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1.
Neuroscience ; 528: 12-25, 2023 09 15.
Article in English | MEDLINE | ID: mdl-37536611

ABSTRACT

We employed the whole-cell patch-clamp method and ChAT-Cre mice to study the electrophysiological attributes of cholinergic neurons in the external globus pallidus. Most neurons were inactive, although approximately 20% displayed spontaneous firing, including burst firing. The resting membrane potential, the whole neuron input resistance, the membrane time constant and the total neuron membrane capacitance were also characterized. The current-voltage relationship showed time-independent inward rectification without a "sag". Firing induced by current injections had a brief initial fast adaptation followed by tonic firing with minimal accommodation. Intensity-frequency plots exhibited maximal average firing rates of about 10 Hz. These traits are similar to those of some cholinergic neurons in the basal forebrain. Also, we examined their dopamine sensitivity by acutely blocking dopamine receptors. This action demonstrated that the membrane potential, excitability, and firing pattern of pallidal cholinergic neurons rely on the constitutive activity of dopamine receptors, primarily D2-class receptors. The blockade of these receptors induced a resting membrane potential hyperpolarization, a decrease in firing for the same stimulus, the disappearance of fast adaptation, and the emergence of a depolarization block. This shift in physiological characteristics was evident even when the hyperpolarization was corrected with D.C. current. Neither the currents that generate the action potentials nor those from synaptic inputs were responsible. Instead, our findings suggest, that subthreshold slow ion currents, that require further investigation, are the target of this novel dopaminergic signaling.


Subject(s)
Dopamine , Globus Pallidus , Mice , Animals , Dopamine/physiology , Action Potentials/physiology , Cholinergic Neurons , Receptors, Dopamine , Cholinergic Agents
2.
Neuroscience ; 458: 153-165, 2021 03 15.
Article in English | MEDLINE | ID: mdl-33428968

ABSTRACT

Differences in the intrinsic properties of intralaminar thalamo-striatal neurons such as expressing low-threshold-spikes (LTS) or after hyperpolarizing potentials (AHPs) of different duration have been attributed to different maturation stages. However, two morphological types: "diffuse" and "bushy" have been described. Therefore, we explored whether electrophysiological differences persist in adult mice using whole cell recordings. Some recorded neurons were identified by intracellular labeling with biocytin and double labeling with retrograde or anterograde tracings using Cre-mice. We classified these neurons by their AHPs during spontaneous firing. Neurons with long duration AHPs, with fast and slow components, were mostly found in the parafascicular (Pf) nucleus. Neurons with brief AHPs were mainly found in the central lateral (CL) nucleus. However, neurons with both AHPs were found in both nuclei in different proportions. Firing frequency adaptation differed between these neuron classes: those with prolonged AHPs exhibited firing frequency adaptation with fast and slow time constants whereas those with brief AHPs were slow adapters. Neurons with more prolonged AHPs had significant higher input resistances than neurons with brief AHPs. Both cell classes could fire in two modes: trains of single action potentials at depolarized potentials or high frequency bursts on top of LTS at more hyperpolarized potentials. LTS were probably generated by Cav3 calcium channels since they were blocked by the selective antagonist TTA-P2. About 11% of neurons with brief AHPs and 55% of neurons with prolonged AHPs do not show LTS and bursts, even when potassium currents are blocked.


Subject(s)
Corpus Striatum , Neurons , Action Potentials , Animals , Calcium Channels , Mice
3.
Brain Res Bull ; 164: 289-298, 2020 11.
Article in English | MEDLINE | ID: mdl-32910991

ABSTRACT

Previous studies showed that mecamylamine a noncompetitive and nonspecific blocker of nicotinic acetylcholine receptors (nAChRs), stimulates the activity of the dorsal raphe nucleus (DRN) serotonergic neurons and DRN serotonin (5-HT) release. In the present study, the mechanisms involved in these mecamylamine-induced effects were examined using electrophysiology and calcium-imaging studies, both performed in Wistar rat midbrain slices. Mecamylamine (0.5-9 µM), bath administered, increased the firing frequency of identified 5-HT DRN neurons by a maximum of 5% at 3 µM. This effect was accompanied by a 112 % increase in the frequency of spontaneous excitatory postsynaptic currents of 5-HT DRN neurons. It was blocked by the AMPA/kainate receptor blocker CNQX (10 µM) and by the specific α4ß2 nAChRs blocker dihydro-ß-erythroidine (100 nM) but was not affected by tetrodotoxin (TTX, 500 nM). Simultaneously, mecamylamine produced a 58 % decrease in the frequency of GABAergic spontaneous inhibitory postsynaptic currents, an effect that was not influenced by TTX. Calcium-imaging studies support the results obtained with the electrophysiological studies by showing that mecamylamine (3 µM) increases the activity of a cell population located in the midline of the DRN, which was sensitive to the inhibitory effects of 8-OH-DPAT, an agonist at 5-HT1A receptors. It is assumed that mecamylamine, in low concentrations, acts as an agonist of α4ß2 nAChRs present on the glutamatergic DRN terminals, thus increasing intra-raphe glutamate release. This stimulatory effect is reinforced by the decrease in DRN GABA release, which is dependent on the mecamylamine-induced blockade of α7 nAChRs located on DRN GABAergic terminals. We hypothesize that at least a part of mecamylamine antidepressant effects described in animal models of depression are mediated by an increase in DRN 5-HT release.


Subject(s)
Action Potentials/drug effects , Dorsal Raphe Nucleus/drug effects , Ganglionic Blockers/pharmacology , Mecamylamine/pharmacology , Serotonergic Neurons/drug effects , Animals , Calcium/metabolism , Dorsal Raphe Nucleus/metabolism , Male , Patch-Clamp Techniques , Rats , Rats, Wistar , Serotonergic Neurons/metabolism
4.
Neuroscience ; 446: 304-322, 2020 10 15.
Article in English | MEDLINE | ID: mdl-32860933

ABSTRACT

The mouse motor cortex exhibits spontaneous activity in the form of temporal sequences of neuronal ensembles in vitro without the need of tissue stimulation. These neuronal ensembles are defined as groups of neurons with a strong correlation between its firing patterns, generating what appears to be a predetermined neural conduction mode that needs study. Each ensemble is commonly accompanied by one or more parvalbumin expressing neurons (PV+) or fast spiking interneurons. Many of these interneurons have functional connections between them, helping to form a circuit configuration similar to a small-world network. However, rich club metrics show that most connected neurons are neurons not expressing parvalbumin, mainly pyramidal neurons (PV-) suggesting feed-forward propagation through pyramidal cells. Ensembles with PV+ neurons are connected to these hubs. When ligand-gated fast GABAergic transmission is blocked, temporal sequences of ensembles collapse into a unique synchronous and recurrent ensemble, showing the need of inhibition for coding cortical spontaneous activity. This new ensemble has a duration and electrophysiological characteristics of brief recurrent interictal epileptiform discharges (IEDs) composed by the coactivity of both PV- and PV+ neurons, demonstrating that GABA transmission impedes its occurrence. Synchronous ensembles are clearly divided into two clusters one of them lasting longer and mainly composed by PV+ neurons. Because an ictal-like event was not recorded after several minutes of IEDs recording, it is inferred that an external stimulus and/or fast GABA transmission are necessary for its appearance, making this preparation ideal to study both the neuronal machinery to encode cortical spontaneous activity and its transformation into brief non-ictal epileptiform discharges.


Subject(s)
Motor Cortex , Action Potentials , Animals , Interneurons/metabolism , Mice , Motor Cortex/metabolism , Neurons/metabolism , Parvalbumins/metabolism
5.
Neuroreport ; 30(6): 457-462, 2019 04 10.
Article in English | MEDLINE | ID: mdl-30920433

ABSTRACT

The ionic driving force for the chloride-permeable GABAA receptor is subject to spatial control and distribution of chloride transporters. NKCC1 and KCC2 are mostly expressed in neurons in a specific manner. In the striatum, the localization of these transporters in identified neurons is unknown. In this study, the expression of these transporters was found to be different between projection neurons and interneurons. NKCC1 immunoreactivity was observed in the soma of adult BAC-D1-eGFP+ and D2-eGFP+ striatal projection neurons (SPNs). KCC2 was not expressed in either projection neuron and immunoreactivity to this transporter was observed only in the neuropile. However, NKCC1 and KCC2 co-transporters were not localized in intracellular biocytin-injected dendrites of SPNs of the direct or indirect pathways (D1-SPNs and D2-SPNs). Experiments with PV Cre transgenic mice transfected with Cre-dependent adeno-associated viruses containing tdTomato in the striatum showed a cell-type-specific distribution of KCC2 chloride transporter co-expression associated with PV interneurons. Thus, depolarizing actions of GABA responses in adult projection neurons can be explained by the expression and somatic localization of the NKCC1 transporters. A somato/dendritic distribution of KCC2 expression was observed only in striatal interneurons and corresponds to the hyperpolarizing action of GABA recorded in these cells. This correlates the different roles for GABA actions in striatal neuronal excitability with the expression of specific chloride transporters.


Subject(s)
Corpus Striatum/metabolism , Neurons/metabolism , Solute Carrier Family 12, Member 2/metabolism , Symporters/metabolism , Animals , Mice , Mice, Inbred C57BL , Mice, Transgenic , K Cl- Cotransporters
6.
Synapse ; 73(4): e22079, 2019 04.
Article in English | MEDLINE | ID: mdl-30421530

ABSTRACT

Different corticostriatal suprathreshold responses in direct and indirect striatal projection neurons (SPNs) of rodents have been reported. Responses consist in prolonged synaptic potentials of polysynaptic and intrinsic origin, in which voltage-gated Ca2 ⁺ currents play a role. Recording simultaneous Ca2 ⁺ imaging and voltage responses at the soma, while activating the corticostriatal pathway, we show that encoding of synaptic responses into trains of action potentials (APs) is different in SPNs: firing of APs in D1-SPNs increase gradually, in parallel with Ca2 ⁺ entry, as a function of stimulus intensity. In contrast, D2-SPNs attain a maximum number of evoked spikes at low stimulus intensities, Ca2 ⁺ entry is limited, and both remain the same in spite of increasing stimulus strength. Stimulus needs to reach certain intensity, to have propagated Ca2 ⁺ potentials to the soma plus a sudden step in Ca2 ⁺ entry, without changing the number of fired APs, phenomena never seen in D1-SPNs. Constant firing in spite of changing stimulus, suggested the involvement of underlying inactivating potentials. We found that Caᵥ3 currents contribute to Ca2+ entry in both classes of SPNs, but have a more notable effect in D2-SPNs, where a low-threshold spike was disclosed. Blockade of CaV 3 channels retarded the steep rise in firing in D2-SPNs. Inhibition block increased the number of spikes fired by D2-SPNs, without changing firing in D1-SPNs. These differences in synaptic integration enable a biophysical dissimilarity: dendritic inhibition appears to be more relevant for D2-SPNs. This may imply distinctions in the set of interneurons affecting each SPN class.


Subject(s)
Calcium Channels, T-Type/metabolism , Corpus Striatum/metabolism , Neurons/metabolism , Synapses/physiology , Animals , Calcium/metabolism , Calcium Channel Blockers/pharmacology , Corpus Striatum/cytology , Corpus Striatum/physiology , Female , Male , Mice , Mice, Inbred C57BL , Neurons/drug effects , Neurons/physiology , Rats , Synaptic Potentials
7.
BMC Neurosci ; 19(1): 42, 2018 07 16.
Article in English | MEDLINE | ID: mdl-30012109

ABSTRACT

BACKGROUND: Striatal fast-spiking interneurons (FSI) are a subset of GABAergic cells that express calcium-binding protein parvalbumin (PV). They provide feed-forward inhibition to striatal projection neurons (SPNs), receive cortical, thalamic and dopaminergic inputs and are coupled together by electrical and chemical synapses, being important components of the striatal circuitry. It is known that dopamine (DA) depolarizes FSI via D1-class DA receptors, but no studies about the ionic mechanism of this action have been reported. Here we ask about the ion channels that are the effectors of DA actions. This work studies their Ca2+ currents. RESULTS: Whole-cell recordings in acutely dissociated and identified FSI from PV-Cre transgenic mice were used to show that FSI express an array of voltage gated Ca2+ channel classes: CaV1, CaV2.1, CaV2.2, CaV2.3 and CaV3. However, CaV1 Ca2+ channel carries most of the whole-cell Ca2+ current in FSI. Activation of D1-like class of DA receptors by the D1-receptor selective agonist SKF-81297 (SKF) enhances whole-cell Ca2+ currents through CaV1 channels modulation. A previous block of CaV1 channels with nicardipine occludes the action of the DA-agonist, suggesting that no other Ca2+ channel is modulated by D1-receptor activation. Bath application of SKF in brain slices increases the firing rate and activity of FSI as measured with both whole-cell and Ca2+ imaging recordings. These actions are reduced by nicardipine. CONCLUSIONS: The present work discloses one final effector of DA modulation in FSI. We conclude that the facilitatory action of DA in FSI is in part due to CaV1 Ca2+ channels positive modulation.


Subject(s)
Calcium Channel Blockers/pharmacology , Calcium Channels, L-Type/drug effects , Calcium/metabolism , Dopamine Agonists/pharmacology , Animals , Corpus Striatum/drug effects , Dopamine/metabolism , Interneurons/drug effects , Membrane Potentials/drug effects , Mice, Transgenic , Parvalbumins/metabolism
8.
Front Neurosci ; 12: 345, 2018.
Article in English | MEDLINE | ID: mdl-29904337

ABSTRACT

Recent studies, have shown that insulin increases extrasynaptic GABAA receptor-mediated currents in the hippocampus, causing alterations of neuronal excitability. The prefrontal cortex (PFC) is another brain area which is involved in cognition functions and expresses insulin receptors. Here, we used electrophysiological, molecular, and immunocytochemical techniques to examine the effect of insulin on the extrasynaptic GABAA receptor-mediated tonic currents in brain slices. We found that insulin (20-500 nM) increases GABAA-mediated tonic currents. Our results suggest that insulin promotes the trafficking of extrasynaptic GABAA receptors from the cytoplasm to the cell membrane. Western blot analysis and immunocytochemistry showed that PFC extrasynaptic GABAA receptors contain α-5 and δ subunits. Insulin effect on tonic currents decreased the firing rate and neuronal excitability in layer 5-6 PFC cells. These effects of insulin were dependent on the activation of the PI3K enzyme, a key mediator of the insulin response within the brain. Taken together, these results suggest that insulin modulation of the GABAA-mediated tonic currents can modify the activity of neural circuits within the PFC. These actions could help to explain the alterations of cognitive processes associated with changes in insulin signaling.

9.
Neural Plast ; 2015: 472676, 2015.
Article in English | MEDLINE | ID: mdl-26113994

ABSTRACT

Striatal projection neurons (SPNs) process motor and cognitive information. Their activity is affected by Parkinson's disease, in which dopamine concentration is decreased and acetylcholine concentration is increased. Acetylcholine activates muscarinic receptors in SPNs. Its main source is the cholinergic interneuron that responds with a briefer latency than SPNs during a cortical command. Therefore, an important question is whether muscarinic G-protein coupled receptors and their signaling cascades are fast enough to intervene during synaptic responses to regulate synaptic integration and firing. One of the most known voltage dependent channels regulated by muscarinic receptors is the KV7/KCNQ channel. It is not known whether these channels regulate the integration of suprathreshold corticostriatal responses. Here, we study the impact of cholinergic muscarinic modulation on the synaptic response of SPNs by regulating KV7 channels. We found that KV7 channels regulate corticostriatal synaptic integration and that this modulation occurs in the dendritic/spines compartment. In contrast, it is negligible in the somatic compartment. This modulation occurs on sub- and suprathreshold responses and lasts during the whole duration of the responses, hundreds of milliseconds, greatly altering SPNs firing properties. This modulation affected the behavior of the striatal microcircuit.


Subject(s)
Action Potentials , GABAergic Neurons/physiology , KCNQ Potassium Channels/physiology , Neostriatum/physiology , Synapses/physiology , Action Potentials/drug effects , Animals , Cerebral Cortex/physiology , Cholinergic Neurons/physiology , Electric Stimulation , Excitatory Postsynaptic Potentials/drug effects , GABAergic Neurons/cytology , GABAergic Neurons/metabolism , Intercellular Signaling Peptides and Proteins , Mice, Transgenic , Muscarine/pharmacology , Muscarinic Agonists/pharmacology , Neostriatum/cytology , Neostriatum/metabolism , Peptides/pharmacology , Receptor, Muscarinic M1/agonists , Receptor, Muscarinic M1/antagonists & inhibitors , Receptors, Dopamine D1/metabolism , Receptors, Dopamine D2/metabolism
10.
J Neurophysiol ; 113(3): 796-807, 2015 Feb 01.
Article in English | MEDLINE | ID: mdl-25392165

ABSTRACT

The external globus pallidus (GPe) is central for basal ganglia processing. It expresses muscarinic cholinergic receptors and receives cholinergic afferents from the pedunculopontine nuclei (PPN) and other regions. The role of these receptors and afferents is unknown. Muscarinic M1-type receptors are expressed by synapses from striatal projection neurons (SPNs). Because axons from SPNs project to the GPe, one hypothesis is that striatopallidal GABAergic terminals may be modulated by M1 receptors. Alternatively, some M1 receptors may be postsynaptic in some pallidal neurons. Evidence of muscarinic modulation in any of these elements would suggest that cholinergic afferents from the PPN, or other sources, could modulate the function of the GPe. In this study, we show this evidence using striatopallidal slice preparations: after field stimulation in the striatum, the cholinergic muscarinic receptor agonist muscarine significantly reduced the amplitude of inhibitory postsynaptic currents (IPSCs) from synapses that exhibited short-term synaptic facilitation. This inhibition was associated with significant increases in paired-pulse facilitation, and quantal content was proportional to IPSC amplitude. These actions were blocked by atropine, pirenzepine, and mamba toxin-7, suggesting that receptors involved were M1. In addition, we found that some pallidal neurons have functional postsynaptic M1 receptors. Moreover, some evoked IPSCs exhibited short-term depression and a different kind of modulation: they were indirectly modulated by muscarine via the activation of presynaptic cannabinoid CB1 receptors. Thus pallidal synapses presenting distinct forms of short-term plasticity were modulated differently.


Subject(s)
Globus Pallidus/physiology , Inhibitory Postsynaptic Potentials , Receptor, Muscarinic M1/metabolism , Synapses/metabolism , Animals , Atropine/pharmacology , Cholinergic Neurons/drug effects , Cholinergic Neurons/metabolism , Cholinergic Neurons/physiology , Globus Pallidus/cytology , Intercellular Signaling Peptides and Proteins , Muscarine/pharmacology , Muscarinic Agonists/pharmacology , Muscarinic Antagonists/pharmacology , Peptides/pharmacology , Pirenzepine/pharmacology , Rats , Rats, Wistar , Receptor, Cannabinoid, CB1/metabolism , Receptor, Muscarinic M1/agonists , Receptor, Muscarinic M1/antagonists & inhibitors , Synapses/drug effects , Synapses/physiology
11.
Prog Brain Res ; 209: 39-56, 2014.
Article in English | MEDLINE | ID: mdl-24746042

ABSTRACT

Although the pre-Bötzinger complex (preBötC) was defined as the inspiratory rhythm generator long ago, the functional-anatomical characterization of its neuronal components is still being achieved. Recent advances have identified the expression of molecular markers in the preBötC neurons that, however, are not exclusive to specific respiratory neuron subtypes and have not always been related to specific cell morphologies. Here, we evaluated the morphology and the axonal projections of electrophysiologically defined respiratory neurons in the preBötC using whole-cell recordings and intracellular biocytin labeling. We found that respiratory pacemaker neurons are larger than expiratory neurons and that inspiratory neurons are smaller than pacemaker and expiratory neurons. Other morphological features such as somata shapes or dendritic branching patterns were not found to be significantly different among the preBötC neurons sampled. We also found that both pacemaker and inspiratory nonpacemaker neurons, but not expiratory neurons, show extensive axonal projections to the contralateral preBötC and show signs of electrical coupling. Overall, our data suggest that there are morphological differences between subtypes of preBötC respiratory neurons. It will be important to take such differences in consideration since morphological differences would influence synaptic responses and action potential propagation.


Subject(s)
Neurons/cytology , Neurons/physiology , Respiratory Center/cytology , Respiratory Center/physiology , Animals , Immunohistochemistry , Mice , Organ Culture Techniques , Patch-Clamp Techniques
12.
Front Syst Neurosci ; 7: 63, 2013.
Article in English | MEDLINE | ID: mdl-24109439

ABSTRACT

The firing of striatal projection neurons (SPNs) exhibits afterhyperpolarizing potentials (AHPs) that determine discharge frequency. They are in part generated by Ca(2+)-activated K(+)-currents involving BK and SK components. It has previously been shown that suprathreshold corticostriatal responses are more prolonged and evoke more action potentials in direct pathway SPNs (dSPNs) than in indirect pathway SPNs (iSPNs). In contrast, iSPNs generate dendritic autoregenerative responses. Using whole cell recordings in brain slices, we asked whether the participation of Ca(2+)-activated K(+)-currents plays a role in these responses. Secondly, we asked if these currents may explain some differences in synaptic integration between dSPNs and iSPNs. Neurons obtained from BAC D1 and D2 GFP mice were recorded. We used charybdotoxin and apamin to block BK and SK channels, respectively. Both antagonists increased the depolarization and delayed the repolarization of suprathreshold corticostriatal responses in both neuron classes. We also used NS 1619 and NS 309 (CyPPA), to enhance BK and SK channels, respectively. Current enhancers hyperpolarized and accelerated the repolarization of corticostriatal responses in both neuron classes. Nevertheless, these drugs made evident that the contribution of Ca(2+)-activated K(+)-currents was different in dSPNs as compared to iSPNs: in dSPNs their activation was slower as though calcium took a diffusion delay to activate them. In contrast, their activation was fast and then sustained in iSPNs as though calcium flux activates them at the moment of entry. The blockade of Ca(2+)-activated K(+)-currents made iSPNs to look as dSPNs. Conversely, their enhancement made dSPNs to look as iSPNs. It is concluded that Ca(2+)-activated K(+)-currents are a main intrinsic determinant causing the differences in synaptic integration between corticostriatal polysynaptic responses between dSPNs and iSPNs.

13.
BMC Neurosci ; 14: 60, 2013 Jun 20.
Article in English | MEDLINE | ID: mdl-23782743

ABSTRACT

BACKGROUND: Previous work showed differences in the polysynaptic activation of GABAergic synapses during corticostriatal suprathreshold responses in direct and indirect striatal projection neurons (dSPNs and iSPNs). Here, we now show differences and similarities in the polysynaptic activation of cortical glutamatergic synapses on the same responses. Corticostriatal contacts have been extensively studied. However, several questions remain unanswered, e.g.: what are the differences and similarities in the responses to glutamate in dSPNs and iSPNs? Does glutamatergic synaptic activation exhibits a distribution of latencies over time in vitro? That would be a strong suggestion of polysynaptic cortical convergence. What is the role of kainate receptors in corticostriatal transmission? Current-clamp recordings were used to answer these questions. One hypothesis was: if prolonged synaptic activation distributed along time was present, then it would be mainly generated from the cortex, and not from the striatum. RESULTS: By isolating responses from AMPA-receptors out of the complex suprathreshold response of SPNs, it is shown that a single cortical stimulus induces early and late synaptic activation lasting hundreds of milliseconds. Prolonged responses depended on cortical stimulation because they could not be elicited using intrastriatal stimulation, even if GABAergic transmission was blocked. Thus, the results are not explained by differences in evoked inhibition. Moreover, inhibitory participation was larger after cortical than after intrastriatal stimulation. A strong activation of interneurons was obtained from the cortex, demonstrating that polysynaptic activation includes the striatum. Prolonged kainate (KA) receptor responses were also elicited from the cortex. Responses of dSPNs and iSPNs did not depend on the cortical area stimulated. In contrast to AMPA-receptors, responses from NMDA- and KA-receptors do not exhibit early and late responses, but generate slow responses that contribute to plateau depolarizations. CONCLUSIONS: As it has been established in previous physiological studies in vivo, synaptic invasion over different latencies, spanning hundreds of milliseconds after a single stimulus strongly indicates convergent polysynaptic activation. Interconnected cortical neurons converging on the same SPNs may explain prolonged corticostriatal responses. Glutamate receptors participation in these responses is described as well as differences and similarities between dSPNs and iSPNs.


Subject(s)
Cerebral Cortex/cytology , Corpus Striatum/cytology , Neural Pathways/physiology , Neurons/physiology , Receptors, Glutamate/metabolism , Synapses/metabolism , Animals , Bicuculline/pharmacology , Biophysics , Electric Stimulation , Excitatory Amino Acid Agents/pharmacology , GABA-A Receptor Antagonists/pharmacology , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , In Vitro Techniques , Mice , Mice, Transgenic , Patch-Clamp Techniques , Rats , Rats, Wistar , Receptors, Dopamine D1/genetics , Receptors, Dopamine D2/genetics , Receptors, Glutamate/classification , Synaptic Transmission/drug effects , Synaptic Transmission/physiology
14.
J Neurosci ; 33(11): 4964-75, 2013 Mar 13.
Article in English | MEDLINE | ID: mdl-23486967

ABSTRACT

Inhibitory connections among striatal projection neurons (SPNs) called "feedback inhibition," have been proposed to endow the striatal microcircuit with computational capabilities, such as motor sequence selection, filtering, and the emergence of alternating network states. These properties are disrupted in models of Parkinsonism. However, the impact of feedback inhibition in the striatal network has remained under debate. Here, we test this inhibition at the microcircuit level. We used optical and electrophysiological recordings in mice and rats to demonstrate the action of striatal feedback transmission in normal and pathological conditions. Dynamic calcium imaging with single-cell resolution revealed the synchronous activation of a pool of identified SPNs by antidromic stimulation. Using bacterial artificial chromosome-transgenic mice, we demonstrate that the activated neuron pool equally possessed cells from the direct and indirect basal ganglia pathways. This pool inhibits itself because of its own GABA release when stimuli are frequent enough, demonstrating functional and significant inhibition. Blockade of GABAA receptors doubled the number of responsive neurons to the same stimulus, revealing a second postsynaptic neuron pool whose firing was being arrested by the first pool. Stronger connections arise from indirect SPNs. Dopamine deprivation impaired striatal feedback transmission disrupting the ability of a neuronal pool to arrest the firing of another neuronal pool. We demonstrate that feedback inhibition among SPNs is strong enough to control the firing of cell ensembles in the striatal microcircuit. However, to be effective, feedback inhibition should arise from synchronized pools of SPNs whose targets are other SPNs pools.


Subject(s)
Feedback, Physiological/physiology , Neostriatum/pathology , Neurons/physiology , Parkinsonian Disorders/pathology , Synaptic Transmission/physiology , 6-Cyano-7-nitroquinoxaline-2,3-dione/pharmacology , Action Potentials/drug effects , Action Potentials/genetics , Adrenergic Agents/toxicity , Anesthetics, Local/pharmacology , Animals , Animals, Newborn , Bicuculline/pharmacology , Biophysics , Calcium/metabolism , Disease Models, Animal , Electric Stimulation , Excitatory Amino Acid Antagonists/pharmacology , GABA Antagonists/pharmacology , Green Fluorescent Proteins/genetics , In Vitro Techniques , Lidocaine/analogs & derivatives , Lidocaine/pharmacology , Lysine/analogs & derivatives , Lysine/metabolism , Male , Mice , Mice, Transgenic , Monte Carlo Method , Neostriatum/cytology , Neostriatum/metabolism , Neural Inhibition/drug effects , Neural Inhibition/genetics , Neural Pathways/drug effects , Neural Pathways/physiology , Neurons/drug effects , Oxidopamine/toxicity , Parkinsonian Disorders/chemically induced , Parkinsonian Disorders/metabolism , Patch-Clamp Techniques , Pyridazines/pharmacology , Rats , Rats, Wistar , Reaction Time/drug effects , Reaction Time/genetics , Receptors, Dopamine D1/genetics , Receptors, Dopamine D2/genetics , Synaptic Transmission/drug effects , Synaptic Transmission/genetics , Time Factors , Valine/analogs & derivatives , Valine/pharmacology , gamma-Aminobutyric Acid/metabolism
15.
J Neurosci ; 32(43): 15148-57, 2012 Oct 24.
Article in English | MEDLINE | ID: mdl-23100436

ABSTRACT

Several behavioral effects of nicotine are mediated by changes in serotonin (5-HT) release in brain areas that receive serotonergic afferents from the dorsal raphe nucleus (DRN). In vitro experiments have demonstrated that nicotine increases the firing activity in the majority of DRN 5-HT neurons and that DRN contains nicotinic acetylcholine receptors (nAChRs) located at both somata and presynaptic elements. One of the most common presynaptic effects of nicotine is to increase glutamate release. Although DRN receives profuse glutamatergic afferents, the effect of nicotine on glutamate release in the DRN has not been studied in detail. Using whole-cell recording techniques, we investigated the effects of nicotine on the glutamatergic input to 5-HT DRN neurons in rat midbrain slices. Low nicotine concentrations, in the presence of bicuculline and tetrodotoxin (TTX), increased the frequency but did not change the amplitude of glutamate-induced EPSCs, recorded from identified 5-HT neurons. Nicotine-induced increase of glutamatergic EPSC frequency persisted 10-20 min after drug withdrawal. This nicotinic effect was mimicked by exogenous administration of acetylcholine (ACh) or inhibition of ACh metabolism. In addition, the nicotine-induced increase in EPSC frequency was abolished by blockade of α4ß2 nAChRs, voltage-gated calcium channels, or intracellular calcium signaling but not by α7 nAChR antagonists. These data suggest that both nicotine and endogenous ACh can increase glutamate release through activation of presynaptic α4ß2 but not α7 nAChRs in the DRN. The effect involves long-term changes in synaptic function, and it is dependent on voltage-gated calcium channels and presynaptic calcium stores.


Subject(s)
Glutamic Acid/physiology , Presynaptic Terminals/physiology , Raphe Nuclei/cytology , Receptors, Nicotinic/physiology , Serotonergic Neurons/cytology , Serotonergic Neurons/physiology , 6-Cyano-7-nitroquinoxaline-2,3-dione/pharmacology , Acetylcholine/pharmacology , Aconitine/analogs & derivatives , Aconitine/pharmacology , Animals , Animals, Newborn , Atropine/pharmacology , Bicuculline/pharmacology , Cadmium Chloride/pharmacology , Chelating Agents/pharmacology , Cholinergic Agonists/pharmacology , Dihydro-beta-Erythroidine/pharmacology , Egtazic Acid/analogs & derivatives , Egtazic Acid/pharmacology , Electric Stimulation , Enzyme Inhibitors/pharmacology , Excitatory Amino Acid Antagonists/pharmacology , Excitatory Postsynaptic Potentials/drug effects , Excitatory Postsynaptic Potentials/physiology , GABA Antagonists/pharmacology , In Vitro Techniques , Indoles/pharmacology , Male , Muscarinic Antagonists/pharmacology , Nicotine/analogs & derivatives , Nicotine/pharmacology , Nicotinic Antagonists/pharmacology , Patch-Clamp Techniques , Physostigmine/pharmacology , Presynaptic Terminals/drug effects , Rats , Rats, Wistar , Ryanodine/pharmacology , Serotonin/metabolism , Sodium Channel Blockers/pharmacology , Tetrodotoxin/pharmacology
16.
J Neurosci ; 31(42): 14972-83, 2011 Oct 19.
Article in English | MEDLINE | ID: mdl-22016530

ABSTRACT

Selection and inhibition of motor behaviors are related to the coordinated activity and compositional capabilities of striatal cell assemblies. Striatal network activity represents a main step in basal ganglia processing. The dopaminergic system differentially regulates distinct populations of striatal medium spiny neurons (MSNs) through the activation of D(1)- or D(2)-type receptors. Although postsynaptic and presynaptic actions of these receptors are clearly different in MSNs during cell-focused studies, their activation during network activity has shown inconsistent responses. Therefore, using electrophysiological techniques, functional multicell calcium imaging, and neuronal population analysis in rat corticostriatal slices, we describe the effect of selective dopaminergic receptor activation in the striatal network by observing cell assembly configurations. At the microcircuit level, during striatal network activity, the selective activation of either D(1)- or D(2)-type receptors is reflected as overall increases in neuronal synchronization. However, graph theory techniques applied to the transitions between network states revealed receptor-specific configurations of striatal cell assemblies: D(1) receptor activation generated closed trajectories with high recurrence and few alternate routes favoring the selection of specific sequences, whereas D(2) receptor activation created trajectories with low recurrence and more alternate pathways while promoting diverse transitions among neuronal pools. At the single-cell level, the activation of dopaminergic receptors enhanced the negative-slope conductance region (NSCR) in D(1)-type-responsive cells, whereas in neurons expressing D(2)-type receptors, the NSCR was decreased. Consequently, receptor-specific network dynamics most probably result from the interplay of postsynaptic and presynaptic dopaminergic actions.


Subject(s)
Corpus Striatum/cytology , Dopamine/metabolism , Nerve Net/physiology , Neurons/physiology , Receptors, Dopamine/metabolism , Aniline Compounds , Animals , Animals, Newborn , Brain Mapping , Calcium/metabolism , Dopamine Agonists/pharmacology , Dopamine Antagonists/pharmacology , Enkephalins/metabolism , Excitatory Amino Acid Agonists/pharmacology , Image Processing, Computer-Assisted , In Vitro Techniques , Male , Membrane Potentials/drug effects , N-Methylaspartate/pharmacology , Nerve Net/cytology , Nerve Net/drug effects , Neuroimaging/methods , Neurons/drug effects , Patch-Clamp Techniques , Rats , Rats, Wistar , Receptors, Dopamine/classification , Substance P/metabolism , Xanthenes
17.
Front Syst Neurosci ; 5: 15, 2011.
Article in English | MEDLINE | ID: mdl-21483724

ABSTRACT

Suprathreshold corticostriatal responses recorded from medium spiny neurons (MSNs) from the direct and indirect pathways of the basal ganglia are different. Their differences readily distinguish D(1)- and D(2)-type receptor expressing MSNs in both bacterial artificial chromosome-transgenic mice and their control littermates as well as in rats: indirect pathway neurons are more excitable than direct pathway neurons revealing autoregenerative spikes underlying their spike trains, whereas direct pathway neurons exhibit more prolonged plateau potentials and spike trains. SFK 81297, a selective agonist for D(1)-class receptors enhanced corticostriatal responses in direct pathway neurons, while quinelorane, a selective agonist for D(2)-class receptors reduced orthodromic and autoregenerative responses in indirect pathway neurons thus making both neuron classes similarly excitable. Because dopaminergic postsynaptic actions target Ca(V)1 (L) class voltage-gated calcium channels in MSNs, we hypothesized that these channels are involved and can explain a part of the dopaminergic actions on corticostriatal integration. Both 2.5 µM nicardipine and 400 nM calciseptine, selective Ca(V)1 channel blockers, reduced corticostriatal responses in both D(1)- and D(2)-receptor expressing neurons, respectively. A previous blockade of Ca(V)1 channels occluded the actions of dopamine agonists in both neuronal classes. In contrast, a Ca(V)1 (L) channel activator, 2.5 µM Bay K 8644, enhanced corticostriatal responses in neurons from both pathways. It is concluded that Ca(V)1 intrinsic currents mediate a part of the dopaminergic modulation during orthodromic synaptic integration of cortical inputs in both classes of MSNs.

18.
Front Syst Neurosci ; 4: 15, 2010.
Article in English | MEDLINE | ID: mdl-20589098

ABSTRACT

The striatum is the principal input structure of the basal ganglia. Major glutamatergic afferents to the striatum come from the cerebral cortex and make monosynaptic contacts with medium spiny projection neurons (MSNs) and interneurons. Also: glutamatergic afferents to the striatum come from the thalamus. Despite differences in axonal projections, dopamine (DA) receptors expression and differences in excitability between MSNs from "direct" and "indirect" basal ganglia pathways, these neuronal classes have been thought as electrophysiologically very similar. Based on work with bacterial artificial chromosome (BAC) transgenic mice, here it is shown that corticostriatal responses in D(1)- and D(2)-receptor expressing MSNs (D(1)- and D(2)-MSNs) are radically different so as to establish an electrophysiological footprint that readily differentiates between them. Experiments in BAC mice allowed us to predict, with high probability (P > 0.9), in rats or non-BAC mice, whether a recorded neuron, from rat or mouse, was going to be substance P or enkephalin (ENK) immunoreactive. Responses are more prolonged and evoke more action potentials in D(1)-MSNs, while they are briefer and exhibit intrinsic autoregenerative responses in D(2)-MSNs. A main cause for these differences was the interaction of intrinsic properties with the inhibitory contribution in each response. Inhibition always depressed corticostriatal depolarization in D(2)-MSNs, while it helped in sustaining prolonged depolarizations in D(1)-MSNs, in spite of depressing early discharge. Corticostriatal responses changed dramatically after striatal DA depletion in 6-hydroxy-dopamine (6-OHDA) lesioned animals: a response reduction was seen in substance P (SP)+ MSNs whereas an enhanced response was seen in ENK+ MSNs. The end result was that differences in the responses were greatly diminished after DA depletion.

19.
Cell Mol Neurobiol ; 30(5): 743-50, 2010 Jul.
Article in English | MEDLINE | ID: mdl-20140492

ABSTRACT

Intracellular recordings were obtained from brain slice preparation in neurons of the striatum of the turtle Trachemys scripta elegans, analogous to the mammalian striatum in its topographic organization, synaptic connectivity, cytoarchitecture, and neurochemistry. Here we show that these similarities extend to the electrophysiological properties of its neurons. Biocytin staining revealed that 85% of the recorded neurons were medium spiny neurons while 15% were aspiny neurons. Spiny neurons of the turtle resembled those found in the mammalian and avian striatum and express dopaminergic D(1) and D(2) class receptors. Because the striatum of the turtle receives a dense dopaminergic innervation from tegmental dopaminergic neurons we investigated the postsynaptic actions of selective dopamine receptor agonists in the excitability of spiny neurons. As in mammals and birds, activation of D(1)-receptors enhances, whereas activation of D(2)-receptors decreases the evoked discharge. Apparently, actions of dopamine agonists occur via the modulation of L-type (Ca(V)1) Ca2+-conductances. Strong cellular evidence suggests that the role of dopamine in the modulation of motor networks is preserved along vertebrate evolution.


Subject(s)
Corpus Striatum/drug effects , Corpus Striatum/physiology , Dopamine/pharmacology , Neurons/drug effects , Neurons/physiology , Turtles/physiology , Animals , Dopamine Agonists/pharmacology , Electrophysiological Phenomena/drug effects , In Vitro Techniques , Receptors, Dopamine D1/metabolism , Receptors, Dopamine D2/metabolism
20.
Cell Mol Neurobiol ; 29(5): 719-31, 2009 Jul.
Article in English | MEDLINE | ID: mdl-19350384

ABSTRACT

Neostriatal neurons may undergo events of spontaneous synchronization as those observed in recurrent networks of excitatory neurons, even when cortical afferents are transected. It is necessary to explain these events because the neostriatum is a recurrent network of inhibitory neurons. Synchronization of neuronal activity may be caused by plateau-like depolarizations. Plateau-like orthodromic depolarizations that resemble up-states in medium spiny neostriatal neurons (MSNs) may be induced by a single corticostriatal suprathreshold stimulus. Slow synaptic depolarizations may last hundreds of milliseconds, decay slower than the monosynaptic glutamatergic synaptic potentials that induce them, and sustain repetitive firing. Because inhibitory inputs impinging onto MSNs have a reversal potential above the resting membrane potential but below the threshold for firing, they conform a type of "shunting inhibition". This work asks if shunting GABAergic inputs onto MSNs arrive asynchronously enough as to help in sustaining the plateau-like corticostriatal response after a single cortical stimulus. This may help to begin explaining autonomous processing in the striatal micro-circuitry in the presence of a tonic excitatory drive and independently of spatio-temporally organized inputs. It is shown here that besides synaptic currents from AMPA/KA- and NMDA-receptors, as well as L-type intrinsic Ca(2+)- currents, inhibitory synapses help in maintaining the slow depolarization, although they accomplish the role of depressing firing at the beginning of the response. We then used a NEURON model of spiny cells to show that inhibitory synapses arriving asynchronously on the dendrites can help to simulate a plateau potential similar to that observed experimentally.


Subject(s)
Models, Neurological , Neostriatum/physiology , Neural Inhibition/physiology , Animals , Calcium Signaling , Nerve Net/physiology , Rats , Rats, Wistar , Receptors, N-Methyl-D-Aspartate/metabolism , Synaptic Potentials/physiology
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