Dopamine D2 and Adenosine A2A Receptors Regulate NMDA-Mediated Excitation in Accumbens Neurons Through A2A–D2 Receptor Heteromerization
Dopamine D2 and Adenosine A2A Receptors Regulate NMDA-Mediated Excitation in Accumbens Neurons Through A2A–D2 Receptor Heteromerization
Bursting activity of striatal medium spiny neurons results from membrane potential oscillations between a down- and an upstate that could be regulated by G-protein-coupled receptors. Among these, dopamine D(2) and adenosine A(2A) receptors are highly enriched in striatal neurons and exhibit strong interactions whose physiological significance and molecular mechanisms remain partially unclear. More particularly, respective involvements of common intracellular signaling cascades and A(2A)-D(2) receptor heteromerization remain unknown. Here we show, by performing perforated-patch-clamp recordings on brain slices and loading competitive peptides, that D(2) and A(2A) receptors regulate the induction by N-methyl-D-aspartate of a depolarized membrane potential plateau through mechanisms relying upon specific protein-protein interactions. Indeed, D(2) receptor activation abolished transitions between a hyperpolarized resting potential and a depolarized plateau potential by regulating the Ca(V)1.3a calcium channel activity through interactions with scaffold proteins Shank1/3. Noticeably, A(2A) receptor activation had no effect per se but fully reversed the effects of D(2) receptor activation through a mechanism in which A(2A)-D(2) receptors heteromerization is strictly mandatory, demonstrating therefore a first direct physiological relevance of these heteromers. Our results show that membrane potential transitions and firing patterns in striatal neurons are tightly controlled by D(2) and A(2A) receptors through specific protein-protein interactions including A(2A)-D(2) receptors heteromerization.
- Université Libre de Bruxelles Belgium
- European Graduate School Switzerland
- National Institute on Drug Abuse United States
- National Institute of Health Pakistan
- National Institutes of Health United States
N-Methylaspartate, Patch-Clamp Techniques, G-protein-coupled receptor, Calcium Channels, L-Type, Knockout, Nucleus Accumbens -- cytology, L-Type -- metabolism, Wistar, Heteromerization, Presynaptic Terminals, Nerve Tissue Proteins, Membrane potential oscillation, In Vitro Techniques, Adaptor Proteins, Signal Transducing -- metabolism, Nucleus Accumbens, Membrane Potentials, Mice, Receptors, Animals, Neurons -- metabolism, Rats, Wistar, Presynaptic Terminals -- metabolism, Adaptor Proteins, Signal Transducing, Mice, Knockout, Neurons, Membrane Potentials -- physiology, Receptors, Adenosine A2, Receptors, Dopamine D2, Adaptor Proteins, Adenosine A2 -- metabolism, Sciences bio-médicales et agricoles, Calcium Channels, L-Type -- metabolism, Receptors, Adenosine A2 -- metabolism, Rats, Signal Transducing -- metabolism, N-Methylaspartate -- metabolism, Calcium channel, Basal ganglia, Calcium Channels, Receptors, Dopamine D2 -- metabolism, Protein Multimerization, Dopamine D2 -- metabolism, Nucleus Accumbens -- metabolism
N-Methylaspartate, Patch-Clamp Techniques, G-protein-coupled receptor, Calcium Channels, L-Type, Knockout, Nucleus Accumbens -- cytology, L-Type -- metabolism, Wistar, Heteromerization, Presynaptic Terminals, Nerve Tissue Proteins, Membrane potential oscillation, In Vitro Techniques, Adaptor Proteins, Signal Transducing -- metabolism, Nucleus Accumbens, Membrane Potentials, Mice, Receptors, Animals, Neurons -- metabolism, Rats, Wistar, Presynaptic Terminals -- metabolism, Adaptor Proteins, Signal Transducing, Mice, Knockout, Neurons, Membrane Potentials -- physiology, Receptors, Adenosine A2, Receptors, Dopamine D2, Adaptor Proteins, Adenosine A2 -- metabolism, Sciences bio-médicales et agricoles, Calcium Channels, L-Type -- metabolism, Receptors, Adenosine A2 -- metabolism, Rats, Signal Transducing -- metabolism, N-Methylaspartate -- metabolism, Calcium channel, Basal ganglia, Calcium Channels, Receptors, Dopamine D2 -- metabolism, Protein Multimerization, Dopamine D2 -- metabolism, Nucleus Accumbens -- metabolism
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