
- Frontiers in Neural Circuits, Frontiers in Neural Circuits, Vol 8 (2014)
- Publication Year :
- 2014
- Publisher :
- Frontiers Media SA, 2014.
-
Abstract
- Spike timing-dependent plasticity (STDP) of glutamatergic synapses is a Hebbian associative plasticity that may underlie certain forms of learning. A cardinal feature of STDP is its dependence on the temporal order of presynaptic and postsynaptic spikes during induction: pre–post (positive) pairings induce t-LTP (timing-dependent long-term potentiation) whereas post–pre (negative) pairings induce t-LTD (timing-dependent long-term depression). Dopamine (DA), a reward signal for behavioral learning, is believed to exert powerful modulations on synapse strength and plasticity, but its influence on STDP has remained incompletely understood. We previously showed that DA extends the temporal window of t-LTP in the prefrontal cortex (PFC) from +10 to +30 ms, gating Hebbian t-LTP. Here, we examined DA modulation of synaptic plasticity induced at negative timings in layer V pyramidal neurons on mouse medial PFC slices. Using a negative timing STDP protocol (60 post–pre pairings at 0.1 Hz, δt = -30 ms), we found that DA applied during post–pre pairings did not produce LTD, but instead enabled robust LTP. This anti-Hebbian t-LTP depended on GluN2B-containing NMDA receptors. Blocking D1- (D1Rs), but not D2- (D2Rs) class DA receptors or disrupting cAMP/PKA signaling in pyramidal neurons also abolished this atypical t-LTP, indicating that it was mediated by postsynaptic D1R-cAMP/PKA signaling in excitatory synapses. Unlike DA-enabled Hebbian t-LTP that requires suppression of GABAergic inhibition and cooperative actions of both D1Rs and D2Rs in separate PFC excitatory and inhibitory circuits, DA-enabled anti-Hebbian t-LTP occurred under intact inhibitory transmission and only required D1R activation in excitatory circuit. Our results establish DA as a potent modulator of coincidence detection during associative synaptic plasticity and suggest a mechanism by which DA facilitates input-target association during reward learning and top-down information processing in PFC circuits.
- Subjects :
- Male
Dopamine
Cognitive Neuroscience
Long-Term Potentiation
Neuroscience (miscellaneous)
Prefrontal Cortex
glutamate
Inhibitory postsynaptic potential
Receptors, N-Methyl-D-Aspartate
spike-timing dependent plasticity (STDP)
lcsh:RC321-571
STDP
Hebbian
Mice
03 medical and health sciences
Cellular and Molecular Neuroscience
0302 clinical medicine
Postsynaptic potential
Metaplasticity
Animals
Original Research Article
lcsh:Neurosciences. Biological psychiatry. Neuropsychiatry
reward
030304 developmental biology
Neurons
0303 health sciences
learning
prefrontal cortex (PFC)
Receptors, Dopamine D2
Spike-timing-dependent plasticity
Receptors, Dopamine D1
musculoskeletal, neural, and ocular physiology
Long-term potentiation
Sensory Systems
Reward Learning
Hebbian theory
nervous system
Dopamine Agonists
Synaptic plasticity
Excitatory postsynaptic potential
Dopamine Antagonists
Psychology
Neuroscience
030217 neurology & neurosurgery
Subjects
Details
- ISSN :
- 16625110
- Volume :
- 8
- Database :
- OpenAIRE
- Journal :
- Frontiers in Neural Circuits
- Accession number :
- edsair.doi.dedup.....09d6aa60b7cd2f756df57d94bd0684ab
- Full Text :
- https://doi.org/10.3389/fncir.2014.00038