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1.
Nature ; 628(8006): 145-153, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38538785

ABSTRACT

As hippocampal neurons respond to diverse types of information1, a subset assembles into microcircuits representing a memory2. Those neurons typically undergo energy-intensive molecular adaptations, occasionally resulting in transient DNA damage3-5. Here we found discrete clusters of excitatory hippocampal CA1 neurons with persistent double-stranded DNA (dsDNA) breaks, nuclear envelope ruptures and perinuclear release of histone and dsDNA fragments hours after learning. Following these early events, some neurons acquired an inflammatory phenotype involving activation of TLR9 signalling and accumulation of centrosomal DNA damage repair complexes6. Neuron-specific knockdown of Tlr9 impaired memory while blunting contextual fear conditioning-induced changes of gene expression in specific clusters of excitatory CA1 neurons. Notably, TLR9 had an essential role in centrosome function, including DNA damage repair, ciliogenesis and build-up of perineuronal nets. We demonstrate a novel cascade of learning-induced molecular events in discrete neuronal clusters undergoing dsDNA damage and TLR9-mediated repair, resulting in their recruitment to memory circuits. With compromised TLR9 function, this fundamental memory mechanism becomes a gateway to genomic instability and cognitive impairments implicated in accelerated senescence, psychiatric disorders and neurodegenerative disorders. Maintaining the integrity of TLR9 inflammatory signalling thus emerges as a promising preventive strategy for neurocognitive deficits.


Subject(s)
CA1 Region, Hippocampal , DNA Breaks, Double-Stranded , DNA Repair , Inflammation , Memory , Toll-Like Receptor 9 , Animals , Female , Male , Mice , Aging/genetics , Aging/pathology , CA1 Region, Hippocampal/physiology , Centrosome/metabolism , Cognitive Dysfunction/genetics , Conditioning, Classical , Extracellular Matrix/metabolism , Fear , Genomic Instability/genetics , Histones/metabolism , Inflammation/genetics , Inflammation/immunology , Inflammation/metabolism , Inflammation/pathology , Memory/physiology , Mental Disorders/genetics , Neurodegenerative Diseases/genetics , Neuroinflammatory Diseases/genetics , Neurons/metabolism , Neurons/pathology , Nuclear Envelope/pathology , Toll-Like Receptor 9/deficiency , Toll-Like Receptor 9/genetics , Toll-Like Receptor 9/immunology , Toll-Like Receptor 9/metabolism
2.
Nat Rev Neurosci ; 22(7): 389-406, 2021 07.
Article in English | MEDLINE | ID: mdl-33958775

ABSTRACT

Functions of the neocortex depend on its bidirectional communication with the thalamus, via cortico-thalamo-cortical (CTC) loops. Recent work dissecting the synaptic connectivity in these loops is generating a clearer picture of their cellular organization. Here, we review findings across sensory, motor and cognitive areas, focusing on patterns of cell type-specific synaptic connections between the major types of cortical and thalamic neurons. We outline simple and complex CTC loops, and note features of these loops that appear to be general versus specialized. CTC loops are tightly interlinked with local cortical and corticocortical (CC) circuits, forming extended chains of loops that are probably critical for communication across hierarchically organized cerebral networks. Such CTC-CC loop chains appear to constitute a modular unit of organization, serving as scaffolding for area-specific structural and functional modifications. Inhibitory neurons and circuits are embedded throughout CTC loops, shaping the flow of excitation. We consider recent findings in the context of established CTC and CC circuit models, and highlight current efforts to pinpoint cell type-specific mechanisms in CTC loops involved in consciousness and perception. As pieces of the connectivity puzzle fall increasingly into place, this knowledge can guide further efforts to understand structure-function relationships in CTC loops.


Subject(s)
Cerebral Cortex/physiology , Connectome , Neural Pathways/physiology , Thalamus/physiology , Animals , Axons/ultrastructure , Cerebral Cortex/cytology , Consciousness/physiology , Dendrites/ultrastructure , Humans , Mice , Neurons/classification , Neurons/physiology , Neurons/ultrastructure , Perception/physiology , Species Specificity , Synapses/physiology , Thalamus/cytology
3.
Elife ; 102021 04 14.
Article in English | MEDLINE | ID: mdl-33851917

ABSTRACT

Sensory-guided limb control relies on communication across sensorimotor loops. For active touch with the hand, the longest loop is the transcortical continuation of ascending pathways, particularly the lemnisco-cortical and corticocortical pathways carrying tactile signals via the cuneate nucleus, ventral posterior lateral (VPL) thalamus, and primary somatosensory (S1) and motor (M1) cortices to reach corticospinal neurons and influence descending activity. We characterized excitatory connectivity along this pathway in the mouse. In the lemnisco-cortical leg, disynaptic cuneate→VPL→S1 connections excited mainly layer (L) 4 neurons. In the corticocortical leg, S1→M1 connections from L2/3 and L5A neurons mainly excited downstream L2/3 neurons, which excite corticospinal neurons. The findings provide a detailed new wiring diagram for the hand/forelimb-related transcortical circuit, delineating a basic but complex set of cell-type-specific feedforward excitatory connections that selectively and extensively engage diverse intratelencephalic projection neurons, thereby polysynaptically linking subcortical somatosensory input to cortical motor output to spinal cord.


Subject(s)
Forelimb/innervation , Motor Cortex/physiology , Somatosensory Cortex/physiology , Ventral Thalamic Nuclei/physiology , Animals , Female , Male , Mice
4.
J Neurosci ; 40(14): 2849-2858, 2020 04 01.
Article in English | MEDLINE | ID: mdl-32075900

ABSTRACT

Cortical projections to the thalamus arise from corticothalamic (CT) neurons in layer 6 and pyramidal tract-type (PT) neurons in layer 5B. We dissected the excitatory synaptic connections in the somatosensory thalamus formed by CT and PT neurons of the primary somatosensory (S1) cortex, focusing on mouse forelimb S1. Mice of both sexes were studied. The CT neurons in S1 synaptically excited S1-projecting thalamocortical (TC) neurons in subregions of both the ventral posterior lateral and posterior (PO) nuclei, forming a pair of recurrent cortico-thalamo-cortical (C-T-C) loops. The PT neurons in S1 also formed a recurrent loop with S1-projecting TC neurons in the same subregion of the PO. The PT neurons in the adjacent primary motor (M1) cortex formed a separate recurrent loop with M1-projecting TC neurons in a nearby subregion of the PO. Collectively, our results reveal that C-T-C circuits of mouse forelimb S1 are primarily organized as multiple cortical cell-type-specific and thalamic subnucleus-specific recurrent loops, with both CT and PT neurons providing the strongest excitatory input to TC neurons that project back to S1. The findings, together with those of related studies of C-T-C circuits, thus suggest that recurrently projecting thalamocortical neurons are the principal targets of cortical excitatory input to the mouse somatosensory and motor thalamus.SIGNIFICANCE STATEMENT Bidirectional cortical communication with the thalamus is considered an important aspect of sensorimotor integration for active touch in the somatosensory system, but the cellular organization of the circuits mediating this process is not well understood. We used an approach combining cell-type-specific anterograde optogenetic excitation with single-cell recordings targeted to retrogradely labeled thalamocortical neurons to dissect these circuits. The findings reveal a consistent pattern: cortical projections to the somatosensory thalamus target thalamocortical neurons that project back to the same cortical area. Commonalities of these findings to previous descriptions of related circuits in other areas suggest that cortico-thalamo-cortical circuits may generally be organized primarily as recurrent loops.


Subject(s)
Forelimb/innervation , Neural Pathways/cytology , Somatosensory Cortex/cytology , Thalamus/cytology , Animals , Female , Male , Mice , Mice, Inbred C57BL
5.
Nat Neurosci ; 22(4): 618-626, 2019 04.
Article in English | MEDLINE | ID: mdl-30858601

ABSTRACT

Hippocampus, granular retrosplenial cortex (RSCg), and anterior thalamic nuclei (ATN) interact to mediate diverse cognitive functions. To identify cellular mechanisms underlying hippocampo-thalamo-retrosplenial interactions, we investigated the potential circuit suggested by projections to RSCg layer 1 (L1) from GABAergic CA1 neurons and ATN. We find that CA1→RSCg projections stem from GABAergic neurons with a distinct morphology, electrophysiology, and molecular profile. Their long-range axons inhibit L5 pyramidal neurons in RSCg via potent synapses onto apical tuft dendrites in L1. These inhibitory inputs intercept L1-targeting thalamocortical excitatory inputs from ATN to coregulate RSCg activity. Subicular axons, in contrast, excite proximal dendrites in deeper layers. Short-term plasticity differs at each connection. Chemogenetically abrogating CA1→RSCg or ATN→RSCg connections oppositely affects the encoding of contextual fear memory. Our findings establish retrosplenial-projecting CA1 neurons as a distinct class of long-range dendrite-targeting GABAergic neuron and delineate an unusual cortical circuit specialized for integrating long-range inhibition and thalamocortical excitation.


Subject(s)
Anterior Thalamic Nuclei/cytology , Anterior Thalamic Nuclei/physiology , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Cerebral Cortex/cytology , Cerebral Cortex/physiology , GABAergic Neurons/cytology , GABAergic Neurons/physiology , Animals , Conditioning, Classical/physiology , Fear/physiology , Female , Male , Mice, Inbred C57BL , Mice, Transgenic , Neural Inhibition , Neural Pathways/cytology , Neural Pathways/physiology , Neurons/cytology , Neurons/physiology , Synaptic Potentials
6.
Cereb Cortex ; 29(6): 2728-2736, 2019 06 01.
Article in English | MEDLINE | ID: mdl-29878069

ABSTRACT

Learning to associate stressful events with specific environmental contexts depends on excitatory transmission in the hippocampus, but how this information is transmitted to the neocortex for lasting memory storage is unclear. We identified dorsal hippocampal (DH) projections to the retrosplenial cortex (RSC), which arise mainly from the subiculum and contain either the vesicular glutamate transporter 1 (vGlut1) or vGlut2. Both vGlut1+ and vGlut2+ axons strongly excite and disynaptically inhibit RSC pyramidal neurons in superficial layers, but vGlut2+ axons trigger greater inhibition that spreads to deep layers, indicating that these pathways engage RSC circuits via partially redundant, partially differentiated cellular mechanisms. Using contextual fear conditioning in mice to model contextual associative memories, together with chemogenetic axonal silencing, we found that vGlut1+ projections are principally involved in processing recent context memories whereas vGlut2+ projections contribute to their long-lasting storage. Thus, within the DH→RSC pathway, engagement of vGlut1+ and vGlut2+ circuits differentially contribute to the formation and persistence of fear-inducing context memories.


Subject(s)
Cerebral Cortex/physiology , Hippocampus/physiology , Memory, Episodic , Neural Pathways/physiology , Animals , Female , Male , Mice , Mice, Inbred C57BL , Vesicular Glutamate Transport Protein 1/metabolism , Vesicular Glutamate Transport Protein 2/metabolism
8.
J Neurosci ; 38(41): 8787-8797, 2018 10 10.
Article in English | MEDLINE | ID: mdl-30143573

ABSTRACT

The anterolateral motor cortex (ALM) and ventral medial (VM) thalamus are functionally linked to support persistent activity during motor planning. We analyzed the underlying synaptic interconnections using optogenetics and electrophysiology in mice (female/male). In cortex, thalamocortical (TC) axons from VM thalamus excited VM-projecting pyramidal tract (PT) neurons in layer 5B of ALM. These axons also strongly excited layer 2/3 neurons (which strongly excite PT neurons, as previously shown) but not VM-projecting corticothalamic (CT) neurons in layer 6. The strongest connections in the VM → PT circuit were localized to apical tuft dendrites of PT neurons, in layer 1. These tuft inputs were selectively augmented after blocking hyperpolarization-activated cyclic nucleotide-gated (HCN) channels. In thalamus, axons from ALM PT neurons excited ALM-projecting VM neurons, located medially in VM. These axons provided weak input to neurons in mediodorsal nucleus, and little or no input either to neurons in the GABAergic reticular thalamic nucleus or to neurons in VM projecting to primary motor cortex (M1). Conversely, M1 PT axons excited M1- but not ALM-projecting VM neurons. Our findings indicate, first, a set of cell type-specific connections forming an excitatory thalamo-cortico-thalamic loop for ALM ↔ VM communication and a circuit-level substrate for supporting reverberant activity in this system. Second, a key feature of this loop is the prominent involvement of layer 1 synapses onto apical dendrites, a subcellular compartment with distinct signaling properties, including HCN-mediated gain control. Third, the segregation of the ALM ↔ VM loop from M1-related circuits of VM adds cellular-level support for the concept of parallel pathway organization in the motor system.SIGNIFICANCE STATEMENT Anterolateral motor cortex (ALM), a higher-order motor area in the mouse, and ventromedial (VM) thalamus are anatomically and functionally linked, but their synaptic interconnections at the cellular level are unknown. Our results show that ALM pyramidal tract neurons monosynaptically excite ALM-projecting thalamocortical neurons in a medial subdivision of VM thalamus, and vice versa. The thalamo-cortico-thalamic loop formed by these recurrent connections constitutes a circuit-level substrate for supporting reverberant activity in this system.


Subject(s)
Dendrites/physiology , Motor Cortex/physiology , Neurons/physiology , Pyramidal Tracts/physiology , Ventral Thalamic Nuclei/physiology , Animals , Axons/physiology , Female , Male , Mice, Inbred C57BL , Mice, Transgenic , Neural Pathways/physiology , Optogenetics , Synapses/physiology
9.
Front Syst Neurosci ; 12: 16, 2018.
Article in English | MEDLINE | ID: mdl-29867381

ABSTRACT

Quantitative analysis of corticocortical signaling is needed to understand and model information processing in cerebral networks. However, higher-order pathways, hodologically remote from sensory input, are not amenable to spatiotemporally precise activation by sensory stimuli. Here, we combined parametric channelrhodopsin-2 (ChR2) photostimulation with multi-unit electrophysiology to study corticocortical driving in a parietofrontal pathway from retrosplenial cortex (RSC) to posterior secondary motor cortex (M2) in mice in vivo. Ketamine anesthesia was used both to eliminate complex activity associated with the awake state and to enable stable recordings of responses over a wide range of stimulus parameters. Photostimulation of ChR2-expressing neurons in RSC, the upstream area, produced local activity that decayed quickly. This activity in turn drove downstream activity in M2 that arrived rapidly (5-10 ms latencies), and scaled in amplitude across a wide range of stimulus parameters as an approximately constant fraction (~0.1) of the upstream activity. A model-based analysis could explain the corticocortically driven activity with exponentially decaying kernels (~20 ms time constant) and small delay. Reverse (antidromic) driving was similarly robust. The results show that corticocortical signaling in this pathway drives downstream activity rapidly and scalably, in a mostly linear manner. These properties, identified in anesthetized mice and represented in a simple model, suggest a robust basis for supporting complex non-linear dynamic activity in corticocortical circuits in the awake state.

10.
Behav Neurosci ; 132(5): 388-395, 2018 Oct.
Article in English | MEDLINE | ID: mdl-29878804

ABSTRACT

This work summarizes evidence for the role of RSC in processing fear-inducing context memories. Specifically, we discuss molecular, cellular, and network mechanisms by which RSC might contribute the processing of contextual fear memories. We focus on glutamatergic and cholinergic mechanisms underlying encoding, retrieval, and extinction of context-dependent fear. RSC mechanisms underlying retrieval of recently and remotely acquired memories are compared to memory mechanisms of anterior cortices. Due to the strong connectivity between hippocampus and RSC, we also compare the extent to which their mechanisms of encoding, retrieval, and extinction show overlap. At a theoretical level, we discuss the role of RSC in the framework of systems consolidation as well as retrieval-induced memory modulation. Lastly, we emphasize the implication of these findings for psychopathologies associated with neurological and psychiatric disorders. (PsycINFO Database Record (c) 2018 APA, all rights reserved).


Subject(s)
Cerebral Cortex/metabolism , Memory/physiology , Stress, Psychological/metabolism , Animals , Cerebral Cortex/cytology , Humans , Neural Pathways/cytology , Neural Pathways/metabolism
11.
Cold Spring Harb Protoc ; 2016(10)2016 10 03.
Article in English | MEDLINE | ID: mdl-27698240

ABSTRACT

A set of methods is described for channelrhodopsin-2 (ChR2)-based synaptic circuit analysis that combines photostimulation of virally transfected presynaptic neurons' axons with whole-cell electrophysiological recordings from retrogradely labeled postsynaptic neurons. The approach exploits the preserved photoexcitability of ChR2-expressing axons in brain slices and can be used to assess either local or long-range functional connections. Stereotaxic injections are used both to express ChR2 selectively in presynaptic axons of interest (using rabies virus [RV] or adeno-associated virus [AAV]) and to label two types of postsynaptic projection neurons of interest with fluorescent retrograde tracers. In brain slices, tracer-labeled postsynaptic neurons are targeted for whole-cell electrophysiological recordings, and synaptic connections are assessed by sampling voltage or current responses to light-emitting diode (LED) photostimulation of ChR2-expressing axons. The data are analyzed to estimate the relative amplitude of synaptic input and other connectivity parameters. Pharmacological and electrophysiological manipulations extend the versatility of the basic approach, allowing the dissection of monosynaptic versus disynaptic responses, excitatory versus inhibitory responses, and more. The method enables rapid, quantitative characterization of synaptic connectivity between defined pre- and postsynaptic classes of neurons.


Subject(s)
Electrophysiology/methods , Nerve Net , Neurons/physiology , Optogenetics/methods , Animals , Channelrhodopsins , Dependovirus/genetics , Gene Expression , Mice , Rabies virus/genetics , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
12.
J Neurosci ; 36(36): 9365-74, 2016 09 07.
Article in English | MEDLINE | ID: mdl-27605612

ABSTRACT

UNLABELLED: Retrosplenial cortex (RSC) is a dorsomedial parietal area involved in a range of cognitive functions, including episodic memory, navigation, and spatial memory. Anatomically, the RSC receives inputs from dorsal hippocampal networks and in turn projects to medial neocortical areas. A particularly prominent projection extends rostrally to the posterior secondary motor cortex (M2), suggesting a functional corticocortical link from the RSC to M2 and thus a bridge between hippocampal and neocortical networks involved in mnemonic and sensorimotor aspects of navigation. We investigated the cellular connectivity in this RSC→M2 projection in the mouse using optogenetic photostimulation, retrograde labeling, and electrophysiology. Axons from RSC formed monosynaptic excitatory connections onto M2 pyramidal neurons across layers and projection classes, including corticocortical/intratelencephalic neurons (reciprocally and callosally projecting) in layers 2-6, pyramidal tract neurons (corticocollicular, corticopontine) in layer 5B, and, to a lesser extent, corticothalamic neurons in layer 6. In addition to these direct connections, disynaptic connections were made via posterior parietal cortex (RSC→PPC→M2) and anteromedial thalamus (RSC→AM→M2). In the reverse direction, axons from M2 monosynaptically excited M2-projecting corticocortical neurons in the RSC, especially in the superficial layers of the dysgranular region. These findings establish an excitatory RSC→M2 corticocortical circuit that engages diverse types of excitatory projection neurons in the downstream area, suggesting a basis for direct communication from dorsal hippocampal networks involved in spatial memory and navigation to neocortical networks involved in diverse aspects of sensorimotor integration and motor control. SIGNIFICANCE STATEMENT: Corticocortical pathways interconnect cortical areas extensively, but the cellular connectivity in these pathways remains largely uncharacterized. Here, we show that a posterior part of secondary motor cortex receives corticocortical axons from the rostral retrosplenial cortex (RSC) and these form monosynaptic excitatory connections onto a wide spectrum of excitatory projection neurons in this area. Our results define a cellular basis for direct communication from RSC to this medial frontal area, suggesting a direct link from dorsal hippocampal networks involved in spatial cognition and navigation (the "map") to sensorimotor networks involved the control of movement (the "motor").


Subject(s)
Motor Cortex/cytology , Nerve Net/physiology , Neurons/physiology , Parietal Lobe/cytology , Pyramidal Tracts/physiology , Animals , Channelrhodopsins , Cholera Toxin/metabolism , Female , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , In Vitro Techniques , Male , Membrane Potentials/drug effects , Mice , Mice, Inbred C57BL , Mice, Transgenic , Neurons/drug effects , Neurotransmitter Agents/pharmacology , Optogenetics , Patch-Clamp Techniques , Transduction, Genetic
13.
Nat Neurosci ; 18(9): 1265-71, 2015 Sep.
Article in English | MEDLINE | ID: mdl-26280760

ABSTRACT

Fear-inducing memories can be state dependent, meaning that they can best be retrieved if the brain states at encoding and retrieval are similar. Restricted access to such memories can present a risk for psychiatric disorders and hamper their treatment. To better understand the mechanisms underlying state-dependent fear, we used a mouse model of contextual fear conditioning. We found that heightened activity of hippocampal extrasynaptic GABAA receptors, believed to impair fear and memory, actually enabled their state-dependent encoding and retrieval. This effect required protein kinase C-ßII and was influenced by miR-33, a microRNA that regulates several GABA-related proteins. In the extended hippocampal circuit, extrasynaptic GABAA receptors promoted subcortical, but impaired cortical, activation during memory encoding of context fear. Moreover, suppression of retrosplenial cortical activity, which normally impairs retrieval, had an enhancing effect on the retrieval of state-dependent fear. These mechanisms can serve as treatment targets for managing access to state-dependent memories of stressful experiences.


Subject(s)
Conditioning, Psychological/physiology , Fear/physiology , Hippocampus/metabolism , MicroRNAs/physiology , Receptors, GABA-A/metabolism , Animals , Conditioning, Psychological/drug effects , Dose-Response Relationship, Drug , Fear/drug effects , Fear/psychology , GABA Agonists/pharmacology , GABAergic Neurons/drug effects , GABAergic Neurons/metabolism , Hippocampus/drug effects , Isoxazoles/pharmacology , Male , Mice , Mice, Inbred C57BL , Organ Culture Techniques
14.
Neuropharmacology ; 95: 192-205, 2015 Aug.
Article in English | MEDLINE | ID: mdl-25797493

ABSTRACT

Tonic conductance mediated by extrasynaptic GABAA receptors has been implicated in the modulation of network oscillatory activity. Using an in vitro brain slice to produce oscillatory activity and a kinetic model of GABAA receptor dynamics, we show that changes in tonic inhibitory input to fast spiking interneurons underlie benzodiazepine-site mediated modulation of neuronal network synchrony in rat primary motor cortex. We found that low concentrations (10 nM) of the benzodiazepine site agonist, zolpidem, reduced the power of pharmacologically-induced beta-frequency (15-30 Hz) oscillatory activity. By contrast, higher doses augmented beta power. Application of the antagonist, flumazenil, also increased beta power suggesting endogenous modulation of the benzodiazepine binding site. Voltage-clamp experiments revealed that pharmacologically-induced rhythmic inhibitory postsynaptic currents were reduced by 10 nM zolpidem, suggesting an action on inhibitory interneurons. Further voltage-clamp studies of fast spiking cells showed that 10 nM zolpidem augmented a tonic inhibitory GABAA receptor mediated current in fast spiking cells whilst higher concentrations of zolpidem reduced the tonic current. A kinetic model of zolpidem-sensitive GABAA receptors suggested that incubation with 10 nM zolpidem resulted in a high proportion of GABAA receptors locked in a kinetically slow desensitized state whilst 30 nM zolpidem favoured rapid transition into and out of desensitized states. This was confirmed experimentally using a challenge with saturating concentrations of GABA. Selective modulation of an interneuron-specific tonic current may underlie the reversal of cognitive and motor deficits afforded by low-dose zolpidem in neuropathological states.


Subject(s)
Beta Rhythm/drug effects , GABA-A Receptor Agonists/pharmacology , Interneurons/drug effects , Pyridines/pharmacology , Action Potentials/drug effects , Action Potentials/physiology , Animals , Beta Rhythm/physiology , Dose-Response Relationship, Drug , Flumazenil/pharmacology , GABA Modulators/pharmacology , Inhibitory Postsynaptic Potentials/drug effects , Inhibitory Postsynaptic Potentials/physiology , Interneurons/physiology , Kinetics , Male , Models, Neurological , Patch-Clamp Techniques , Pyramidal Cells/drug effects , Pyramidal Cells/physiology , Rats, Wistar , Receptors, GABA-A/metabolism , Tissue Culture Techniques , Zolpidem , gamma-Aminobutyric Acid/metabolism
15.
J Neurosci ; 35(5): 2293-307, 2015 Feb 04.
Article in English | MEDLINE | ID: mdl-25653383

ABSTRACT

Corticothalamic (CT) neurons in layer 6 constitute a large but enigmatic class of cortical projection neurons. How they are integrated into intracortical and thalamo-cortico-thalamic circuits is incompletely understood, especially outside of sensory cortex. Here, we investigated CT circuits in mouse forelimb motor cortex (M1) using multiple circuit-analysis methods. Stimulating and recording from CT, intratelencephalic (IT), and pyramidal tract (PT) projection neurons, we found strong CT↔ CT and CT↔ IT connections; however, CT→IT connections were limited to IT neurons in layer 6, not 5B. There was strikingly little CT↔ PT excitatory connectivity. Disynaptic inhibition systematically accompanied excitation in these pathways, scaling with the amplitude of excitation according to both presynaptic (class-specific) and postsynaptic (cell-by-cell) factors. In particular, CT neurons evoked proportionally more inhibition relative to excitation (I/E ratio) than IT neurons. Furthermore, the amplitude of inhibition was tuned to match the amount of excitation at the level of individual neurons; in the extreme, neurons receiving no excitation received no inhibition either. Extending these studies to dissect the connectivity between cortex and thalamus, we found that M1-CT neurons and thalamocortical neurons in the ventrolateral (VL) nucleus were remarkably unconnected in either direction. Instead, VL axons in the cortex excited both IT and PT neurons, and CT axons in the thalamus excited other thalamic neurons, including those in the posterior nucleus, which additionally received PT excitation. These findings, which contrast in several ways with previous observations in sensory areas, illuminate the basic circuit organization of CT neurons within M1 and between M1 and thalamus.


Subject(s)
Motor Cortex/physiology , Nerve Net/physiology , Pyramidal Tracts/physiology , Synapses/physiology , Thalamus/physiology , Action Potentials , Animals , Excitatory Postsynaptic Potentials , Female , Inhibitory Postsynaptic Potentials , Male , Mice , Mice, Inbred C57BL , Motor Cortex/cytology , Nerve Net/cytology , Neurons/physiology , Telencephalon/cytology , Telencephalon/physiology , Thalamus/cytology
16.
Elife ; 3: e05422, 2014 Dec 19.
Article in English | MEDLINE | ID: mdl-25525751

ABSTRACT

The motor cortex (M1) is classically considered an agranular area, lacking a distinct layer 4 (L4). Here, we tested the idea that M1, despite lacking a cytoarchitecturally visible L4, nevertheless possesses its equivalent in the form of excitatory neurons with input-output circuits like those of the L4 neurons in sensory areas. Consistent with this idea, we found that neurons located in a thin laminar zone at the L3/5A border in the forelimb area of mouse M1 have multiple L4-like synaptic connections: excitatory input from thalamus, largely unidirectional excitatory outputs to L2/3 pyramidal neurons, and relatively weak long-range corticocortical inputs and outputs. M1-L4 neurons were electrophysiologically diverse but morphologically uniform, with pyramidal-type dendritic arbors and locally ramifying axons, including branches extending into L2/3. Our findings therefore identify pyramidal neurons in M1 with the expected prototypical circuit properties of excitatory L4 neurons, and question the traditional assumption that motor cortex lacks this layer.


Subject(s)
Action Potentials/physiology , Motor Cortex/physiology , Pyramidal Cells/physiology , Synapses/physiology , Synaptic Potentials/physiology , Adenoviridae/genetics , Animals , Axons/physiology , Axons/ultrastructure , Dendrites/physiology , Dendrites/ultrastructure , Fluorescent Dyes , Genetic Vectors , Mice , Microspheres , Microtomy , Motor Cortex/ultrastructure , Pyramidal Cells/ultrastructure , Stereotaxic Techniques , Synapses/ultrastructure , Synaptic Transmission , Thalamus/physiology , Thalamus/ultrastructure , Tissue Culture Techniques
17.
PLoS One ; 9(1): e85109, 2014.
Article in English | MEDLINE | ID: mdl-24465488

ABSTRACT

Beta frequency oscillations (10-35 Hz) in motor regions of cerebral cortex play an important role in stabilising and suppressing unwanted movements, and become intensified during the pathological akinesia of Parkinson's Disease. We have used a cortical slice preparation of rat brain, combined with concurrent intracellular and field recordings from the primary motor cortex (M1), to explore the cellular basis of the persistent beta frequency (27-30 Hz) oscillations manifest in local field potentials (LFP) in layers II and V of M1 produced by continuous perfusion of kainic acid (100 nM) and carbachol (5 µM). Spontaneous depolarizing GABA-ergic IPSPs in layer V cells, intracellularly dialyzed with KCl and IEM1460 (to block glutamatergic EPSCs), were recorded at -80 mV. IPSPs showed a highly significant (P< 0.01) beta frequency component, which was highly significantly coherent with both the Layer II and V LFP oscillation (which were in antiphase to each other). Both IPSPs and the LFP beta oscillations were abolished by the GABAA antagonist bicuculline. Layer V cells at rest fired spontaneous action potentials at sub-beta frequencies (mean of 7.1+1.2 Hz; n = 27) which were phase-locked to the layer V LFP beta oscillation, preceding the peak of the LFP beta oscillation by some 20 ms. We propose that M1 beta oscillations, in common with other oscillations in other brain regions, can arise from synchronous hyperpolarization of pyramidal cells driven by synaptic inputs from a GABA-ergic interneuronal network (or networks) entrained by recurrent excitation derived from pyramidal cells. This mechanism plays an important role in both the physiology and pathophysiology of control of voluntary movement generation.


Subject(s)
Inhibitory Postsynaptic Potentials/physiology , Motor Cortex/physiology , Neurons/physiology , Action Potentials/physiology , Animals , Electrophysiology , Male , Rats , Rats, Wistar
18.
Neurophotonics ; 1(1)2014 Jul 01.
Article in English | MEDLINE | ID: mdl-25553337

ABSTRACT

Neurophotonics methods offer powerful ways to access neuronal signals and circuits. We highlight recent advances and current themes in this area, emphasizing tools for mapping, monitoring, and manipulating excitatory projection neurons and their synaptic circuits in mouse motor cortex.

19.
Nat Neurosci ; 16(6): 665-7, 2013 Jun.
Article in English | MEDLINE | ID: mdl-23666180

ABSTRACT

Anatomical studies have led to the assertion that intratelencephalic and pyramidal tract cortical neurons innervate different striatal projection neurons. To test this hypothesis, we measured the responses of mouse striatal neurons to optogenetic activation of intratelencephalic and pyramidal tract axons. Contrary to expectation, direct and indirect pathway striatal spiny projection neurons responded to both intratelencephalic and pyramidal tract activation, arguing that these cortical networks innervate both striatal projection neurons.


Subject(s)
Cerebral Cortex/physiology , Neostriatum/physiology , Neural Pathways/physiology , Neurons/physiology , Pyramidal Tracts/physiology , Animals , Cerebral Cortex/cytology , Electrophysiological Phenomena/physiology , Female , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Neostriatum/cytology , Neostriatum/pathology , Neural Pathways/cytology , Optogenetics/instrumentation , Optogenetics/methods , Patch-Clamp Techniques , Pyramidal Tracts/cytology
20.
J Neurosci ; 33(2): 748-60, 2013 Jan 09.
Article in English | MEDLINE | ID: mdl-23303952

ABSTRACT

Determining how long-range synaptic inputs engage pyramidal neurons in primary motor cortex (M1) is important for understanding circuit mechanisms involved in regulating movement. We used channelrhodopsin-2-assisted circuit mapping to characterize the long-range excitatory synaptic connections made by multiple cortical and thalamic areas onto pyramidal neurons in mouse vibrissal motor cortex (vM1). Each projection innervated vM1 pyramidal neurons with a unique laminar profile. Collectively, the profiles for different sources of input partially overlapped and spanned all cortical layers. Specifically, orbital cortex (OC) inputs primarily targeted neurons in L6. Secondary motor cortex (M2) inputs excited neurons mainly in L5B, including pyramidal tract neurons. In contrast, thalamocortical inputs from anterior motor-related thalamic regions, including VA/VL (ventral anterior thalamic nucleus/ventrolateral thalamic nucleus), targeted neurons in L2/3 through L5B, but avoided L6. Inputs from posterior sensory-related thalamic areas, including POm (posterior thalamic nuclear group), targeted neurons only in the upper layers (L2/3 and L5A), similar to inputs from somatosensory (barrel) cortex. Our results show that long-range excitatory inputs target vM1 pyramidal neurons in a layer-specific manner. Inputs from sensory-related cortical and thalamic areas preferentially target the upper-layer pyramidal neurons in vM1. In contrast, inputs from OC and M2, areas associated with volitional and cognitive aspects of movements, bypass local circuitry and have direct monosynaptic access to neurons projecting to brainstem and thalamus.


Subject(s)
Cerebral Cortex/physiology , Motor Cortex/physiology , Neurons/physiology , Pyramidal Tracts/physiology , Thalamus/physiology , Animals , Cerebral Cortex/cytology , Data Interpretation, Statistical , Efferent Pathways/cytology , Efferent Pathways/physiology , Electric Stimulation , Electrophysiological Phenomena , Female , Male , Mice , Mice, Inbred C57BL , Motor Cortex/cytology , Patch-Clamp Techniques , Pons/cytology , Pons/physiology , Pyramidal Tracts/cytology , Thalamus/cytology
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