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1.
PLoS One ; 19(6): e0305066, 2024.
Article in English | MEDLINE | ID: mdl-38843228

ABSTRACT

A large body of evidence has shown that treatments that interfere with memory consolidation become ineffective when animals are subjected to an intense learning experience; this effect has been observed after systemic and local administration of amnestic drugs into several brain areas, including the striatum. However, the effects of amnestic treatments on the process of extinction after intense training have not been studied. Previous research demonstrated increased spinogenesis in the dorsomedial striatum, but not in the dorsolateral striatum after intense training, indicating that the dorsomedial striatum is involved in the protective effect of intense training. To investigate this issue, male Wistar rats, previously trained with low, moderate, or high levels of foot shock, were used to study the effect of tetrodotoxin inactivation of dorsomedial striatum on memory consolidation and subsequent extinction of inhibitory avoidance. Performance of the task was evaluated during seven extinction sessions. Tetrodotoxin produced a marked deficit of memory consolidation of inhibitory avoidance trained with low and moderate intensities of foot shock, but normal consolidation occurred when a relatively high foot shock was used. The protective effect of intense training was long-lasting, as evidenced by the high resistance to extinction exhibited throughout the extinction sessions. We discuss the possibility that increased dendritic spinogenesis in dorsomedial striatum may underly this protective effect, and how this mechanism may be related to the resilient memory typical of post-traumatic stress disorder (PTSD).


Subject(s)
Avoidance Learning , Corpus Striatum , Extinction, Psychological , Rats, Wistar , Tetrodotoxin , Animals , Male , Extinction, Psychological/drug effects , Extinction, Psychological/physiology , Rats , Avoidance Learning/drug effects , Avoidance Learning/physiology , Corpus Striatum/physiology , Corpus Striatum/drug effects , Tetrodotoxin/pharmacology , Memory Consolidation/drug effects , Memory Consolidation/physiology , Amnesia/physiopathology , Amnesia/prevention & control , Electroshock
2.
Sci Rep ; 14(1): 13080, 2024 06 07.
Article in English | MEDLINE | ID: mdl-38844465

ABSTRACT

Greater exposure to stressors over the life course is believed to promote striatum-dependent over hippocampus-dependent learning and memory processes under stressful conditions. However, little research in this context has actually assessed lifetime stressor exposure and, moreover, it remains unknown whether greater cumulative lifetime stressor exposure exerts comparable effects on striatum-dependent learning and hippocampus-dependent learning in non-stressful contexts. To investigate this issue, we used the Stress and Adversity Inventory for Adults (Adult STRAIN) and Multicued Search Task to investigate the relation between cumulative lifetime stressor exposure and striatum-dependent stimulus-response learning and hippocampus-dependent contextual learning under non-stressful conditions among healthcare professionals (N = 205; 157 females, 48 males; Age: M = 34.23, SD 9.3, range 20-59 years). Individuals with moderate, but not low, cumulative lifetime stressor exposure exhibited impaired learning for stimulus-response associations. In contrast, learning for context associations was unrelated to participants' lifetime stressor exposure profiles. These results thus provide first evidence that cumulative lifetime stressor exposure may have negative consequences on human striatum-dependent stimulus-response learning under non-stressful environmental conditions.


Subject(s)
Learning , Stress, Psychological , Humans , Male , Female , Adult , Stress, Psychological/physiopathology , Middle Aged , Young Adult , Learning/physiology , Hippocampus/physiology , Corpus Striatum/physiology
3.
Commun Biol ; 7(1): 555, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38724614

ABSTRACT

Spatio-temporal activity patterns have been observed in a variety of brain areas in spontaneous activity, prior to or during action, or in response to stimuli. Biological mechanisms endowing neurons with the ability to distinguish between different sequences remain largely unknown. Learning sequences of spikes raises multiple challenges, such as maintaining in memory spike history and discriminating partially overlapping sequences. Here, we show that anti-Hebbian spike-timing dependent plasticity (STDP), as observed at cortico-striatal synapses, can naturally lead to learning spike sequences. We design a spiking model of the striatal output neuron receiving spike patterns defined as sequential input from a fixed set of cortical neurons. We use a simple synaptic plasticity rule that combines anti-Hebbian STDP and non-associative potentiation for a subset of the presented patterns called rewarded patterns. We study the ability of striatal output neurons to discriminate rewarded from non-rewarded patterns by firing only after the presentation of a rewarded pattern. In particular, we show that two biological properties of striatal networks, spiking latency and collateral inhibition, contribute to an increase in accuracy, by allowing a better discrimination of partially overlapping sequences. These results suggest that anti-Hebbian STDP may serve as a biological substrate for learning sequences of spikes.


Subject(s)
Corpus Striatum , Learning , Neuronal Plasticity , Neuronal Plasticity/physiology , Learning/physiology , Corpus Striatum/physiology , Models, Neurological , Animals , Action Potentials/physiology , Neurons/physiology , Humans
4.
Nat Commun ; 15(1): 4201, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760337

ABSTRACT

The dorsolateral prefrontal cortex (dlPFC) is crucial for regulation of emotion that is known to aid prevention of depression. The broader fronto-cingulo-striatal (FCS) network, including cognitive dlPFC and limbic cingulo-striatal regions, has been associated with a negative evaluation bias often seen in depression. The mechanism by which dlPFC regulates the limbic system remains largely unclear. Here we have successfully induced a negative bias in decision-making in female primates performing a conflict decision-making task, by directly microstimulating the subgenual cingulate cortex while simultaneously recording FCS local field potentials (LFPs). The artificially induced negative bias in decision-making was associated with a significant decrease in functional connectivity from cognitive to limbic FCS regions, represented by a reduction in Granger causality in beta-range LFPs from the dlPFC to the other regions. The loss of top-down directional influence from cognitive to limbic regions, we suggest, could underlie negative biases in decision-making as observed in depressive states.


Subject(s)
Decision Making , Gyrus Cinguli , Animals , Gyrus Cinguli/physiology , Decision Making/physiology , Female , Corpus Striatum/physiology , Macaca mulatta/physiology , Dorsolateral Prefrontal Cortex/physiology , Prefrontal Cortex/physiology , Electric Stimulation , Nerve Net/physiology , Neural Pathways/physiology
5.
Neurobiol Learn Mem ; 212: 107937, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38735637

ABSTRACT

Systemic manipulations that enhance dopamine (DA) transmission around the time of fear extinction can strengthen fear extinction and reduce conditioned fear relapse. Prior studies investigating the brain regions where DA augments fear extinction focus on targets of mesolimbic and mesocortical DA systems originating in the ventral tegmental area, given the role of these DA neurons in prediction error. The dorsal striatum (DS), a primary target of the nigrostriatal DA system originating in the substantia nigra (SN), is implicated in behaviors beyond its canonical role in movement, such as reward and punishment, goal-directed action, and stimulus-response associations, but whether DS DA contributes to fear extinction is unknown. We have observed that chemogenetic stimulation of SN DA neurons during fear extinction prevents the return of fear in contexts different from the extinction context, a form of relapse called renewal. This effect of SN DA stimulation is mimicked by a DA D1 receptor (D1R) agonist injected into the DS, thus implicating DS DA in fear extinction. Different DS subregions subserve unique functions of the DS, but it is unclear where in the DS D1R agonist acts during fear extinction to reduce renewal. Furthermore, although fear extinction increases neural activity in DS subregions, whether neural activity in DS subregions is causally involved in fear extinction is unknown. To explore the role of DS subregions in fear extinction, adult, male Long-Evans rats received microinjections of either the D1R agonist SKF38393 or a cocktail consisting of GABAA/GABAB receptor agonists muscimol/baclofen selectively into either dorsomedial (DMS) or dorsolateral (DLS) DS subregions immediately prior to fear extinction, and extinction retention and renewal were subsequently assessed drug-free. While increasing D1R signaling in the DMS during fear extinction did not impact fear extinction retention or renewal, DMS inactivation reduced later renewal. In contrast, DLS inactivation had no effect on fear extinction retention or renewal but increasing D1R signaling in the DLS during extinction reduced fear renewal. These data suggest that DMS and DLS activity during fear extinction can have opposing effects on later fear renewal, with the DMS promoting renewal and the DLS opposing renewal. Mechanisms through which the DS could influence the contextual gating of fear extinction are discussed.


Subject(s)
Corpus Striatum , Extinction, Psychological , Fear , Receptors, Dopamine D1 , Animals , Fear/physiology , Fear/drug effects , Extinction, Psychological/drug effects , Extinction, Psychological/physiology , Male , Rats , Corpus Striatum/drug effects , Corpus Striatum/physiology , Corpus Striatum/metabolism , Receptors, Dopamine D1/physiology , Receptors, Dopamine D1/metabolism , Receptors, Dopamine D1/antagonists & inhibitors , Dopamine Agonists/pharmacology , Conditioning, Classical/drug effects , Conditioning, Classical/physiology , Dopaminergic Neurons/drug effects , Dopaminergic Neurons/physiology , Substantia Nigra/drug effects , Substantia Nigra/physiology , Rats, Long-Evans , Dopamine/metabolism , Dopamine/physiology
6.
PLoS Comput Biol ; 20(5): e1012082, 2024 May.
Article in English | MEDLINE | ID: mdl-38701077

ABSTRACT

Many self-motivated and goal-directed behaviours display highly flexible, approximately 4 hour ultradian (shorter than a day) oscillations. Despite lacking direct correspondence to physical cycles in the environment, these ultradian rhythms may be involved in optimizing functional interactions with the environment and reflect intrinsic neural dynamics. Current evidence supports a role of mesostriatal dopamine (DA) in the expression and propagation of ultradian rhythmicity, however, the biochemical processes underpinning these oscillations remain to be identified. Here, we use a mathematical model to investigate D2 autoreceptor-dependent DA self-regulation as the source of ultradian behavioural rhythms. DA concentration at the midbrain-striatal synapses is governed through a dual-negative feedback-loop structure, which naturally gives rise to rhythmicity. This model shows the propensity of striatal DA to produce an ultradian oscillation characterized by a flexible period that is highly sensitive to parameter variations. Circadian (approximately 24 hour) regulation consolidates the ultradian oscillations and alters their response to the phase-dependent, rapid-resetting effect of a transient excitatory stimulus. Within a circadian framework, the ultradian rhythm orchestrates behavioural activity and enhances responsiveness to an external stimulus. This suggests a role for the circadian-ultradian timekeeping hierarchy in governing organized behaviour and shaping daily experience through coordinating the motivation to engage in recurring, albeit not highly predictable events, such as social interactions.


Subject(s)
Dopamine , Receptors, Dopamine D2 , Ultradian Rhythm , Dopamine/metabolism , Dopamine/physiology , Receptors, Dopamine D2/metabolism , Ultradian Rhythm/physiology , Animals , Models, Neurological , Humans , Circadian Rhythm/physiology , Corpus Striatum/physiology , Corpus Striatum/metabolism , Computational Biology
7.
Nat Neurosci ; 27(6): 1148-1156, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38693349

ABSTRACT

Compulsive behaviors have been associated with striatal hyperactivity. Parvalbumin-positive striatal interneurons (PVIs) in the striatum play a crucial role in regulating striatal activity and suppressing prepotent inappropriate actions. To investigate the potential role of striatal PVIs in regulating compulsive behaviors, we assessed excessive self-grooming-a behavioral metric of compulsive-like behavior-in male Sapap3 knockout mice (Sapap3-KO). Continuous optogenetic activation of PVIs in striatal areas receiving input from the lateral orbitofrontal cortex reduced self-grooming events in Sapap3-KO mice to wild-type levels. Aiming to shorten the critical time window for PVI recruitment, we then provided real-time closed-loop optogenetic stimulation of striatal PVIs, using a transient power increase in the 1-4 Hz frequency band in the orbitofrontal cortex as a predictive biomarker of grooming onsets. Targeted closed-loop stimulation at grooming onsets was as effective as continuous stimulation in reducing grooming events but required 87% less stimulation time, paving the way for adaptive stimulation therapeutic protocols.


Subject(s)
Compulsive Behavior , Corpus Striatum , Grooming , Interneurons , Mice, Knockout , Optogenetics , Animals , Interneurons/physiology , Grooming/physiology , Compulsive Behavior/physiopathology , Male , Mice , Corpus Striatum/physiology , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Prefrontal Cortex/physiology , Mice, Inbred C57BL , Parvalbumins/metabolism
8.
Curr Biol ; 34(9): 1831-1843.e7, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38604168

ABSTRACT

The coordination of neural activity across brain areas during a specific behavior is often interpreted as neural communication involved in controlling the behavior. However, whether information relevant to the behavior is actually transferred between areas is often untested. Here, we used information-theoretic tools to quantify how motor cortex and striatum encode and exchange behaviorally relevant information about specific reach-to-grasp movement features during skill learning in rats. We found a temporal shift in the encoding of behaviorally relevant information during skill learning, as well as a reversal in the primary direction of behaviorally relevant information flow, from cortex-to-striatum during naive movements to striatum-to-cortex during skilled movements. Standard analytical methods that quantify the evolution of overall neural activity during learning-such as changes in neural signal amplitude or the overall exchange of information between areas-failed to capture these behaviorally relevant information dynamics. Using these standard methods, we instead found a consistent coactivation of overall neural signals during movement production and a bidirectional increase in overall information propagation between areas during learning. Our results show that skill learning is achieved through a transformation in how behaviorally relevant information is routed across cortical and subcortical brain areas and that isolating the components of neural activity relevant to and informative about behavior is critical to uncover directional interactions within a coactive and coordinated network.


Subject(s)
Corpus Striatum , Learning , Motor Cortex , Motor Skills , Rats, Long-Evans , Animals , Motor Cortex/physiology , Learning/physiology , Rats , Corpus Striatum/physiology , Male , Motor Skills/physiology
9.
J Neurophysiol ; 131(5): 914-936, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38596834

ABSTRACT

Two subtypes of striatal spiny projection neurons, iSPNs and dSPNs, whose axons form the "indirect" and "direct" pathways of the basal ganglia, respectively, both make synaptic connections in the external globus pallidus (GPe) but are usually found to have different effects on behavior. Activation of the terminal fields of iSPNs or dSPNs generated compound currents in almost all GPe neurons. To determine whether iSPNs and dSPNs have the same or different effects on pallidal neurons, we studied the unitary synaptic currents generated in GPe neurons by action potentials in single striatal neurons. We used optogenetic excitation to elicit repetitive firing in a small number of nearby SPNs, producing sparse barrages of inhibitory postsynaptic currents (IPSCs) in GPe neurons. From these barrages, we isolated sequences of IPSCs with similar time courses and amplitudes, which presumably arose from the same SPN. There was no difference between the amplitudes of unitary IPSCs generated by the indirect and direct pathways. Most unitary IPSCs were small, but a subset from each pathway were much larger. To determine the effects of these unitary synaptic currents on the action potential firing of GPe neurons, we drove SPNs to fire as before and recorded the membrane potential of GPe neurons. Large unitary potentials from iSPNs and dSPNs perturbed the spike timing of GPe neurons in a similar way. Most SPN-GPe neuron pairs are weakly connected, but a subset of pairs in both pathways are strongly connected.NEW & NOTEWORTHY This is the first study to record the synaptic currents generated by single identified direct or indirect pathway striatal neurons on single pallidal neurons. Each GPe neuron receives synaptic inputs from both pathways. Most striatal neurons generate small synaptic currents that become influential when occurring together, but a few are powerful enough to be individually influential.


Subject(s)
Inhibitory Postsynaptic Potentials , Neurons , Optogenetics , Animals , Mice , Neurons/physiology , Inhibitory Postsynaptic Potentials/physiology , Corpus Striatum/physiology , Corpus Striatum/cytology , Globus Pallidus/physiology , Globus Pallidus/cytology , Action Potentials/physiology , Male , Mice, Inbred C57BL , Female , Neural Pathways/physiology , Synapses/physiology
10.
Brain Struct Funct ; 229(5): 1143-1164, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38615290

ABSTRACT

The claustrum is an ancient telencephalic subcortical structure displaying extensive, reciprocal connections with much of the cortex and receiving projections from thalamus, amygdala, and hippocampus. This structure has a general role in modulating cortical excitability and is considered to be engaged in different cognitive and motor functions, such as sensory integration and perceptual binding, salience-guided attention, top-down executive functions, as well as in the control of brain states, such as sleep and its interhemispheric integration. The present study is the first to describe in detail a projection from the claustrum to the striatum in the macaque brain. Based on tracer injections in different striatal regions and in different cortical areas, we observed a rough topography of the claustral connectivity, thanks to which a claustral zone projects to both a specific striatal territory and to cortical areas involved in a network projecting to the same striatal territory. The present data add new elements of complexity of the basal ganglia information processing mode in motor and non-motor functions and provide evidence for an influence of the claustrum on both cortical functional domains and cortico-basal ganglia circuits.


Subject(s)
Basal Ganglia , Cerebral Cortex , Claustrum , Neural Pathways , Animals , Claustrum/physiology , Cerebral Cortex/physiology , Neural Pathways/physiology , Male , Basal Ganglia/physiology , Corpus Striatum/physiology
11.
Eur J Neurosci ; 59(11): 3061-3073, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38576223

ABSTRACT

The present study aimed to examine the effect of cholinergic interneuron lesions in the dorsal striatum on duration-memory formation. Cholinergic interneurons in the dorsal striatum may be involved in the formation of duration memory since they are among the main inputs to the dorsal striatal muscarinic acetylcholine-1 receptors, which play a role in the consolidation of duration memory. Rats were sufficiently trained using a peak-interval 20 s procedure and then infused with anti-choline acetyltransferase-saporin into the dorsal striatum to cause selective ablation of cholinergic interneurons. To make the rats acquire new duration-memories, we trained them with a peak interval 40 s after lesion. Before lesion, the peak times (an index of duration memory) for sham-lesioned and lesioned groups were similar at approximately 20 s. In the peak interval 40 s session, the peak times for the sham-lesioned and lesioned groups were approximately 30 and 20 s, respectively. After additional peak interval 40 s sessions, the peak times of both groups were shifted to approximately 40 s. Those results suggest that the cholinergic interneuron lesion delayed new duration-memory acquisition. Subsequent experiments showed that cholinergic interneuron lesions did not retard the shift of peak time to the original target time (20 s). Following experiment without changing the target time after lesion showed that cholinergic interneuron lesions did not change their peak times. Our findings suggest that cholinergic interneurons in the dorsal striatum are involved in new duration-memory acquisition but not in the utilization of already acquired duration memory and interval timing.


Subject(s)
Cholinergic Neurons , Corpus Striatum , Interneurons , Animals , Interneurons/physiology , Male , Rats , Corpus Striatum/physiology , Cholinergic Neurons/physiology , Cholinergic Neurons/metabolism , Memory/physiology , Choline O-Acetyltransferase/metabolism , Rats, Wistar
12.
Elife ; 122024 Mar 25.
Article in English | MEDLINE | ID: mdl-38526916

ABSTRACT

The striatum serves an important role in motor control, and neurons in this area encode the body's initiation, cessation, and speed of locomotion. However, it remains unclear whether the same neurons also encode the step-by-step rhythmic motor patterns of individual limbs that characterize gait. By combining high-speed video tracking, electrophysiology, and optogenetic tagging, we found that a sizable population of both D1 and D2 receptor expressing medium spiny projection neurons (MSNs) were phase-locked to the gait cycle of individual limbs in mice. Healthy animals showed balanced limb phase-locking between D1 and D2 MSNs, while dopamine depletion led to stronger phase-locking in D2 MSNs. These findings indicate that striatal neurons represent gait on a single-limb and step basis, and suggest that elevated limb phase-locking of D2 MSNs may underlie some of the gait impairments associated with dopamine loss.


Subject(s)
Dopamine , Receptors, Dopamine D1 , Mice , Animals , Receptors, Dopamine D1/metabolism , Corpus Striatum/physiology , Neostriatum/physiology , Gait , Mice, Transgenic
13.
Sci Rep ; 14(1): 6363, 2024 03 16.
Article in English | MEDLINE | ID: mdl-38493169

ABSTRACT

Inhibition is implicated across virtually all human experiences. As a trade-off of being very efficient, this executive function is also prone to many errors. Rodent and computational studies show that midbrain regions play crucial roles during errors by sending dopaminergic learning signals to the basal ganglia for behavioural adjustment. However, the parallels between animal and human neural anatomy and function are not determined. We scanned human adults while they performed an fMRI inhibitory task requiring trial-and-error learning. Guided by an actor-critic model, our results implicate the dorsal striatum and the ventral tegmental area as the actor and the critic, respectively. Using a multilevel and dimensional approach, we also demonstrate a link between midbrain and striatum circuit activity, inhibitory performance, and self-reported autistic and obsessive-compulsive subclinical traits.


Subject(s)
Learning , Ventral Tegmental Area , Adult , Animals , Humans , Ventral Tegmental Area/physiology , Learning/physiology , Basal Ganglia , Corpus Striatum/physiology , Neural Inhibition
14.
J Neurophysiol ; 131(6): 1083-1100, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38505898

ABSTRACT

The striatum receives projections from multiple regions of the cerebral cortex consistent with the role of the basal ganglia in diverse motor, affective, and cognitive functions. Within the striatum, the caudate receives projections from association cortex, including multiple distinct regions of prefrontal cortex. Building on recent insights about the details of how juxtaposed cortical networks are specialized for distinct aspects of higher-order cognition, we revisited caudate organization using within-individual precision neuroimaging initially in two intensively scanned individuals (each scanned 31 times). Results revealed that the caudate has side-by-side regions that are coupled to at least five distinct distributed association networks, paralleling the organization observed in the cerebral cortex. We refer to these spatial groupings of regions as striatal association megaclusters. Correlation maps from closely juxtaposed seed regions placed within the megaclusters recapitulated the five distinct cortical networks, including their multiple spatially distributed regions. Striatal association megaclusters were explored in 15 additional participants (each scanned at least 8 times), finding that their presence generalizes to new participants. Analysis of the laterality of the regions within the megaclusters further revealed that they possess asymmetries paralleling their cortical counterparts. For example, caudate regions linked to the language network were left lateralized. These results extend the general notion of parallel specialized basal ganglia circuits with the additional discovery that, even within the caudate, there is fine-grained separation of multiple distinct higher-order networks that reflects the organization and lateralization found in the cerebral cortex.NEW & NOTEWORTHY An individualized precision neuroimaging approach reveals juxtaposed zones of the caudate that are coupled with five distinct networks in association cortex. The organization of these caudate zones recapitulates organization observed in the cerebral cortex and extends the notion of specialized basal ganglia circuits.


Subject(s)
Caudate Nucleus , Humans , Male , Adult , Female , Caudate Nucleus/physiology , Caudate Nucleus/diagnostic imaging , Corpus Striatum/physiology , Corpus Striatum/diagnostic imaging , Cerebral Cortex/physiology , Cerebral Cortex/diagnostic imaging , Magnetic Resonance Imaging , Neural Pathways/physiology , Neural Pathways/diagnostic imaging , Young Adult , Nerve Net/physiology , Nerve Net/diagnostic imaging , Middle Aged
15.
Nat Commun ; 15(1): 1916, 2024 Mar 01.
Article in English | MEDLINE | ID: mdl-38429266

ABSTRACT

The striatum, known as the input nucleus of the basal ganglia, is extensively studied for its diverse behavioral roles. However, the relationship between its neuronal and vascular activity, vital for interpreting functional magnetic resonance imaging (fMRI) signals, has not received comprehensive examination within the striatum. Here, we demonstrate that optogenetic stimulation of dorsal striatal neurons or their afferents from various cortical and subcortical regions induces negative striatal fMRI responses in rats, manifesting as vasoconstriction. These responses occur even with heightened striatal neuronal activity, confirmed by electrophysiology and fiber-photometry. In parallel, midbrain dopaminergic neuron optogenetic modulation, coupled with electrochemical measurements, establishes a link between striatal vasodilation and dopamine release. Intriguingly, in vivo intra-striatal pharmacological manipulations during optogenetic stimulation highlight a critical role of opioidergic signaling in generating striatal vasoconstriction. This observation is substantiated by detecting striatal vasoconstriction in brain slices after synthetic opioid application. In humans, manipulations aimed at increasing striatal neuronal activity likewise elicit negative striatal fMRI responses. Our results emphasize the necessity of considering vasoactive neurotransmission alongside neuronal activity when interpreting fMRI signal.


Subject(s)
Corpus Striatum , Magnetic Resonance Imaging , Humans , Rats , Animals , Magnetic Resonance Imaging/methods , Corpus Striatum/physiology , Neostriatum , Basal Ganglia , Dopaminergic Neurons
16.
Nature ; 627(8003): 358-366, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38418885

ABSTRACT

Astrocytes are heterogeneous glial cells of the central nervous system1-3. However, the physiological relevance of astrocyte diversity for neural circuits and behaviour remains unclear. Here we show that a specific population of astrocytes in the central striatum expresses µ-crystallin (encoded by Crym in mice and CRYM in humans) that is associated with several human diseases, including neuropsychiatric disorders4-7. In adult mice, reducing the levels of µ-crystallin in striatal astrocytes through CRISPR-Cas9-mediated knockout of Crym resulted in perseverative behaviours, increased fast synaptic excitation in medium spiny neurons and dysfunctional excitatory-inhibitory synaptic balance. Increased perseveration stemmed from the loss of astrocyte-gated control of neurotransmitter release from presynaptic terminals of orbitofrontal cortex-striatum projections. We found that perseveration could be remedied using presynaptic inhibitory chemogenetics8, and that this treatment also corrected the synaptic deficits. Together, our findings reveal converging molecular, synaptic, circuit and behavioural mechanisms by which a molecularly defined and allocated population of striatal astrocytes gates perseveration phenotypes that accompany neuropsychiatric disorders9-12. Our data show that Crym-positive striatal astrocytes have key biological functions within the central nervous system, and uncover astrocyte-neuron interaction mechanisms that could be targeted in treatments for perseveration.


Subject(s)
Astrocytes , Corpus Striatum , Rumination, Cognitive , mu-Crystallins , Animals , Humans , Mice , Astrocytes/metabolism , Corpus Striatum/cytology , Corpus Striatum/physiology , Gene Editing , Gene Knockout Techniques , mu-Crystallins/deficiency , mu-Crystallins/genetics , mu-Crystallins/metabolism , Rumination, Cognitive/physiology , Synaptic Transmission , CRISPR-Cas Systems , Medium Spiny Neurons/metabolism , Synapses/metabolism , Prefrontal Cortex/cytology , Prefrontal Cortex/metabolism , Presynaptic Terminals/metabolism , Neural Inhibition
17.
Curr Opin Neurobiol ; 85: 102839, 2024 04.
Article in English | MEDLINE | ID: mdl-38309106

ABSTRACT

Striatal dopamine governs a wide range of behavioral functions, yet local dopamine concentrations can be dissociated from somatic activity. Here, we discuss how dopamine's diverse roles in behavior may be driven by local circuit mechanisms shaping dopamine release. We first look at historical and recent work demonstrating that striatal circuits interact with dopaminergic terminals to either initiate the release of dopamine or modulate the release of dopamine initiated by spiking in midbrain dopamine neurons, with particular attention to GABAergic and cholinergic local circuit mechanisms. Then we discuss some of the first in vivo studies of acetylcholine-dopamine interactions in striatum and broadly discuss necessary future work in understanding the roles of midbrain versus striatal dopamine regulation.


Subject(s)
Corpus Striatum , Dopamine , Dopamine/physiology , Corpus Striatum/physiology , Acetylcholine , Dopaminergic Neurons/physiology
18.
Curr Neuropharmacol ; 22(9): 1566-1575, 2024.
Article in English | MEDLINE | ID: mdl-38420787

ABSTRACT

BACKGROUND: Cholinergic interneurons (ChIs) are important for learning and memory. They exhibit a multiphasic excitation-pause-rebound response to reward or sensory cues indicating a reward, believed to gate dopamine-dependent learning. Although ChIs receive extensive top-down inputs from the cortex and bottom-up inputs from the thalamus and midbrain, it is unclear which inputs are involved in the development of ChI multiphasic activity. METHODS: We used a single-unit recording of putative ChIs (pChIs) in response to cortical and visual stimulation to investigate how top-down and bottom-up inputs regulate the firing pattern of ChIs. RESULTS: We demonstrated that cortical stimulation strongly regulates pChIs, with the maximum firing rate occurring at the peak of the inverted local field potential (iLFP), reflecting maximum cortical stimulation. Pauses in pChIs occurred during the descending phase of iLFP, indicating withdrawal of excitatory cortical input. Visual stimulation induced long pauses in pChIs, but it is unlikely that bottom- up inputs alone induce pauses in behaving animals. Also, the firing pattern of ChIs triggered by visual stimulation did not correlate with the iLFP as it did after cortical stimulation. Top-down and bottom-up inputs independently regulate the firing pattern of ChIs with similar efficacy but notably produce a well-defined pause in ChI firing. CONCLUSION: This study provides in vivo evidence that the multiphasic ChI response may require both top-down and bottom-up inputs. The findings suggest that the firing pattern of ChIs correlated to the iLFP might be a useful tool for estimating the degree of contribution of top-down and bottom-up inputs in regulating the firing activity of ChIs.


Subject(s)
Cholinergic Neurons , Interneurons , Animals , Interneurons/physiology , Cholinergic Neurons/physiology , Male , Corpus Striatum/physiology , Action Potentials/physiology , Photic Stimulation , Neural Pathways/physiology
19.
Sci Rep ; 14(1): 3731, 2024 02 14.
Article in English | MEDLINE | ID: mdl-38355810

ABSTRACT

Corticostriatal regions play a pivotal role in visuomotor learning. However, less research has been done on how fMRI activity in their subregions is related to task performance, which is provided as visual feedback during motor learning. To address this, we conducted an fMRI experiment in which participants acquired a complex de novo motor skill using continuous or binary visual feedback related to performance. We found a highly selective response related to performance in the entire striatum in both conditions and a relatively higher response in the caudate nucleus for the binary feedback condition. However, the ventromedial prefrontal cortex (vmPFC) response was significant only for the continuous feedback condition. Furthermore, we also found functional distinction of the striatal subregions in random versus goal-directed motor control. These findings underscore the substantial effects of the visual feedback indicating performance on distinct corticostriatal responses, thereby elucidating its significance in reinforcement-based motor learning.


Subject(s)
Corpus Striatum , Learning , Humans , Learning/physiology , Corpus Striatum/diagnostic imaging , Corpus Striatum/physiology , Motor Skills/physiology , Caudate Nucleus , Motivation , Magnetic Resonance Imaging
20.
J Neurosci ; 44(11)2024 Mar 13.
Article in English | MEDLINE | ID: mdl-38253532

ABSTRACT

Disparities in socioeconomic status (SES) lead to unequal access to financial and social support. These disparities are believed to influence reward sensitivity, which in turn are hypothesized to shape how individuals respond to and pursue rewarding experiences. However, surprisingly little is known about how SES shapes reward sensitivity in adolescence. Here, we investigated how SES influenced adolescent responses to reward, both in behavior and the striatum-a brain region that is highly sensitive to reward. We examined responses to both immediate reward (tracked by phasic dopamine) and average reward rate fluctuations (tracked by tonic dopamine) as these distinct signals independently shape learning and motivation. Adolescents (n = 114; 12-14 years; 58 female) performed a gambling task during functional magnetic resonance imaging. We manipulated trial-by-trial reward and loss outcomes, leading to fluctuations between periods of reward scarcity and abundance. We found that a higher reward rate hastened behavioral responses, and increased guess switching, consistent with the idea that reward abundance increases response vigor and exploration. Moreover, immediate reward reinforced previously rewarding decisions (win-stay, lose-switch) and slowed responses (postreward pausing), particularly when rewards were scarce. Notably, lower-SES adolescents slowed down less after rare rewards than higher-SES adolescents. In the brain, striatal activations covaried with the average reward rate across time and showed greater activations during rewarding blocks. However, these striatal effects were diminished in lower-SES adolescents. These findings show that the striatum tracks reward rate fluctuations, which shape decisions and motivation. Moreover, lower SES appears to attenuate reward-driven behavioral and brain responses.


Subject(s)
Corpus Striatum , Dopamine , Adolescent , Humans , Female , Dopamine/physiology , Corpus Striatum/physiology , Motivation , Learning/physiology , Reward , Magnetic Resonance Imaging
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