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1.
Acta Neuropathol ; 147(1): 80, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38714540

ABSTRACT

GABAergic interneurons play a critical role in maintaining neural circuit balance, excitation-inhibition regulation, and cognitive function modulation. In tuberous sclerosis complex (TSC), GABAergic neuron dysfunction contributes to disrupted network activity and associated neurological symptoms, assumingly in a cell type-specific manner. This GABAergic centric study focuses on identifying specific interneuron subpopulations within TSC, emphasizing the unique characteristics of medial ganglionic eminence (MGE)- and caudal ganglionic eminence (CGE)-derived interneurons. Using single-nuclei RNA sequencing in TSC patient material, we identify somatostatin-expressing (SST+) interneurons as a unique and immature subpopulation in TSC. The disrupted maturation of SST+ interneurons may undergo an incomplete switch from excitatory to inhibitory GABAergic signaling during development, resulting in reduced inhibitory properties. Notably, this study reveals markers of immaturity specifically in SST+ interneurons, including an abnormal NKCC1/KCC2 ratio, indicating an imbalance in chloride homeostasis crucial for the postsynaptic consequences of GABAergic signaling as well as the downregulation of GABAA receptor subunits, GABRA1, and upregulation of GABRA2. Further exploration of SST+ interneurons revealed altered localization patterns of SST+ interneurons in TSC brain tissue, concentrated in deeper cortical layers, possibly linked to cortical dyslamination. In the epilepsy context, our research underscores the diverse cell type-specific roles of GABAergic interneurons in shaping seizures, advocating for precise therapeutic considerations. Moreover, this study illuminates the potential contribution of SST+ interneurons to TSC pathophysiology, offering insights for targeted therapeutic interventions.


Subject(s)
GABAergic Neurons , Interneurons , Tuberous Sclerosis , Interneurons/pathology , Interneurons/metabolism , Tuberous Sclerosis/pathology , Tuberous Sclerosis/metabolism , Humans , GABAergic Neurons/pathology , GABAergic Neurons/metabolism , Male , Female , Median Eminence/pathology , Median Eminence/metabolism , Somatostatin/metabolism , Child , Child, Preschool , Receptors, GABA-A/metabolism , Adolescent , Ganglionic Eminence
2.
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
3.
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
4.
Nat Commun ; 15(1): 4053, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38744848

ABSTRACT

The role of the hippocampus in spatial navigation has been primarily studied in nocturnal mammals, such as rats, that lack many adaptations for daylight vision. Here we demonstrate that during 3D navigation, the common marmoset, a new world primate adapted to daylight, predominantly uses rapid head-gaze shifts for visual exploration while remaining stationary. During active locomotion marmosets stabilize the head, in contrast to rats that use low-velocity head movements to scan the environment as they locomote. Pyramidal neurons in the marmoset hippocampus CA3/CA1 regions predominantly show mixed selectivity for 3D spatial view, head direction, and place. Exclusive place selectivity is scarce. Inhibitory interneurons are predominantly mixed selective for angular head velocity and translation speed. Finally, we found theta phase resetting of local field potential oscillations triggered by head-gaze shifts. Our findings indicate that marmosets adapted to their daylight ecological niche by modifying exploration/navigation strategies and their corresponding hippocampal specializations.


Subject(s)
Callithrix , Hippocampus , Spatial Navigation , Animals , Callithrix/physiology , Spatial Navigation/physiology , Hippocampus/physiology , Male , Locomotion/physiology , Vision, Ocular/physiology , Pyramidal Cells/physiology , Head Movements/physiology , Interneurons/physiology , Female , Behavior, Animal/physiology , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology
5.
J Biotechnol ; 389: 1-12, 2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38697361

ABSTRACT

Aging is associated with the slowdown of neuronal processing and cognitive performance in the brain; however, the exact cellular mechanisms behind this deterioration in humans are poorly elucidated. Recordings in human acute brain slices prepared from tissue resected during brain surgery enable the investigation of neuronal changes with age. Although neocortical fast-spiking cells are widely implicated in neuronal network activities underlying cognitive processes, they are vulnerable to neurodegeneration. Herein, we analyzed the electrical properties of 147 fast-spiking interneurons in neocortex samples resected in brain surgery from 106 patients aged 11-84 years. By studying the electrophysiological features of action potentials and passive membrane properties, we report that action potential overshoot significantly decreases and spike half-width increases with age. Moreover, the action potential maximum-rise speed (but not the repolarization speed or the afterhyperpolarization amplitude) significantly changed with age, suggesting a particular weakening of the sodium channel current generated in the soma. Cell passive membrane properties measured as the input resistance, membrane time constant, and cell capacitance remained unaffected by senescence. Thus, we conclude that the action potential in fast-spiking interneurons shows a significant weakening in the human neocortex with age. This may contribute to the deterioration of cortical functions by aging.


Subject(s)
Action Potentials , Aging , Interneurons , Neocortex , Humans , Neocortex/physiology , Neocortex/cytology , Aged , Interneurons/physiology , Aged, 80 and over , Adult , Aging/physiology , Adolescent , Child , Middle Aged , Action Potentials/physiology , Male , Young Adult , Female
6.
Elife ; 132024 May 15.
Article in English | MEDLINE | ID: mdl-38748470

ABSTRACT

Acetylcholine is widely believed to modulate the release of dopamine in the striatum of mammals. Experiments in brain slices clearly show that synchronous activation of striatal cholinergic interneurons is sufficient to drive dopamine release via axo-axonal stimulation of nicotinic acetylcholine receptors. However, evidence for this mechanism in vivo has been less forthcoming. Mohebi, Collins and Berke recently reported that, in awake behaving rats, optogenetic activation of striatal cholinergic interneurons with blue light readily evokes dopamine release measured with the red fluorescent sensor RdLight1 (Mohebi et al., 2023). Here, we show that blue light alone alters the fluorescent properties of RdLight1 in a manner that may be misconstrued as phasic dopamine release, and that this artefactual photoactivation can account for the effects attributed to cholinergic interneurons. Our findings indicate that measurements of dopamine using the red-shifted fluorescent sensor RdLight1 should be interpreted with caution when combined with optogenetics. In light of this and other publications that did not observe large acetylcholine-evoked dopamine transients in vivo, the conditions under which such release occurs in behaving animals remain unknown.


Subject(s)
Cholinergic Neurons , Dopamine , Interneurons , Optogenetics , Dopamine/metabolism , Animals , Interneurons/metabolism , Interneurons/physiology , Cholinergic Neurons/metabolism , Cholinergic Neurons/physiology , Rats , Optogenetics/methods , Motivation , Nucleus Accumbens/metabolism , Nucleus Accumbens/physiology , Acetylcholine/metabolism
7.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38804879

ABSTRACT

Dorsal interneurons (dIs) in the spinal cord encode the perception of touch, pain, heat, itchiness and proprioception. Previous studies using genetic strategies in animal models have revealed important insights into dI development, but the molecular details of how dIs arise as distinct populations of neurons remain incomplete. We have developed a resource to investigate dI fate specification by combining a single-cell RNA-Seq atlas of mouse embryonic stem cell-derived dIs with pseudotime analyses. To validate this in silico resource as a useful tool, we used it to first identify genes that are candidates for directing the transition states that lead to distinct dI lineage trajectories, and then validated them using in situ hybridization analyses in the developing mouse spinal cord in vivo. We have also identified an endpoint of the dI5 lineage trajectory and found that dIs become more transcriptionally homogeneous during terminal differentiation. This study introduces a valuable tool for further discovery about the timing of gene expression during dI differentiation and demonstrates its utility in clarifying dI lineage relationships.


Subject(s)
Cell Differentiation , Cell Lineage , Gene Expression Regulation, Developmental , Interneurons , Spinal Cord , Animals , Mice , Spinal Cord/metabolism , Spinal Cord/embryology , Cell Lineage/genetics , Interneurons/metabolism , Interneurons/cytology , Cell Differentiation/genetics , Single-Cell Analysis , Mouse Embryonic Stem Cells/metabolism , Mouse Embryonic Stem Cells/cytology , RNA-Seq
8.
Science ; 384(6698): eadh2602, 2024 May 24.
Article in English | MEDLINE | ID: mdl-38781372

ABSTRACT

Genomic profiling in postmortem brain from autistic individuals has consistently revealed convergent molecular changes. What drives these changes and how they relate to genetic susceptibility in this complex condition are not well understood. We performed deep single-nucleus RNA sequencing (snRNA-seq) to examine cell composition and transcriptomics, identifying dysregulation of cell type-specific gene regulatory networks (GRNs) in autism spectrum disorder (ASD), which we corroborated using single-nucleus assay for transposase-accessible chromatin with sequencing (snATAC-seq) and spatial transcriptomics. Transcriptomic changes were primarily cell type specific, involving multiple cell types, most prominently interhemispheric and callosal-projecting neurons, interneurons within superficial laminae, and distinct glial reactive states involving oligodendrocytes, microglia, and astrocytes. Autism-associated GRN drivers and their targets were enriched in rare and common genetic risk variants, connecting autism genetic susceptibility and cellular and circuit alterations in the human brain.


Subject(s)
Autism Spectrum Disorder , Gene Regulatory Networks , Neurons , Single-Cell Analysis , Transcriptome , Humans , Autism Spectrum Disorder/genetics , Neurons/metabolism , Genetic Predisposition to Disease , Astrocytes/metabolism , Brain/metabolism , Genomics , Oligodendroglia/metabolism , Microglia/metabolism , RNA-Seq , Male , Interneurons/metabolism , Chromatin/metabolism , Female , Sequence Analysis, RNA
9.
Cereb Cortex ; 34(5)2024 May 02.
Article in English | MEDLINE | ID: mdl-38760318

ABSTRACT

Cortical parvalbumin interneurons (PV+) are major regulators of excitatory/inhibitory information processing, and their maturation is associated with the opening of developmental critical periods (CP). Recent studies reveal that cortical PV+ axons are myelinated, and that myelination along with perineuronal net (PNN) maturation around PV+ cells is associated with the closures of CP. Although PV+ interneurons are susceptible to early-life stress, their relationship between their myelination and PNN coverage remains unexplored. This study compared the fine features of PV+ interneurons in well-characterized human post-mortem ventromedial prefrontal cortex samples (n = 31) from depressed suicides with or without a history of child abuse (CA) and matched controls. In healthy controls, 81% of all sampled PV+ interneurons displayed a myelinated axon, while a subset (66%) of these cells also displayed a PNN, proposing a relationship between both attributes. Intriguingly, a 3-fold increase in the proportion of unmyelinated PV+ interneurons with a PNN was observed in CA victims, along with greater PV-immunofluorescence intensity in myelinated PV+ cells with a PNN. This study, which is the first to provide normative data on myelination and PNNs around PV+ interneurons in human neocortex, sheds further light on the cellular and molecular consequences of early-life adversity on cortical PV+ interneurons.


Subject(s)
Interneurons , Parvalbumins , Prefrontal Cortex , Humans , Prefrontal Cortex/pathology , Prefrontal Cortex/metabolism , Parvalbumins/metabolism , Interneurons/pathology , Interneurons/metabolism , Male , Female , Adult , Middle Aged , Myelin Sheath/pathology , Myelin Sheath/metabolism , Suicide , Aged , Autopsy , Child Abuse/psychology , Young Adult
10.
Sci Adv ; 10(22): eadk3229, 2024 May 31.
Article in English | MEDLINE | ID: mdl-38820149

ABSTRACT

Amyotrophic lateral sclerosis (ALS) is characterized by the progressive loss of somatic motor neurons. A major focus has been directed to motor neuron intrinsic properties as a cause for degeneration, while less attention has been given to the contribution of spinal interneurons. In the present work, we applied multiplexing detection of transcripts and machine learning-based image analysis to investigate the fate of multiple spinal interneuron populations during ALS progression in the SOD1G93A mouse model. The analysis showed that spinal inhibitory interneurons are affected early in the disease, before motor neuron death, and are characterized by a slow progressive degeneration, while excitatory interneurons are affected later with a steep progression. Moreover, we report differential vulnerability within inhibitory and excitatory subpopulations. Our study reveals a strong interneuron involvement in ALS development with interneuron specific degeneration. These observations point to differential involvement of diverse spinal neuronal circuits that eventually may be determining motor neuron degeneration.


Subject(s)
Amyotrophic Lateral Sclerosis , Disease Models, Animal , Interneurons , Mice, Transgenic , Motor Neurons , Spinal Cord , Amyotrophic Lateral Sclerosis/pathology , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/metabolism , Animals , Motor Neurons/metabolism , Motor Neurons/pathology , Mice , Interneurons/metabolism , Interneurons/pathology , Spinal Cord/pathology , Spinal Cord/metabolism , Superoxide Dismutase-1/genetics , Superoxide Dismutase-1/metabolism , Humans , Disease Progression , Nerve Degeneration/pathology
11.
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
12.
Cell Rep ; 43(5): 114197, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38733587

ABSTRACT

Interneurons (INs), specifically those in disinhibitory circuits like somatostatin (SST) and vasoactive intestinal peptide (VIP)-INs, are strongly modulated by the behavioral context. Yet, the mechanisms by which these INs are recruited during active states and whether their activity is consistent across sensory cortices remain unclear. We now report that in mice, locomotor activity strongly recruits SST-INs in the primary somatosensory (S1) but not the visual (V1) cortex. This diverse engagement of SST-INs cannot be explained by differences in VIP-IN function but is absent in the presence of visual input, suggesting the involvement of feedforward sensory pathways. Accordingly, inactivating the somatosensory thalamus, but not decreasing VIP-IN activity, significantly reduces the modulation of SST-INs by locomotion. Model simulations suggest that the differences in SST-INs across behavioral states can be explained by varying ratios of VIP- and thalamus-driven activity. By integrating feedforward activity with neuromodulation, SST-INs are anticipated to be crucial for adapting sensory processing to behavioral states.


Subject(s)
Interneurons , Somatostatin , Vasoactive Intestinal Peptide , Animals , Interneurons/metabolism , Interneurons/physiology , Somatostatin/metabolism , Mice , Vasoactive Intestinal Peptide/metabolism , Somatosensory Cortex/physiology , Somatosensory Cortex/metabolism , Male , Mice, Inbred C57BL , Locomotion/physiology , Behavior, Animal/physiology , Visual Cortex/physiology , Visual Cortex/metabolism , Thalamus/physiology , Thalamus/metabolism
13.
Cell Rep ; 43(5): 114212, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38743567

ABSTRACT

Diverse types of inhibitory interneurons (INs) impart computational power and flexibility to neocortical circuits. Whereas markers for different IN types in cortical layers 2-6 (L2-L6) have been instrumental for generating a wealth of functional insights, only the recent identification of a selective marker (neuron-derived neurotrophic factor [NDNF]) has opened comparable opportunities for INs in L1 (L1INs). However, at present we know very little about the connectivity of NDNF L1INs with other IN types, their input-output conversion, and the existence of potential NDNF L1IN subtypes. Here, we report pervasive inhibition of L2/3 INs (including parvalbumin INs and vasoactive intestinal peptide INs) by NDNF L1INs. Intersectional genetics revealed similar physiology and connectivity in the NDNF L1IN subpopulation co-expressing neuropeptide Y. Finally, NDNF L1INs prominently and selectively engage in persistent firing, a physiological hallmark disconnecting their output from the current input. Collectively, our work therefore identifies NDNF L1INs as specialized master regulators of superficial neocortex according to their pervasive top-down afferents.


Subject(s)
Interneurons , Interneurons/metabolism , Animals , Mice , Neuropeptide Y/metabolism , Neocortex/metabolism , Neocortex/cytology , Neocortex/physiology , Vasoactive Intestinal Peptide/metabolism , Male , Parvalbumins/metabolism
14.
Proc Natl Acad Sci U S A ; 121(21): e2406565121, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38753507

ABSTRACT

While depolarization of the neuronal membrane is known to evoke the neurotransmitter release from synaptic vesicles, hyperpolarization is regarded as a resting state of chemical neurotransmission. Here, we report that hyperpolarizing neurons can actively signal neural information by employing undocked hemichannels. We show that UNC-7, a member of the innexin family in Caenorhabditis elegans, functions as a hemichannel in thermosensory neurons and transmits temperature information from the thermosensory neurons to their postsynaptic interneurons. By monitoring neural activities in freely behaving animals, we find that hyperpolarizing thermosensory neurons inhibit the activity of the interneurons and that UNC-7 hemichannels regulate this process. UNC-7 is required to control thermotaxis behavior and functions independently of synaptic vesicle exocytosis. Our findings suggest that innexin hemichannels mediate neurotransmission from hyperpolarizing neurons in a manner that is distinct from the synaptic transmission, expanding the way of neural circuitry operations.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Interneurons , Neurons , Synaptic Transmission , Animals , Caenorhabditis elegans/physiology , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Synaptic Transmission/physiology , Interneurons/metabolism , Interneurons/physiology , Neurons/physiology , Neurons/metabolism , Synaptic Vesicles/metabolism , Synaptic Vesicles/physiology , Taxis Response/physiology , Connexins/metabolism , Connexins/genetics , Membrane Proteins
15.
Nat Commun ; 15(1): 4495, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802410

ABSTRACT

Unified visual perception requires integration of bottom-up and top-down inputs in the primary visual cortex (V1), yet the organization of top-down inputs in V1 remains unclear. Here, we used optogenetics-assisted circuit mapping to identify how multiple top-down inputs from higher-order cortical and thalamic areas engage V1 excitatory and inhibitory neurons. Top-down inputs overlap in superficial layers yet segregate in deep layers. Inputs from the medial secondary visual cortex (V2M) and anterior cingulate cortex (ACA) converge on L6 Pyrs, whereas ventrolateral orbitofrontal cortex (ORBvl) and lateral posterior thalamic nucleus (LP) inputs are processed in parallel in Pyr-type-specific subnetworks (Pyr←ORBvl and Pyr←LP) and drive mutual inhibition between them via local interneurons. Our study deepens understanding of the top-down modulation mechanisms of visual processing and establishes that V2M and ACA inputs in L6 employ integrated processing distinct from the parallel processing of LP and ORBvl inputs in L5.


Subject(s)
Optogenetics , Primary Visual Cortex , Animals , Primary Visual Cortex/physiology , Male , Thalamus/physiology , Visual Pathways/physiology , Neurons/physiology , Visual Cortex/physiology , Gyrus Cinguli/physiology , Interneurons/physiology , Visual Perception/physiology , Mice , Female , Brain Mapping
16.
J Neurosci Res ; 102(4): e25319, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38629777

ABSTRACT

The central amygdaloid nucleus (CeA) has an ancient phylogenetic development and functions relevant for animal survival. Local cells receive intrinsic amygdaloidal information that codes emotional stimuli of fear, integrate them, and send cortical and subcortical output projections that prompt rapid visceral and social behavior responses. We aimed to describe the morphology of the neurons that compose the human CeA (N = 8 adult men). Cells within CeA coronal borders were identified using the thionine staining and were further analyzed using the "single-section" Golgi method followed by open-source software procedures for two-dimensional and three-dimensional image reconstructions. Our results evidenced varied neuronal cell body features, number and thickness of primary shafts, dendritic branching patterns, and density and shape of dendritic spines. Based on these criteria, we propose the existence of 12 morphologically different spiny neurons in the human CeA and discuss the variability in the dendritic architecture within cellular types, including likely interneurons. Some dendritic shafts were long and straight, displayed few collaterals, and had planar radiation within the coronal neuropil volume. Most of the sampled neurons showed a few to moderate density of small stubby/wide spines. Long spines (thin and mushroom) were observed occasionally. These novel data address the synaptic processing and plasticity in the human CeA. Our morphological description can be combined with further transcriptomic, immunohistochemical, and electrophysiological/connectional approaches. It serves also to investigate how neurons are altered in neurological and psychiatric disorders with hindered emotional perception, in anxiety, following atrophy in schizophrenia, and along different stages of Alzheimer's disease.


Subject(s)
Central Amygdaloid Nucleus , Male , Adult , Animals , Humans , Phylogeny , Dendritic Spines/physiology , Neurons/physiology , Interneurons
17.
Commun Biol ; 7(1): 420, 2024 Apr 06.
Article in English | MEDLINE | ID: mdl-38582915

ABSTRACT

The morpho-functional properties of neural networks constantly adapt in response to environmental stimuli. The olfactory bulb is particularly prone to constant reshaping of neural networks because of ongoing neurogenesis. It remains unclear whether the complexity of distinct odor-induced learning paradigms and sensory stimulation induces different forms of structural plasticity. In the present study, we automatically reconstructed spines in 3D from confocal images and performed unsupervised clustering based on morphometric features. We show that while sensory deprivation decreased the spine density of adult-born neurons without affecting the morphometric properties of these spines, simple and complex odor learning paradigms triggered distinct forms of structural plasticity. A simple odor learning task affected the morphometric properties of the spines, whereas a complex odor learning task induced changes in spine density. Our work reveals distinct forms of structural plasticity in the olfactory bulb tailored to the complexity of odor-learning paradigms and sensory inputs.


Subject(s)
Odorants , Olfactory Bulb , Mice , Animals , Olfactory Bulb/physiology , Interneurons/physiology , Learning , Neurons/physiology
18.
Cereb Cortex ; 34(4)2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38572735

ABSTRACT

Many studies indicate a broad role of various classes of GABAergic interneurons in the processes related to learning. However, little is known about how the learning process affects intrinsic excitability of specific classes of interneurons in the neocortex. To determine this, we employed a simple model of conditional learning in mice where vibrissae stimulation was used as a conditioned stimulus and a tail shock as an unconditioned one. In vitro whole-cell patch-clamp recordings showed an increase in intrinsic excitability of low-threshold spiking somatostatin-expressing interneurons (SST-INs) in layer 4 (L4) of the somatosensory (barrel) cortex after the conditioning paradigm. In contrast, pseudoconditioning reduced intrinsic excitability of SST-LTS, parvalbumin-expressing interneurons (PV-INs), and vasoactive intestinal polypeptide-expressing interneurons (VIP-INs) with accommodating pattern in L4 of the barrel cortex. In general, increased intrinsic excitability was accompanied by narrowing of action potentials (APs), whereas decreased intrinsic excitability coincided with AP broadening. Altogether, these results show that both conditioning and pseudoconditioning lead to plastic changes in intrinsic excitability of GABAergic interneurons in a cell-specific manner. In this way, changes in intrinsic excitability can be perceived as a common mechanism of learning-induced plasticity in the GABAergic system.


Subject(s)
Neocortex , Mice , Animals , Neocortex/metabolism , Interneurons/physiology , Learning/physiology , Conditioning, Classical/physiology , Parvalbumins/metabolism
19.
PLoS One ; 19(4): e0301999, 2024.
Article in English | MEDLINE | ID: mdl-38635686

ABSTRACT

To study how the nervous system processes visual information, experimenters must record neural activity while delivering visual stimuli in a controlled fashion. In animals with a nearly panoramic field of view, such as flies, precise stimulation of the entire visual field is challenging. We describe a projector-based device for stimulation of the insect visual system under a microscope. The device is based on a bowl-shaped screen that provides a wide and nearly distortion-free field of view. It is compact, cheap, easy to assemble, and easy to operate using the included open-source software for stimulus generation. We validate the virtual reality system technically and demonstrate its capabilities in a series of experiments at two levels: the cellular, by measuring the membrane potential responses of visual interneurons; and the organismal, by recording optomotor and fixation behavior of Drosophila melanogaster in tethered flight. Our experiments reveal the importance of stimulating the visual system of an insect with a wide field of view, and we provide a simple solution to do so.


Subject(s)
Drosophila melanogaster , Visual Fields , Animals , Drosophila melanogaster/physiology , Photic Stimulation , Software , Interneurons , Flight, Animal/physiology , Visual Perception/physiology
20.
Cereb Cortex ; 34(4)2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38610088

ABSTRACT

The axons of neocortical pyramidal neurons are frequently myelinated. Heterogeneity in the topography of axonal myelination in the cerebral cortex has been attributed to a combination of electrophysiological activity, axonal morphology, and neuronal-glial interactions. Previously, we showed that axonal segment length and caliber are critical local determinants of fast-spiking interneuron myelination. However, the factors that determine the myelination of individual axonal segments along neocortical pyramidal neurons remain largely unexplored. Here, we used structured illumination microscopy to examine the extent to which axonal morphology is predictive of the topography of myelination along neocortical pyramidal neurons. We identified critical thresholds for axonal caliber and interbranch distance that are necessary, but not sufficient, for myelination of pyramidal cell axons in mouse primary somatosensory cortex (S1). Specifically, we found that pyramidal neuron axonal segments with a caliber < 0.24 µm or interbranch distance < 18.10 µm are rarely myelinated. Moreover, we further confirmed that these findings in mice are similar for human neocortical pyramidal cell myelination (caliber < 0.25 µm, interbranch distance < 19.00 µm), suggesting that this mechanism is evolutionarily conserved. Taken together, our findings suggest that axonal morphology is a critical correlate of the topography and cell-type specificity of neocortical myelination.


Subject(s)
Neocortex , Pyramidal Cells , Humans , Animals , Mice , Axons , Myelin Sheath , Interneurons
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