TY - JOUR
T1 - Striatal neurones have a specific ability to respond to phasic dopamine release
AU - Castro, Liliana R. V.
AU - Brito, Marina
AU - Guiot, Elvire
AU - Polito, Marina
AU - Korn, Christoph W.
AU - Herve, Denis
AU - Girault, Jean-Antoine
AU - Paupardin-Tritsch, Daniele
AU - Vincent, Pierre
PY - 2013/7/1
Y1 - 2013/7/1
N2 - The cAMP/protein kinase A (PKA) signalling cascade is ubiquitous, and each step in this cascade involves enzymes that are expressed in multiple isoforms. We investigated the effects of this diversity on the integration of the pathway in the target cell by comparing prefrontal cortical neurones with striatal neurones which express a very specific set of signalling proteins. The prefrontal cortex and striatum both receive dopaminergic inputs and we analysed the dynamics of the cAMP/PKA signal triggered by dopamine D-1 receptors in these two brain structures. Biosensor imaging in mouse brain slice preparations showed profound differences in the D-1 response between pyramidal cortical neurones and striatal medium spiny neurones: the cAMP/PKA response was much stronger, faster and longer lasting in striatal neurones than in pyramidal cortical neurones. We identified three molecular determinants underlying these differences: different activities of phosphodiesterases, particularly those of type 4, which strongly damp the cAMP signal in the cortex but not in the striatum; stronger adenylyl cyclase activity in the striatum, generating responses with a faster onset than in the cortex; and DARPP-32, a phosphatase inhibitor which prolongs PKA action in the striatum. Striatal neurones were also highly responsive in terms of gene expression since a single sub-second dopamine stimulation is sufficient to trigger c-Fos expression in the striatum, but not in the cortex. Our data show how specific molecular elements of the cAMP/PKA signalling cascade selectively enable the principal striatal neurones to respond to brief dopamine stimuli, a critical process in incentive learning.
AB - The cAMP/protein kinase A (PKA) signalling cascade is ubiquitous, and each step in this cascade involves enzymes that are expressed in multiple isoforms. We investigated the effects of this diversity on the integration of the pathway in the target cell by comparing prefrontal cortical neurones with striatal neurones which express a very specific set of signalling proteins. The prefrontal cortex and striatum both receive dopaminergic inputs and we analysed the dynamics of the cAMP/PKA signal triggered by dopamine D-1 receptors in these two brain structures. Biosensor imaging in mouse brain slice preparations showed profound differences in the D-1 response between pyramidal cortical neurones and striatal medium spiny neurones: the cAMP/PKA response was much stronger, faster and longer lasting in striatal neurones than in pyramidal cortical neurones. We identified three molecular determinants underlying these differences: different activities of phosphodiesterases, particularly those of type 4, which strongly damp the cAMP signal in the cortex but not in the striatum; stronger adenylyl cyclase activity in the striatum, generating responses with a faster onset than in the cortex; and DARPP-32, a phosphatase inhibitor which prolongs PKA action in the striatum. Striatal neurones were also highly responsive in terms of gene expression since a single sub-second dopamine stimulation is sufficient to trigger c-Fos expression in the striatum, but not in the cortex. Our data show how specific molecular elements of the cAMP/PKA signalling cascade selectively enable the principal striatal neurones to respond to brief dopamine stimuli, a critical process in incentive learning.
KW - Rat-brain
KW - In-vivo
KW - Adenylyl-cyclase
KW - Cyclic-amp
KW - Phosphodiesterase type-4
KW - Prefrontal cortex
KW - Molecular-cloning
KW - Cortical-neurons
KW - Mice deficient
KW - Messenger-rna
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=pure_univeritat_ramon_llull&SrcAuth=WosAPI&KeyUT=WOS:000321192000013&DestLinkType=FullRecord&DestApp=WOS_CPL
U2 - 10.1113/jphysiol.2013.252197
DO - 10.1113/jphysiol.2013.252197
M3 - Article
C2 - 23551948
SN - 0022-3751
VL - 591
SP - 3197
EP - 3214
JO - Journal of Physiology-london
JF - Journal of Physiology-london
IS - 13
ER -