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1.
Nat Commun ; 15(1): 6501, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-39090081

ABSTRACT

The role of developmental cell death in the formation of brain circuits is not well understood. Cajal-Retzius cells constitute a major transient neuronal population in the mammalian neocortex, which largely disappears at the time of postnatal somatosensory maturation. In this study, we used mouse genetics, anatomical, functional, and behavioral approaches to explore the impact of the early postnatal death of Cajal-Retzius cells in the maturation of the cortical circuit. We find that before their death, Cajal-Retzius cells mainly receive inputs from layer 1 neurons, which can only develop their mature connectivity onto layer 2/3 pyramidal cells after Cajal-Retzius cells disappear. This developmental connectivity progression from layer 1 GABAergic to layer 2/3 pyramidal cells regulates sensory-driven inhibition within, and more so, across cortical columns. Here we show that Cajal-Retzius cell death prevention leads to layer 2/3 hyper-excitability, delayed learning and reduced performance in a multi-whisker-dependent texture discrimination task.


Subject(s)
Cell Death , Pyramidal Cells , Somatosensory Cortex , Animals , Somatosensory Cortex/physiology , Somatosensory Cortex/cytology , Mice , Pyramidal Cells/physiology , Pyramidal Cells/metabolism , Neocortex/cytology , Neocortex/physiology , GABAergic Neurons/physiology , GABAergic Neurons/metabolism , Male , Vibrissae/physiology , Female , Mice, Inbred C57BL , Neural Inhibition/physiology , Neurons/physiology , Neurons/metabolism
2.
Sci Adv ; 10(31): eadk4331, 2024 Aug 02.
Article in English | MEDLINE | ID: mdl-39093969

ABSTRACT

Homeostatic plasticity maintains the stability of functional brain networks. The axon initial segment (AIS), where action potentials start, undergoes dynamic adjustment to exert powerful control over neuronal firing properties in response to network activity changes. However, it is poorly understood whether this plasticity involves direct synaptic input to the AIS. Here, we show that changes of GABAergic synaptic input from chandelier cells (ChCs) drive homeostatic tuning of the AIS of principal neurons (PNs) in the prelimbic (PL) region, while those from parvalbumin-positive basket cells do not. This tuning is evident in AIS morphology, voltage-gated sodium channel expression, and PN excitability. Moreover, the impact of this homeostatic plasticity can be reflected in animal behavior. Social behavior, inversely linked to PL PN activity, shows time-dependent alterations tightly coupled to changes in AIS plasticity and PN excitability. Thus, AIS-originated homeostatic plasticity in PNs may counteract deficits elicited by imbalanced ChC presynaptic input at cellular and behavioral levels.


Subject(s)
Axon Initial Segment , Axons , Homeostasis , Neuronal Plasticity , Synapses , Animals , Neuronal Plasticity/physiology , Axon Initial Segment/metabolism , Axons/physiology , Axons/metabolism , Mice , Synapses/physiology , Action Potentials , Male , GABAergic Neurons/physiology , GABAergic Neurons/metabolism
3.
CNS Neurosci Ther ; 30(7): e14863, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39036868

ABSTRACT

OBJECTIVE: Childhood sensory abnormalities experience has a crucial influence on the structure and function of the adult brain. The underlying mechanism of neurological function induced by childhood sensory abnormalities experience is still unclear. Our study was to investigate whether the GABAergic neurons in the anterior cingulate cortex (ACC) regulate social disorders caused by childhood sensory abnormalities experience. METHODS: We used two mouse models, complete Freund's adjuvant (CFA) injection mice and bilateral whisker trimming (BWT) mice in childhood. We applied immunofluorescence, chemogenetic and optogenetic to study the mechanism of parvalbumin (PV) neurons and somatostatin (SST) neurons in ACC in regulating social disorders induced by sensory abnormalities in childhood. RESULTS: Inflammatory pain in childhood leads to social preference disorders, while BWT in childhood leads to social novelty disorders in adult mice. Inflammatory pain and BWT in childhood caused an increase in the number of PV and SST neurons, respectively, in adult mice ACC. Inhibiting PV neurons in ACC improved social preference disorders in adult mice that experienced inflammatory pain during childhood. Inhibiting SST neurons in ACC improved social novelty disorders in adult mice that experienced BWT in childhood. CONCLUSIONS: Our study reveals that PV and SST neurons of the ACC may play a critical role in regulating social disorders induced by sensory abnormalities in childhood.


Subject(s)
Gyrus Cinguli , Mice, Inbred C57BL , Parvalbumins , Somatostatin , Animals , Mice , Somatostatin/metabolism , Male , Parvalbumins/metabolism , GABAergic Neurons/physiology , Freund's Adjuvant/toxicity , Vibrissae/physiology , Vibrissae/innervation , Neurons , Social Behavior Disorders/etiology , Mice, Transgenic
4.
Cereb Cortex ; 34(7)2024 Jul 03.
Article in English | MEDLINE | ID: mdl-39042031

ABSTRACT

Interhemispheric inhibition of the homotopic motor cortex is believed to be effective for accurate unilateral motor function. However, the cellular mechanisms underlying interhemispheric inhibition during unilateral motor behavior remain unclear. Furthermore, the impact of the neuromodulator acetylcholine on interhemispheric inhibition and the associated cellular mechanisms are not well understood. To address this knowledge gap, we conducted recordings of neuronal activity from the bilateral motor cortex of mice during the paw-reaching task. Subsequently, we analyzed interhemispheric spike correlation at the cell-pair level, classifying putative cell types to explore the underlying cellular circuitry mechanisms of interhemispheric inhibition. We found a cell-type pair-specific enhancement of the interhemispheric spike correlation when the mice were engaged in the reaching task. We also found that the interhemispheric spike correlation was modulated by pharmacological acetylcholine manipulation. The local field responses to contralateral excitation differed along the cortical depths, and muscarinic receptor antagonism enhanced the inhibitory component of the field response in deep layers. The muscarinic subtype M2 receptor is predominantly expressed in deep cortical neurons, including GABAergic interneurons. These results suggest that GABAergic interneurons expressing muscarinic receptors in deep layers mediate the neuromodulation of interhemispheric inhibition in the homotopic motor cortex.


Subject(s)
Acetylcholine , Motor Cortex , Neural Inhibition , Animals , Motor Cortex/physiology , Motor Cortex/drug effects , Acetylcholine/metabolism , Mice , Male , Neural Inhibition/physiology , Neural Inhibition/drug effects , Functional Laterality/physiology , Mice, Inbred C57BL , Interneurons/physiology , Interneurons/drug effects , Muscarinic Antagonists/pharmacology , Receptor, Muscarinic M2/antagonists & inhibitors , Receptor, Muscarinic M2/metabolism , GABAergic Neurons/physiology , GABAergic Neurons/drug effects , Action Potentials/physiology , Action Potentials/drug effects
5.
Nat Commun ; 15(1): 5772, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38982042

ABSTRACT

It is well established that the medial prefrontal cortex (mPFC) exerts top-down control of many behaviors, but little is known regarding how cross-talk between distinct areas of the mPFC influences top-down signaling. We performed virus-mediated tracing and functional studies in male mice, homing in on GABAergic projections whose axons are located mainly in layer 1 and that connect two areas of the mPFC, namely the prelimbic area (PrL) with the cingulate area 1 and 2 (Cg1/2). We revealed the identity of the targeted neurons that comprise two distinct types of layer 1 GABAergic interneurons, namely single-bouquet cells (SBCs) and neurogliaform cells (NGFs), and propose that this connectivity links GABAergic projection neurons with cortical canonical circuits. In vitro electrophysiological and in vivo calcium imaging studies support the notion that the GABAergic projection neurons from the PrL to the Cg1/2 exert a crucial role in regulating the activity in the target area by disinhibiting layer 5 output neurons. Finally, we demonstrated that recruitment of these projections affects impulsivity and mechanical responsiveness, behaviors which are known to be modulated by Cg1/2 activity.


Subject(s)
GABAergic Neurons , Gyrus Cinguli , Interneurons , Prefrontal Cortex , Animals , Prefrontal Cortex/physiology , Prefrontal Cortex/cytology , Male , Gyrus Cinguli/physiology , Gyrus Cinguli/cytology , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Mice , Interneurons/physiology , Mice, Inbred C57BL , Nerve Net/physiology , Neural Pathways/physiology
6.
Elife ; 132024 Jul 16.
Article in English | MEDLINE | ID: mdl-39012795

ABSTRACT

Axo-axonic cells (AACs), also called chandelier cells (ChCs) in the cerebral cortex, are the most distinctive type of GABAergic interneurons described in the neocortex, hippocampus, and basolateral amygdala (BLA). AACs selectively innervate glutamatergic projection neurons (PNs) at their axon initial segment (AIS), thus may exert decisive control over PN spiking and regulate PN functional ensembles. However, the brain-wide distribution, synaptic connectivity, and circuit function of AACs remain poorly understood, largely due to the lack of specific and reliable experimental tools. Here, we have established an intersectional genetic strategy that achieves specific and comprehensive targeting of AACs throughout the mouse brain based on their lineage (Nkx2.1) and molecular (Unc5b, Pthlh) markers. We discovered that AACs are deployed across essentially all the pallium-derived brain structures, including not only the dorsal pallium-derived neocortex and medial pallium-derived hippocampal formation, but also the lateral pallium-derived claustrum-insular complex, and the ventral pallium-derived extended amygdaloid complex and olfactory centers. AACs are also abundant in anterior olfactory nucleus, taenia tecta, and lateral septum. AACs show characteristic variations in density across neocortical areas and layers and across subregions of the hippocampal formation. Neocortical AACs comprise multiple laminar subtypes with distinct dendritic and axonal arborization patterns. Retrograde monosynaptic tracing from AACs across neocortical, hippocampal, and BLA regions reveal shared as well as distinct patterns of synaptic input. Specific and comprehensive targeting of AACs facilitates the study of their developmental genetic program and circuit function across brain structures, providing a ground truth platform for understanding the conservation and variation of a bona fide cell type across brain regions and species.


Whether we are memorising facts or reacting to a loud noise, nerve cells in different brain areas must be able to communicate with one another through precise, meaningful signals. Specialized nerve cells known as interneurons act as "traffic lights" to precisely regulate when and where this information flows in neural circuits. Axo-axonic cells are a rare type of inhibitory interneuron that are thought to be particularly important for controlling the passage of information between different groups of excitatory neurons. This is because they only connect to one key part of their target cell ­ the axon-initial segment ­ where the electrical signals needed for brain communication (known as action potentials) are initiated. Since axo-axonic cells are inhibitory interneurons, this connection effectively allows them to 'veto' the generation of these signals at their source. Although axo-axonic cells have been identified in three brain regions using traditional anatomical methods, there were no 'tags' readily available that can reliably identify them. Therefore, much about these cells remained unknown, including how widespread they are in the mammalian brain. To solve this problem, Raudales et al. investigated which genes are switched on in axo-axonic cells but not in other cells, identifying a unique molecular signature that could be used to mark, record, and manipulate these cells. Microscopy imaging of brain tissue from mice in which axo-axonic cells had been identified revealed that they are present in many more brain areas than previously thought, including nearly all regions of the broadly defined cerebral cortex and even the hypothalamus, which controls many innate behaviors. Axo-axonic cells were also 'wired up' differently, depending on where they were located; for example, those in brain areas associated with memory and emotions had wider-ranging input connections than other areas. The finding of Raudales et al. provide, for the first time, a method to directly track and manipulate axo-axonic cells in the brain. Since dysfunction in axo-axonic cells is also associated with neurological disorders like epilepsy and schizophrenia, gaining an insight into their distribution and connectivity could help to develop better treatments for these conditions.


Subject(s)
GABAergic Neurons , Interneurons , Animals , Interneurons/physiology , Interneurons/metabolism , GABAergic Neurons/physiology , GABAergic Neurons/metabolism , Mice , Brain/physiology , Brain/cytology , Synapses/physiology , Synapses/metabolism , Axons/physiology , Axons/metabolism , Male
7.
J Physiol ; 602(15): 3737-3753, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38949035

ABSTRACT

Ageing induces a decline in GABAergic intracortical inhibition, which seems to be associated not only with decremental changes in well-being, sleep quality, cognition and pain management but also with impaired motor control. So far, little is known regarding whether targeted interventions can prevent the decline of intracortical inhibition in the primary motor cortex in the elderly. Therefore, the present study investigated whether age-related cortical dis-inhibition could be reversed after 6 months of balance learning and whether improvements in postural control correlated with the extent of reversed dis-inhibition. The results demonstrated that intracortical inhibition can be upregulated in elderly subjects after long-term balance learning and revealed a correlation between changes in balance performance and intracortical inhibition. This is the first study to show physical activity-related upregulation of GABAergic inhibition in a population with chronic dis-inhibition and may therefore be seminal for many pathologies in which the equilibrium between inhibitory and excitatory neurotransmitters is disturbed. KEY POINTS: Ageing induces a decline in GABAergic intracortical inhibition. So far, little is known regarding whether targeted interventions can prevent the decline of intracortical inhibition in the primary motor cortex in the elderly. After 6 months of balance learning, intracortical inhibition can be upregulated in elderly subjects. The results of this study also revealed a correlation between changes in balance performance and intracortical inhibition. This is the first study to show physical activity-related upregulation of GABAergic inhibition in a population with chronic dis-inhibition.


Subject(s)
Aging , Learning , Motor Cortex , Postural Balance , Humans , Male , Aged , Postural Balance/physiology , Motor Cortex/physiology , Female , Aging/physiology , Learning/physiology , Neural Inhibition , Middle Aged , GABAergic Neurons/physiology , Adult , Transcranial Magnetic Stimulation , gamma-Aminobutyric Acid/metabolism , Evoked Potentials, Motor
8.
Behav Brain Res ; 472: 115156, 2024 Aug 24.
Article in English | MEDLINE | ID: mdl-39032867

ABSTRACT

BACKGROUND: Autism spectrum disorder (ASD) is a neurodevelopmental disorder characterized by impaired social interactions and repetitive behaviors. Despite its prevalence, effective treatments remain elusive. Recent studies have highlighted the importance of the balance between GABAergic and glutamatergic neuronal synaptic functions in ASD development. Repetitive transcranial magnetic stimulation (RTMS) is a painless and effective treatment allowed for use in depression and obsessive-compulsive disorder. However, its efficacy in treating autism is still under investigation. Low-frequency RTMS (LF-RTMS), which shows promise in reducing autism-like behaviors, is considered to regulate synaptic function. OBJECTIVE: We observed and recorded the behaviors of mice to assess the impact of RTMS on their social interactions and repetitive activities. Subsequently, we examined GABAergic and glutamatergic neuronal markers along with synaptic marker proteins to understand the underlying changes associated with these behaviors. METHODS: To evaluate behaviors associated with autism spectrum disorder (ASD), several behavioral tests were conducted, focusing on sociability, repetitive behaviors, locomotion, anxiety, and depression. Additionally, Western blot and immunofluorescence staining were employed to investigate the activity of GABAergic and glutamatergic neurons in the hippocampus, aiming to understand the synaptic mechanisms underlying these behaviors. RESULTS: LF-RTMS treatment effectively relieved the social disability and normalized synaptic function in the hippocampus of ASD mice model induced by valproate (VPA). Importantly, this treatment did not lead to any adverse effects on repetitive behavior, locomotion, anxiety, or depression. CONCLUSION: LF-RTMS attenuated social disability without affecting repetitive behavior, locomotion, anxiety, or depression. Changes in the expression of GABAergic and glutamatergic neuronal synaptic proteins in the hippocampus were also observed.


Subject(s)
Autism Spectrum Disorder , Disease Models, Animal , Hippocampus , Transcranial Magnetic Stimulation , Valproic Acid , Animals , Autism Spectrum Disorder/therapy , Autism Spectrum Disorder/metabolism , Mice , Male , Hippocampus/metabolism , Valproic Acid/pharmacology , Social Behavior , Behavior, Animal/physiology , Behavior, Animal/drug effects , Mice, Inbred C57BL , Anxiety/therapy , Anxiety/chemically induced , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Social Interaction/drug effects
9.
J Neurophysiol ; 132(2): 573-588, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38988288

ABSTRACT

Growing evidence suggests that neuropeptide signaling shapes auditory computations. We previously showed that neuropeptide Y (NPY) is expressed in the inferior colliculus (IC) by a population of GABAergic stellate neurons and that NPY regulates the strength of local excitatory circuits in the IC. NPY neurons were initially characterized using the NPY-hrGFP mouse, in which humanized renilla green fluorescent protein (hrGFP) expression indicates NPY expression at the time of assay, i.e., an expression-tracking approach. However, studies in other brain regions have shown that NPY expression can vary based on several factors, suggesting that the NPY-hrGFP mouse might miss NPY neurons not expressing NPY on the experiment date. Here, we hypothesized that neurons with the ability to express NPY represent a larger population of IC GABAergic neurons than previously reported. To test this hypothesis, we used a lineage-tracing approach to irreversibly tag neurons that expressed NPY at any point prior to the experiment date. We then compared the physiological and anatomical features of neurons labeled with this lineage-tracing approach to our prior data set, revealing a larger population of NPY neurons than previously found. In addition, we used optogenetics to test the local connectivity of NPY neurons and found that NPY neurons provide inhibitory synaptic input to other neurons in the ipsilateral IC. Together, our data expand the definition of NPY neurons in the IC, suggest that NPY expression might be dynamically regulated in the IC, and provide functional evidence that NPY neurons form local inhibitory circuits in the IC.NEW & NOTEWORTHY Across brain regions, neuropeptide Y (NPY) expression is dynamic and influenced by extrinsic and intrinsic factors. We previously showed that NPY is expressed by a class of inhibitory neurons in the auditory midbrain. Here, we find that this neuron class also includes neurons that previously expressed NPY, suggesting that NPY expression is dynamically regulated in the auditory midbrain. We also provide functional evidence that NPY neurons contribute to local inhibitory circuits in the auditory midbrain.


Subject(s)
GABAergic Neurons , Inferior Colliculi , Neuropeptide Y , Inferior Colliculi/cytology , Inferior Colliculi/metabolism , Inferior Colliculi/physiology , Neuropeptide Y/metabolism , Animals , Mice , GABAergic Neurons/physiology , GABAergic Neurons/metabolism , Male , Mice, Transgenic , Female , Neurons/metabolism , Neurons/physiology , Cell Lineage , Mice, Inbred C57BL
10.
Neuron ; 112(14): 2259-2261, 2024 Jul 17.
Article in English | MEDLINE | ID: mdl-39024916

ABSTRACT

In this issue of Neuron, Wang et al.1 demonstrate that parvalbumin interneurons in the sensory thalamic reticular nucleus are necessary and sufficient for regulating social memory in mice, identify a novel cortico-reticular thalamic-parafascicular pathway for social cognition, and highlight an essential role of GABAergic inhibitory neurons in social memory engrams.


Subject(s)
Memory , Thalamus , Animals , Memory/physiology , Mice , Thalamus/physiology , Thalamus/cytology , Interneurons/physiology , Neural Pathways/physiology , Parvalbumins/metabolism , GABAergic Neurons/physiology , Social Behavior
11.
Elife ; 122024 Jun 17.
Article in English | MEDLINE | ID: mdl-38884573

ABSTRACT

Rapid eye movement sleep (REMs) is characterized by activated electroencephalogram (EEG) and muscle atonia, accompanied by vivid dreams. REMs is homeostatically regulated, ensuring that any loss of REMs is compensated by a subsequent increase in its amount. However, the neural mechanisms underlying the homeostatic control of REMs are largely unknown. Here, we show that GABAergic neurons in the preoptic area of the hypothalamus projecting to the tuberomammillary nucleus (POAGAD2→TMN neurons) are crucial for the homeostatic regulation of REMs in mice. POAGAD2→TMN neurons are most active during REMs, and inhibiting them specifically decreases REMs. REMs restriction leads to an increased number and amplitude of calcium transients in POAGAD2→TMN neurons, reflecting the accumulation of REMs pressure. Inhibiting POAGAD2→TMN neurons during REMs restriction blocked the subsequent rebound of REMs. Our findings reveal a hypothalamic circuit whose activity mirrors the buildup of homeostatic REMs pressure during restriction and that is required for the ensuing rebound in REMs.


Subject(s)
GABAergic Neurons , Homeostasis , Preoptic Area , Sleep, REM , Animals , Preoptic Area/physiology , Sleep, REM/physiology , Mice , GABAergic Neurons/physiology , Male , Electroencephalography , Hypothalamic Area, Lateral/physiology
12.
CNS Neurosci Ther ; 30(6): e14782, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38828651

ABSTRACT

BACKGROUND: The thalamus system plays critical roles in the regulation of reversible unconsciousness induced by general anesthetics, especially the arousal stage of general anesthesia (GA). But the function of thalamus in GA-induced loss of consciousness (LOC) is little known. The thalamic reticular nucleus (TRN) is the only GABAergic neurons-composed nucleus in the thalamus, which is composed of parvalbumin (PV) and somatostatin (SST)-expressing GABAergic neurons. The anterior sector of TRN (aTRN) is indicated to participate in the induction of anesthesia, but the roles remain unclear. This study aimed to reveal the role of the aTRN in propofol and isoflurane anesthesia. METHODS: We first set up c-Fos straining to monitor the activity variation of aTRNPV and aTRNSST neurons during propofol and isoflurane anesthesia. Subsequently, optogenetic tools were utilized to activate aTRNPV and aTRNSST neurons to elucidate the roles of aTRNPV and aTRNSST neurons in propofol and isoflurane anesthesia. Electroencephalogram (EEG) recordings and behavioral tests were recorded and analyzed. Lastly, chemogenetic activation of the aTRNPV neurons was applied to confirm the function of the aTRN neurons in propofol and isoflurane anesthesia. RESULTS: c-Fos straining showed that both aTRNPV and aTRNSST neurons are activated during the LOC period of propofol and isoflurane anesthesia. Optogenetic activation of aTRNPV and aTRNSST neurons promoted isoflurane induction and delayed the recovery of consciousness (ROC) after propofol and isoflurane anesthesia, meanwhile chemogenetic activation of the aTRNPV neurons displayed the similar effects. Moreover, optogenetic and chemogenetic activation of the aTRN neurons resulted in the accumulated burst suppression ratio (BSR) during propofol and isoflurane GA, although they represented different effects on the power distribution of EEG frequency. CONCLUSION: Our findings reveal that the aTRN GABAergic neurons play a critical role in promoting the induction of propofol- and isoflurane-mediated GA.


Subject(s)
Anesthesia, General , Consciousness , GABAergic Neurons , Isoflurane , Propofol , Propofol/pharmacology , Isoflurane/pharmacology , Animals , GABAergic Neurons/drug effects , GABAergic Neurons/physiology , Mice , Consciousness/drug effects , Consciousness/physiology , Male , Electroencephalography , Anesthetics, Inhalation/pharmacology , Anterior Thalamic Nuclei/drug effects , Anterior Thalamic Nuclei/physiology , Mice, Inbred C57BL , Mice, Transgenic , Anesthetics, Intravenous/pharmacology , Proto-Oncogene Proteins c-fos/metabolism , Optogenetics
13.
Elife ; 132024 Jun 10.
Article in English | MEDLINE | ID: mdl-38856045

ABSTRACT

A key to motor control is the motor thalamus, where several inputs converge. One excitatory input originates from layer 5 of primary motor cortex (M1L5), while another arises from the deep cerebellar nuclei (Cb). M1L5 terminals distribute throughout the motor thalamus and overlap with GABAergic inputs from the basal ganglia output nuclei, the internal segment of the globus pallidus (GPi), and substantia nigra pars reticulata (SNr). In contrast, it is thought that Cb and basal ganglia inputs are segregated. Therefore, we hypothesized that one potential function of the GABAergic inputs from basal ganglia is to selectively inhibit, or gate, excitatory signals from M1L5 in the motor thalamus. Here, we tested this possibility and determined the circuit organization of mouse (both sexes) motor thalamus using an optogenetic strategy in acute slices. First, we demonstrated the presence of a feedforward transthalamic pathway from M1L5 through motor thalamus. Importantly, we discovered that GABAergic inputs from the GPi and SNr converge onto single motor thalamic cells with excitatory synapses from M1L5. Separately, we also demonstrate that, perhaps unexpectedly, GABAergic GPi and SNr inputs converge with those from the Cb. We interpret these results to indicate that a role of the basal ganglia is to gate the thalamic transmission of M1L5 and Cb information to cortex.


Subject(s)
Basal Ganglia , Cerebellum , Motor Cortex , Thalamus , Animals , Motor Cortex/physiology , Mice , Basal Ganglia/physiology , Thalamus/physiology , Male , Female , Cerebellum/physiology , Neural Pathways/physiology , Optogenetics , GABAergic Neurons/physiology , Mice, Inbred C57BL
14.
Nat Commun ; 15(1): 4768, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38849336

ABSTRACT

Parvalbumin (PV)-expressing GABAergic neurons of the basal forebrain (BFPVNs) were proposed to serve as a rapid and transient arousal system, yet their exact role in awake behaviors remains unclear. We performed bulk calcium measurements and electrophysiology with optogenetic tagging from the horizontal limb of the diagonal band of Broca (HDB) while male mice were performing an associative learning task. BFPVNs responded with a distinctive, phasic activation to punishment, but showed slower and delayed responses to reward and outcome-predicting stimuli. Optogenetic inhibition during punishment impaired the formation of cue-outcome associations, suggesting a causal role of BFPVNs in associative learning. BFPVNs received strong inputs from the hypothalamus, the septal complex and the median raphe region, while they synapsed on diverse cell types in key limbic structures, where they broadcasted information about aversive stimuli. We propose that the arousing effect of BFPVNs is recruited by aversive stimuli to serve crucial associative learning functions.


Subject(s)
Basal Forebrain , GABAergic Neurons , Optogenetics , Parvalbumins , Animals , Parvalbumins/metabolism , Basal Forebrain/metabolism , Basal Forebrain/physiology , Male , Mice , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Reward , Punishment , Mice, Inbred C57BL , Learning/physiology , Neurons/metabolism , Neurons/physiology , Association Learning/physiology
15.
Curr Biol ; 34(13): 3031-3039.e7, 2024 Jul 08.
Article in English | MEDLINE | ID: mdl-38936364

ABSTRACT

Escape behavior is a set of locomotor actions that move an animal away from threat. While these actions can be stereotyped, it is advantageous for survival that they are flexible.1,2,3 For example, escape probability depends on predation risk and competing motivations,4,5,6,7,8,9,10,11 and flight to safety requires continuous adjustments of trajectory and must terminate at the appropriate place and time.12,13,14,15,16 This degree of flexibility suggests that modulatory components, like inhibitory networks, act on the neural circuits controlling instinctive escape.17,18,19,20,21,22 In mice, the decision to escape from imminent threats is implemented by a feedforward circuit in the midbrain, where excitatory vesicular glutamate transporter 2-positive (VGluT2+) neurons in the dorsal periaqueductal gray (dPAG) compute escape initiation and escape vigor.23,24,25 Here we tested the hypothesis that local GABAergic neurons within the dPAG control escape behavior by setting the excitability of the dPAG escape network. Using in vitro patch-clamp and in vivo neural activity recordings, we found that vesicular GABA transporter-positive (VGAT+) dPAG neurons fire action potentials tonically in the absence of synaptic inputs and are a major source of inhibition to VGluT2+ dPAG neurons. Activity in VGAT+ dPAG cells transiently decreases at escape onset and increases during escape, peaking at escape termination. Optogenetically increasing or decreasing VGAT+ dPAG activity changes the probability of escape when the stimulation is delivered at threat onset and the duration of escape when delivered after escape initiation. We conclude that the activity of tonically firing VGAT+ dPAG neurons sets a threshold for escape initiation and controls the execution of the flight action.


Subject(s)
Escape Reaction , GABAergic Neurons , Periaqueductal Gray , Animals , Periaqueductal Gray/physiology , Periaqueductal Gray/metabolism , Mice , Escape Reaction/physiology , GABAergic Neurons/physiology , GABAergic Neurons/metabolism , Male , Mice, Inbred C57BL , Female
16.
Elife ; 122024 Jun 28.
Article in English | MEDLINE | ID: mdl-38941139

ABSTRACT

Homeostatic plasticity represents a set of mechanisms that are thought to recover some aspect of neural function. One such mechanism called AMPAergic scaling was thought to be a likely candidate to homeostatically control spiking activity. However, recent findings have forced us to reconsider this idea as several studies suggest AMPAergic scaling is not directly triggered by changes in spiking. Moreover, studies examining homeostatic perturbations in vivo have suggested that GABAergic synapses may be more critical in terms of spiking homeostasis. Here, we show results that GABAergic scaling can act to homeostatically control spiking levels. We found that perturbations which increased or decreased spiking in cortical cultures triggered multiplicative GABAergic upscaling and downscaling, respectively. In contrast, we found that changes in AMPA receptor (AMPAR) or GABAR transmission only influence GABAergic scaling through their indirect effect on spiking. We propose that GABAergic scaling represents a stronger candidate for spike rate homeostat than AMPAergic scaling.


Subject(s)
Action Potentials , Receptors, AMPA , Receptors, AMPA/metabolism , Animals , Action Potentials/physiology , Synapses/physiology , Synapses/metabolism , Neuronal Plasticity/physiology , GABAergic Neurons/physiology , GABAergic Neurons/metabolism , Synaptic Transmission/physiology , Cells, Cultured , gamma-Aminobutyric Acid/metabolism , Homeostasis
17.
Nat Commun ; 15(1): 4233, 2024 May 18.
Article in English | MEDLINE | ID: mdl-38762463

ABSTRACT

The ventral pallidum (VP) contains GABA and glutamate neurons projecting to ventral tegmental area (VTA) whose stimulation drives approach and avoidance, respectively. Yet little is known about the mechanisms by which VP cell types shape VTA activity and drive behavior. Here, we found that both VP GABA and glutamate neurons were activated during approach to reward or by delivery of an aversive stimulus. Stimulation of VP GABA neurons inhibited VTA GABA, but activated dopamine and glutamate neurons. Remarkably, stimulation-evoked activation was behavior-contingent such that VTA recruitment was inhibited when evoked by the subject's own action. Conversely, VP glutamate neurons activated VTA GABA, as well as dopamine and glutamate neurons, despite driving aversion. However, VP glutamate neurons evoked dopamine in aversion-associated ventromedial nucleus accumbens (NAc), but reduced dopamine release in reward-associated dorsomedial NAc. These findings show how heterogeneous VP projections to VTA can be engaged to shape approach and avoidance behaviors.


Subject(s)
Avoidance Learning , Basal Forebrain , GABAergic Neurons , Glutamic Acid , Reward , Ventral Tegmental Area , Ventral Tegmental Area/physiology , Ventral Tegmental Area/metabolism , Ventral Tegmental Area/cytology , Animals , Glutamic Acid/metabolism , Basal Forebrain/metabolism , Basal Forebrain/physiology , Male , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Avoidance Learning/physiology , Mice , Dopamine/metabolism , Nucleus Accumbens/metabolism , Nucleus Accumbens/cytology , Nucleus Accumbens/physiology , Neurons/metabolism , Neurons/physiology , gamma-Aminobutyric Acid/metabolism , Dopaminergic Neurons/metabolism , Dopaminergic Neurons/physiology , Mice, Inbred C57BL , Behavior, Animal/physiology
18.
Sci Adv ; 10(19): eadj9911, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38728406

ABSTRACT

During cerebral cortex development, excitatory pyramidal neurons (PNs) establish specific projection patterns while receiving inputs from GABAergic inhibitory interneurons (INs). Whether these inhibitory inputs can shape PNs' projection patterns is, however, unknown. While layer 4 (L4) PNs of the primary somatosensory (S1) cortex are all born as long-range callosal projection neurons (CPNs), most of them acquire local connectivity upon activity-dependent elimination of their interhemispheric axons during postnatal development. Here, we demonstrate that precise developmental regulation of inhibition is key for the retraction of S1L4 PNs' callosal projections. Ablation of somatostatin INs leads to premature inhibition from parvalbumin INs onto S1L4 PNs and prevents them from acquiring their barrel-restricted local connectivity pattern. As a result, adult S1L4 PNs retain interhemispheric projections responding to tactile stimuli, and the mice lose whisker-based texture discrimination. Overall, we show that temporally ordered IN activity during development is key to shaping local ipsilateral S1L4 PNs' projection pattern, which is required for fine somatosensory processing.


Subject(s)
GABAergic Neurons , Interneurons , Somatosensory Cortex , Animals , Interneurons/metabolism , Interneurons/physiology , Interneurons/cytology , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , GABAergic Neurons/cytology , Somatosensory Cortex/physiology , Somatosensory Cortex/metabolism , Somatosensory Cortex/cytology , Mice , Pyramidal Cells/metabolism , Pyramidal Cells/physiology , Parvalbumins/metabolism
19.
Int J Mol Sci ; 25(10)2024 May 19.
Article in English | MEDLINE | ID: mdl-38791587

ABSTRACT

Parvalbumin expressing (PV+) GABAergic interneurons are fast spiking neurons that provide powerful but relatively short-lived inhibition to principal excitatory cells in the brain. They play a vital role in feedforward and feedback synaptic inhibition, preventing run away excitation in neural networks. Hence, their dysfunction can lead to hyperexcitability and increased susceptibility to seizures. PV+ interneurons are also key players in generating gamma oscillations, which are synchronized neural oscillations associated with various cognitive functions. PV+ interneuron are particularly vulnerable to aging and their degeneration has been associated with cognitive decline and memory impairment in dementia and Alzheimer's disease (AD). Overall, dysfunction of PV+ interneurons disrupts the normal excitatory/inhibitory balance within specific neurocircuits in the brain and thus has been linked to a wide range of neurodevelopmental and neuropsychiatric disorders. This review focuses on the role of dysfunctional PV+ inhibitory interneurons in the generation of epileptic seizures and cognitive impairment and their potential as targets in the design of future therapeutic strategies to treat these disorders. Recent research using cutting-edge optogenetic and chemogenetic technologies has demonstrated that they can be selectively manipulated to control seizures and restore the balance of neural activity in the brains of animal models. This suggests that PV+ interneurons could be important targets in developing future treatments for patients with epilepsy and comorbid disorders, such as AD, where seizures and cognitive decline are directly linked to specific PV+ interneuron deficits.


Subject(s)
Alzheimer Disease , Epilepsy , Interneurons , Parvalbumins , Humans , Interneurons/metabolism , Interneurons/physiology , Alzheimer Disease/metabolism , Alzheimer Disease/physiopathology , Parvalbumins/metabolism , Animals , Epilepsy/physiopathology , Epilepsy/metabolism , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Brain/metabolism , Brain/physiopathology
20.
Proc Natl Acad Sci U S A ; 121(23): e2316364121, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38809712

ABSTRACT

Epilepsies have numerous specific mechanisms. The understanding of neural dynamics leading to seizures is important for disclosing pathological mechanisms and developing therapeutic approaches. We investigated electrographic activities and neural dynamics leading to convulsive seizures in patients and mouse models of Dravet syndrome (DS), a developmental and epileptic encephalopathy in which hypoexcitability of GABAergic neurons is considered to be the main dysfunction. We analyzed EEGs from DS patients carrying a SCN1A pathogenic variant, as well as epidural electrocorticograms, hippocampal local field potentials, and hippocampal single-unit neuronal activities in Scn1a+/- and Scn1aRH/+ DS mice. Strikingly, most seizures had low-voltage-fast onset in both patients and mice, which is thought to be generated by hyperactivity of GABAergic interneurons, the opposite of the main pathological mechanism of DS. Analyzing single-unit recordings, we observed that temporal disorganization of the firing of putative interneurons in the period immediately before the seizure (preictal) precedes the increase of their activity at seizure onset, together with the entire neuronal network. Moreover, we found early signatures of the preictal period in the spectral features of hippocampal and cortical field potential of Scn1a mice and of patients' EEG, which are consistent with the dysfunctions that we observed in single neurons and that allowed seizure prediction. Therefore, the perturbed preictal activity of interneurons leads to their hyperactivity at the onset of generalized seizures, which have low-voltage-fast features that are similar to those observed in other epilepsies and are triggered by hyperactivity of GABAergic neurons. Preictal spectral features may be used as predictive seizure biomarkers.


Subject(s)
Epilepsies, Myoclonic , GABAergic Neurons , Hippocampus , Interneurons , NAV1.1 Voltage-Gated Sodium Channel , Seizures , Animals , Epilepsies, Myoclonic/physiopathology , Epilepsies, Myoclonic/genetics , Interneurons/physiology , Interneurons/metabolism , Mice , NAV1.1 Voltage-Gated Sodium Channel/genetics , NAV1.1 Voltage-Gated Sodium Channel/metabolism , Seizures/physiopathology , Humans , GABAergic Neurons/metabolism , GABAergic Neurons/physiology , Male , Hippocampus/physiopathology , Hippocampus/metabolism , Female , Disease Models, Animal , Electroencephalography , Child
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