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1.
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
2.
Nat Commun ; 15(1): 4122, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38750027

ABSTRACT

Visual information is important for accurate spatial coding and memory-guided navigation. As a crucial area for spatial cognition, the medial entorhinal cortex (MEC) harbors diverse spatially tuned cells and functions as the major gateway relaying sensory inputs to the hippocampus containing place cells. However, how visual information enters the MEC has not been fully understood. Here, we identify a pathway originating in the secondary visual cortex (V2) and directly targeting MEC layer 5a (L5a). L5a neurons served as a network hub for visual processing in the MEC by routing visual inputs from multiple V2 areas to other local neurons and hippocampal CA1. Interrupting this pathway severely impaired visual stimulus-evoked neural activity in the MEC and performance of mice in navigation tasks. These observations reveal a visual cortical-entorhinal pathway highlighting the role of MEC L5a in sensory information transmission, a function typically attributed to MEC superficial layers before.


Subject(s)
Entorhinal Cortex , Neurons , Spatial Navigation , Visual Cortex , Animals , Entorhinal Cortex/physiology , Visual Cortex/physiology , Spatial Navigation/physiology , Mice , Neurons/physiology , Male , Mice, Inbred C57BL , Photic Stimulation , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Visual Pathways/physiology , Visual Perception/physiology
3.
Elife ; 122024 May 02.
Article in English | MEDLINE | ID: mdl-38695551

ABSTRACT

Recent studies show that, even in constant environments, the tuning of single neurons changes over time in a variety of brain regions. This representational drift has been suggested to be a consequence of continuous learning under noise, but its properties are still not fully understood. To investigate the underlying mechanism, we trained an artificial network on a simplified navigational task. The network quickly reached a state of high performance, and many units exhibited spatial tuning. We then continued training the network and noticed that the activity became sparser with time. Initial learning was orders of magnitude faster than ensuing sparsification. This sparsification is consistent with recent results in machine learning, in which networks slowly move within their solution space until they reach a flat area of the loss function. We analyzed four datasets from different labs, all demonstrating that CA1 neurons become sparser and more spatially informative with exposure to the same environment. We conclude that learning is divided into three overlapping phases: (i) Fast familiarity with the environment; (ii) slow implicit regularization; and (iii) a steady state of null drift. The variability in drift dynamics opens the possibility of inferring learning algorithms from observations of drift statistics.


Subject(s)
Neurons , Animals , Neurons/physiology , Machine Learning , Neural Networks, Computer , Learning , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Rats
4.
Nat Commun ; 15(1): 4100, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38773091

ABSTRACT

In most models of neuronal plasticity and memory, dopamine is thought to promote the long-term maintenance of Long-Term Potentiation (LTP) underlying memory processes, but not the initiation of plasticity or new information storage. Here, we used optogenetic manipulation of midbrain dopamine neurons in male DAT::Cre mice, and discovered that stimulating the Schaffer collaterals - the glutamatergic axons connecting CA3 and CA1 regions - of the dorsal hippocampus concomitantly with midbrain dopamine terminals within a 200 millisecond time-window triggers LTP at glutamatergic synapses. Moreover, we showed that the stimulation of this dopaminergic pathway facilitates contextual learning in awake behaving mice, while its inhibition hinders it. Thus, activation of midbrain dopamine can operate as a teaching signal that triggers NeoHebbian LTP and promotes supervised learning.


Subject(s)
Dopamine , Dopaminergic Neurons , Hippocampus , Learning , Long-Term Potentiation , Optogenetics , Ventral Tegmental Area , Animals , Long-Term Potentiation/physiology , Ventral Tegmental Area/physiology , Male , Dopamine/metabolism , Mice , Dopaminergic Neurons/physiology , Dopaminergic Neurons/metabolism , Hippocampus/physiology , Hippocampus/metabolism , Learning/physiology , Mice, Transgenic , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Synapses/physiology , Synapses/metabolism , Mice, Inbred C57BL , Memory/physiology
5.
Nat Commun ; 15(1): 3702, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38697969

ABSTRACT

Hippocampal place cells represent the position of a rodent within an environment. In addition, recent experiments show that the CA1 subfield of a passive observer also represents the position of a conspecific performing a spatial task. However, whether this representation is allocentric, egocentric or mixed is less clear. In this study we investigated the representation of others during free behavior and in a task where female mice learned to follow a conspecific for a reward. We found that most cells represent the position of others relative to self-position (social-vector cells) rather than to the environment, with a prevalence of purely egocentric coding modulated by context and mouse identity. Learning of a pursuit task improved the tuning of social-vector cells, but their number remained invariant. Collectively, our results suggest that the hippocampus flexibly codes the position of others in multiple coordinate systems, albeit favoring the self as a reference point.


Subject(s)
CA1 Region, Hippocampal , Animals , Female , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Mice , Mice, Inbred C57BL , Place Cells/physiology , Reward , Behavior, Animal/physiology
6.
Cell Rep ; 43(4): 114100, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38607921

ABSTRACT

Hippocampal pyramidal neuron activity underlies episodic memory and spatial navigation. Although extensively studied in rodents, extremely little is known about human hippocampal pyramidal neurons, even though the human hippocampus underwent strong evolutionary reorganization and shows lower theta rhythm frequencies. To test whether biophysical properties of human Cornu Amonis subfield 1 (CA1) pyramidal neurons can explain observed rhythms, we map the morpho-electric properties of individual CA1 pyramidal neurons in human, non-pathological hippocampal slices from neurosurgery. Human CA1 pyramidal neurons have much larger dendritic trees than mouse CA1 pyramidal neurons, have a large number of oblique dendrites, and resonate at 2.9 Hz, optimally tuned to human theta frequencies. Morphological and biophysical properties suggest cellular diversity along a multidimensional gradient rather than discrete clustering. Across the population, dendritic architecture and a large number of oblique dendrites consistently boost memory capacity in human CA1 pyramidal neurons by an order of magnitude compared to mouse CA1 pyramidal neurons.


Subject(s)
CA1 Region, Hippocampal , Dendrites , Pyramidal Cells , Humans , Pyramidal Cells/physiology , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Animals , Male , Mice , Dendrites/physiology , Female , Middle Aged , Aged , Theta Rhythm/physiology , Adult
7.
Ann N Y Acad Sci ; 1535(1): 62-75, 2024 May.
Article in English | MEDLINE | ID: mdl-38602714

ABSTRACT

Hippocampal pyramidal neuronal activity has been previously studied using conventional patch clamp in isolated cells and brain slices. We here introduce the loose patch clamping study of voltage-activated currents from in situ pyramidal neurons in murine cornus ammonis 1 hippocampal coronal slices. Depolarizing pulses of 15-ms duration elicited early transient inward, followed by transient and prolonged outward currents in the readily identifiable junctional region between the stratum pyramidalis (SP) and oriens (SO) containing pyramidal cell somas and initial segments. These resembled pyramidal cell currents previously recorded using conventional patch clamp. Shortening the depolarizing pulses to >1-2 ms continued to evoke transient currents; hyperpolarizing pulses to varying voltages evoked decays whose time constants could be shortened to <1 ms, clarifying the speed of clamping in this experimental system. The inward and outward currents had distinct pharmacological characteristics and voltage-dependent inactivation and recovery from inactivation. Comparative recordings from the SP, known to contain pyramidal cell somas, demonstrated similar current properties. Recordings from the SO and stratum radiatum demonstrated smaller inward and outward current magnitudes and reduced transient outward currents, consistent with previous conventional patch clamp results from their different interneuron types. The loose patch clamp method is thus useful for in situ studies of neurons in hippocampal brain slices.


Subject(s)
Patch-Clamp Techniques , Pyramidal Cells , Animals , Patch-Clamp Techniques/methods , Mice , Pyramidal Cells/physiology , Membrane Potentials/physiology , Hippocampus/physiology , Hippocampus/cytology , Neurons/physiology , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Mice, Inbred C57BL , Male
8.
Cell Rep ; 43(5): 114112, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38676925

ABSTRACT

Recent findings show that effective integration of novel information in the brain requires coordinated processes of homo- and heterosynaptic plasticity. In this work, we hypothesize that activity-dependent remodeling of the peri-synaptic extracellular matrix (ECM) contributes to these processes. We show that clusters of the peri-synaptic ECM, recognized by CS56 antibody, emerge in response to sensory stimuli, showing temporal and spatial coincidence with dendritic spine plasticity. Using CS56 co-immunoprecipitation of synaptosomal proteins, we identify several molecules involved in Ca2+ signaling, vesicle cycling, and AMPA-receptor exocytosis, thus suggesting a role in long-term potentiation (LTP). Finally, we show that, in the CA1 hippocampal region, the attenuation of CS56 glycoepitopes, through the depletion of versican as one of its main carriers, impairs LTP and object location memory in mice. These findings show that activity-dependent remodeling of the peri-synaptic ECM regulates the induction and consolidation of LTP, contributing to hippocampal-dependent memory.


Subject(s)
Extracellular Matrix , Long-Term Potentiation , Memory , Neuronal Plasticity , Animals , Extracellular Matrix/metabolism , Long-Term Potentiation/physiology , Mice , Neuronal Plasticity/physiology , Memory/physiology , Synapses/metabolism , Synapses/physiology , Mice, Inbred C57BL , Male , CA1 Region, Hippocampal/metabolism , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Hippocampus/metabolism , Hippocampus/physiology
9.
Math Biosci ; 372: 109192, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38640998

ABSTRACT

Computational models of brain regions are crucial for understanding neuronal network dynamics and the emergence of cognitive functions. However, current supercomputing limitations hinder the implementation of large networks with millions of morphological and biophysical accurate neurons. Consequently, research has focused on simplified spiking neuron models, ranging from the computationally fast Leaky Integrate and Fire (LIF) linear models to more sophisticated non-linear implementations like Adaptive Exponential (AdEX) and Izhikevic models, through Generalized Leaky Integrate and Fire (GLIF) approaches. However, in almost all cases, these models are tuned (and can be validated) only under constant current injections and they may not, in general, also reproduce experimental findings under variable currents. This study introduces an Adaptive GLIF (A-GLIF) approach that addresses this limitation by incorporating a new set of update rules. The extended A-GLIF model successfully reproduces both constant and variable current inputs, and it was validated against the results obtained using a biophysical accurate model neuron. This enhancement provides researchers with a tool to optimize spiking neuron models using classic experimental traces under constant current injections, reliably predicting responses to synaptic inputs, which can be confidently used for large-scale network implementations.


Subject(s)
CA1 Region, Hippocampal , Interneurons , Models, Neurological , Pyramidal Cells , Pyramidal Cells/physiology , Interneurons/physiology , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Animals , Action Potentials/physiology , Synapses/physiology , Computer Simulation
10.
Cell Rep ; 43(4): 114115, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38607918

ABSTRACT

In the CA1 hippocampus, vasoactive intestinal polypeptide-expressing interneurons (VIP-INs) play a prominent role in disinhibitory circuit motifs. However, the specific behavioral conditions that lead to circuit disinhibition remain uncertain. To investigate the behavioral relevance of VIP-IN activity, we employed wireless technologies allowing us to monitor and manipulate their function in freely behaving mice. Our findings reveal that, during spatial exploration in new environments, VIP-INs in the CA1 hippocampal region become highly active, facilitating the rapid encoding of novel spatial information. Remarkably, both VIP-INs and pyramidal neurons (PNs) exhibit increased activity when encountering novel changes in the environment, including context- and object-related alterations. Concurrently, somatostatin- and parvalbumin-expressing inhibitory populations show an inverse relationship with VIP-IN and PN activity, revealing circuit disinhibition that occurs on a timescale of seconds. Thus, VIP-IN-mediated disinhibition may constitute a crucial element in the rapid encoding of novelty and the acquisition of recognition memory.


Subject(s)
CA1 Region, Hippocampal , Interneurons , Recognition, Psychology , Vasoactive Intestinal Peptide , Animals , Interneurons/metabolism , Interneurons/physiology , Vasoactive Intestinal Peptide/metabolism , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/metabolism , CA1 Region, Hippocampal/cytology , Mice , Male , Recognition, Psychology/physiology , Pyramidal Cells/metabolism , Pyramidal Cells/physiology , Mice, Inbred C57BL , Memory/physiology , Parvalbumins/metabolism , Exploratory Behavior/physiology , Somatostatin/metabolism
11.
J Comput Neurosci ; 52(2): 125-131, 2024 May.
Article in English | MEDLINE | ID: mdl-38470534

ABSTRACT

Long-term potentiation (LTP) is a synaptic mechanism involved in learning and memory. Experiments have shown that dendritic sodium spikes (Na-dSpikes) are required for LTP in the distal apical dendrites of CA1 pyramidal cells. On the other hand, LTP in perisomatic dendrites can be induced by synaptic input patterns that can be both subthreshold and suprathreshold for Na-dSpikes. It is unclear whether these results can be explained by one unifying plasticity mechanism. Here, we show in biophysically and morphologically realistic compartmental models of the CA1 pyramidal cell that these forms of LTP can be fully accounted for by a simple plasticity rule. We call it the voltage-based Event-Timing-Dependent Plasticity (ETDP) rule. The presynaptic event is the presynaptic spike or release of glutamate. The postsynaptic event is the local depolarization that exceeds a certain plasticity threshold. Our model reproduced the experimentally observed LTP in a variety of protocols, including local pharmacological inhibition of dendritic spikes by tetrodotoxin (TTX). In summary, we have provided a validation of the voltage-based ETDP, suggesting that this simple plasticity rule can be used to model even complex spatiotemporal patterns of long-term synaptic plasticity in neuronal dendrites.


Subject(s)
Action Potentials , CA1 Region, Hippocampal , Dendrites , Long-Term Potentiation , Models, Neurological , Pyramidal Cells , Dendrites/physiology , Long-Term Potentiation/physiology , Pyramidal Cells/physiology , Animals , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Action Potentials/physiology , Neuronal Plasticity/physiology , Tetrodotoxin/pharmacology , Computer Simulation
12.
Math Biosci ; 371: 109179, 2024 May.
Article in English | MEDLINE | ID: mdl-38521453

ABSTRACT

Efficient and accurate large-scale networks are a fundamental tool in modeling brain areas, to advance our understanding of neuronal dynamics. However, their implementation faces two key issues: computational efficiency and heterogeneity. Computational efficiency is achieved using simplified neurons, whereas there are no practical solutions available to solve the problem of reproducing in a large-scale network the experimentally observed heterogeneity of the intrinsic properties of neurons. This is important, because the use of identical nodes in a network can generate artifacts which can hinder an adequate representation of the properties of a real network. To this aim, we introduce a mathematical procedure to generate an arbitrary large number of copies of simplified hippocampal CA1 pyramidal neurons and interneurons models, which exhibit the full range of firing dynamics observed in these cells - including adapting, non-adapting and bursting. For this purpose, we rely on a recently published adaptive generalized leaky integrate-and-fire (A-GLIF) modeling approach, leveraging on its ability to reproduce the rich set of electrophysiological behaviors of these types of neurons under a variety of different stimulation currents. The generation procedure is based on a perturbation of model's parameters related to the initial data, firing block, and internal dynamics, and suitably validated against experimental data to ensure that the firing dynamics of any given cell copy remains within the experimental range. A classification procedure confirmed that the firing behavior of most of the pyramidal/interneuron copies was consistent with the experimental data. This approach allows to obtain heterogeneous copies with mathematically controlled firing properties. A full set of heterogeneous neurons composing the CA1 region of a rat hippocampus (approximately 1.2 million neurons), are provided in a database freely available in the live paper section of the EBRAINS platform. By adapting the underlying A-GLIF framework, it will be possible to extend the numerical approach presented here to create, in a mathematically controlled manner, an arbitrarily large number of non-identical copies of cell populations with firing properties related to other brain areas.


Subject(s)
CA1 Region, Hippocampal , Interneurons , Models, Neurological , Pyramidal Cells , Interneurons/physiology , Pyramidal Cells/physiology , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Animals , Rats , Action Potentials/physiology , Nerve Net/physiology , Computer Simulation
13.
Science ; 383(6690): 1478-1483, 2024 Mar 29.
Article in English | MEDLINE | ID: mdl-38547293

ABSTRACT

Experiences need to be tagged during learning for further consolidation. However, neurophysiological mechanisms that select experiences for lasting memory are not known. By combining large-scale neural recordings in mice with dimensionality reduction techniques, we observed that successive maze traversals were tracked by continuously drifting populations of neurons, providing neuronal signatures of both places visited and events encountered. When the brain state changed during reward consumption, sharp wave ripples (SPW-Rs) occurred on some trials, and their specific spike content decoded the trial blocks that surrounded them. During postexperience sleep, SPW-Rs continued to replay those trial blocks that were reactivated most frequently during waking SPW-Rs. Replay content of awake SPW-Rs may thus provide a neurophysiological tagging mechanism to select aspects of experience that are preserved and consolidated for future use.


Subject(s)
Brain Waves , CA1 Region, Hippocampal , Memory Consolidation , Neurons , Animals , Mice , Neurons/physiology , Memory Consolidation/physiology , Maze Learning , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology
14.
Cell Rep ; 42(8): 112898, 2023 08 29.
Article in English | MEDLINE | ID: mdl-37516958

ABSTRACT

The mechanism of long-term depression (LTD), a cellular substrate for learning, memory, and behavioral flexibility, is extensively studied in Schaffer collateral (SC) synapses, with inhibition of autophagy identified as a key factor. SC inputs terminate at basal and proximal apical dendrites, whereas distal apical dendrites receive inputs from the temporoammonic pathway (TAP). Here, we demonstrate that TAP and SC synapses have a shared LTD mechanism reliant on NMDA receptors, caspase-3, and autophagy inhibition. Despite this shared LTD mechanism, proximal apical dendrites contain more autophagosomes than distal apical dendrites. Additionally, unlike SC LTD, which diminishes with age, TAP LTD persists into adulthood. Our previous study shows that the high autophagy in adulthood disallows SC LTD induction. The reduction of autophagosomes from proximal to distal dendrites, combined with distinct LTD inducibility at SC and TAP synapses, suggests a model where the differential distribution of autophagosomes in dendrites gates LTD inducibility at specific circuits.


Subject(s)
Autophagosomes , Dendrites , Hippocampus , Long-Term Synaptic Depression , Synapses , Dendrites/physiology , Synapses/physiology , Autophagosomes/physiology , Animals , Mice , Receptors, N-Methyl-D-Aspartate/metabolism , Caspase 3/metabolism , Autophagy , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Mice, Inbred C57BL , Hippocampus/cytology , Hippocampus/physiology , Nerve Tissue Proteins/metabolism
15.
Nature ; 611(7936): 554-562, 2022 11.
Article in English | MEDLINE | ID: mdl-36323779

ABSTRACT

Learning-related changes in brain activity are thought to underlie adaptive behaviours1,2. For instance, the learning of a reward site by rodents requires the development of an over-representation of that location in the hippocampus3-6. How this learning-related change occurs remains unknown. Here we recorded hippocampal CA1 population activity as mice learned a reward location on a linear treadmill. Physiological and pharmacological evidence suggests that the adaptive over-representation required behavioural timescale synaptic plasticity (BTSP)7. BTSP is known to be driven by dendritic voltage signals that we proposed were initiated by input from entorhinal cortex layer 3 (EC3). Accordingly, the CA1 over-representation was largely removed by optogenetic inhibition of EC3 activity. Recordings from EC3 neurons revealed an activity pattern that could provide an instructive signal directing BTSP to generate the over-representation. Consistent with this function, our observations show that exposure to a second environment possessing a prominent reward-predictive cue resulted in both EC3 activity and CA1 place field density that were more elevated at the cue than at the reward. These data indicate that learning-related changes in the hippocampus are produced by synaptic plasticity directed by an instructive signal from the EC3 that seems to be specifically adapted to the behaviourally relevant features of the environment.


Subject(s)
CA1 Region, Hippocampal , Entorhinal Cortex , Learning , Neurons , Animals , Mice , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Entorhinal Cortex/physiology , Learning/physiology , Neurons/physiology , Reward , Dendrites/physiology , Neuronal Plasticity , Optogenetics , Cues , Models, Neurological
16.
Mol Neurobiol ; 59(11): 6918-6933, 2022 Nov.
Article in English | MEDLINE | ID: mdl-36053438

ABSTRACT

Epilepsy is a chronic brain disease that makes serious cognitive and motor retardation. Ion channels affect the occurrence of epilepsy in various ways, but the mechanisms have not yet been fully elucidated. Transient receptor potential melastain2 (TRPM2) ion channel is a non-selective cationic channel that can permeate Ca2+ and critical for epilepsy. Here, TRPM2 gene knockout mice were used to generate a chronic kindling epilepsy model by PTZ administration in mice. We found that TRPM2 knockout mice were more susceptible to epilepsy than WT mice. Furthermore, the neuronal excitability in the hippocampal CA1 region of TRPM2 knockout mice was significantly increased. Compared with WT group, there were no significant differences in the input resistance and after hyperpolarization of CA1 neurons in TRPM2 knockout mice. Firing adaptation rate of hippocampal CA1 pyramidal neurons of TRPM2 knockout mice was lower than that of WT mice. We also found that activation of Kv7 channel by retigabine reduced the firing frequency of action potential in the hippocampal pyramidal neurons of TRPM2 knockout mice. However, inhibiting Kv7 channel increased the firing frequency of action potential in hippocampal pyramidal neurons of WT mice. The data suggest that activation of Kv7 channel can effectively reduce epileptic seizures in TRPM2 knockout mice. We conclude that genetic knockout of TRPM2 in hippocampal CA1 pyramidal neurons may increase neuronal excitability by inhibiting Kv7 channel, affecting the susceptibility to epilepsy. These findings may provide a potential therapeutic target for epilepsy.


Subject(s)
CA1 Region, Hippocampal , Epilepsy , Pyramidal Cells , TRPM Cation Channels , Action Potentials , Animals , CA1 Region, Hippocampal/cytology , Epilepsy/genetics , Gene Knockout Techniques , Mice , Mice, Knockout , Pyramidal Cells/physiology , TRPM Cation Channels/genetics
17.
Nature ; 609(7928): 772-778, 2022 09.
Article in English | MEDLINE | ID: mdl-36045289

ABSTRACT

Astrocytic calcium dynamics has been implicated in the encoding of sensory information1-5, and modulation of calcium in astrocytes has been shown to affect behaviour6-10. However, longitudinal investigation of the real-time calcium activity of astrocytes in the hippocampus of awake mice is lacking. Here we used two-photon microscopy to chronically image CA1 astrocytes as mice ran in familiar or new virtual environments to obtain water rewards. We found that astrocytes exhibit persistent ramping activity towards the reward location in a familiar environment, but not in a new one. Shifting the reward location within a familiar environment also resulted in diminished ramping. After additional training, as the mice became familiar with the new context or new reward location, the ramping was re-established. Using linear decoders, we could predict the location of the mouse in a familiar environment from astrocyte activity alone. We could not do the same in a new environment, suggesting that the spatial modulation of astrocytic activity is experience dependent. Our results indicate that astrocytes can encode the expected reward location in spatial contexts, thereby extending their known computational abilities and their role in cognitive functions.


Subject(s)
Astrocytes , CA1 Region, Hippocampal , Reward , Animals , Astrocytes/physiology , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Calcium/metabolism , Drinking , Mice , Water
18.
Nature ; 609(7925): 119-127, 2022 09.
Article in English | MEDLINE | ID: mdl-36002570

ABSTRACT

Throughout their daily lives, animals and humans often switch between different behaviours. However, neuroscience research typically studies the brain while the animal is performing one behavioural task at a time, and little is known about how brain circuits represent switches between different behaviours. Here we tested this question using an ethological setting: two bats flew together in a long 135 m tunnel, and switched between navigation when flying alone (solo) and collision avoidance as they flew past each other (cross-over). Bats increased their echolocation click rate before each cross-over, indicating attention to the other bat1-9. Hippocampal CA1 neurons represented the bat's own position when flying alone (place coding10-14). Notably, during cross-overs, neurons switched rapidly to jointly represent the interbat distance by self-position. This neuronal switch was very fast-as fast as 100 ms-which could be revealed owing to the very rapid natural behavioural switch. The neuronal switch correlated with the attention signal, as indexed by echolocation. Interestingly, the different place fields of the same neuron often exhibited very different tuning to interbat distance, creating a complex non-separable coding of position by distance. Theoretical analysis showed that this complex representation yields more efficient coding. Overall, our results suggest that during dynamic natural behaviour, hippocampal neurons can rapidly switch their core computation to represent the relevant behavioural variables, supporting behavioural flexibility.


Subject(s)
Chiroptera , Echolocation , Flight, Animal , Hippocampus , Animals , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Chiroptera/physiology , Echolocation/physiology , Flight, Animal/physiology , Hippocampus/cytology , Hippocampus/physiology , Neurons/physiology , Orientation, Spatial , Spatial Navigation , Spatial Processing
19.
Nature ; 609(7926): 327-334, 2022 09.
Article in English | MEDLINE | ID: mdl-36002569

ABSTRACT

In the hippocampus, spatial maps are formed by place cells while contextual memories are thought to be encoded as engrams1-6. Engrams are typically identified by expression of the immediate early gene Fos, but little is known about the neural activity patterns that drive, and are shaped by, Fos expression in behaving animals7-10. Thus, it is unclear whether Fos-expressing hippocampal neurons also encode spatial maps and whether Fos expression correlates with and affects specific features of the place code11. Here we measured the activity of CA1 neurons with calcium imaging while monitoring Fos induction in mice performing a hippocampus-dependent spatial learning task in virtual reality. We find that neurons with high Fos induction form ensembles of cells with highly correlated activity, exhibit reliable place fields that evenly tile the environment and have more stable tuning across days than nearby non-Fos-induced cells. Comparing neighbouring cells with and without Fos function using a sparse genetic loss-of-function approach, we find that neurons with disrupted Fos function have less reliable activity, decreased spatial selectivity and lower across-day stability. Our results demonstrate that Fos-induced cells contribute to hippocampal place codes by encoding accurate, stable and spatially uniform maps and that Fos itself has a causal role in shaping these place codes. Fos ensembles may therefore link two key aspects of hippocampal function: engrams for contextual memories and place codes that underlie cognitive maps.


Subject(s)
Hippocampus , Proto-Oncogene Proteins c-fos , Animals , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Calcium/metabolism , Hippocampus/cytology , Hippocampus/physiology , Mice , Neurons/physiology , Place Cells/physiology , Proto-Oncogene Proteins c-fos/metabolism
20.
Nature ; 607(7920): 741-746, 2022 07.
Article in English | MEDLINE | ID: mdl-35794477

ABSTRACT

The hippocampal cognitive map supports navigation towards, or away from, salient locations in familiar environments1. Although much is known about how the hippocampus encodes location in world-centred coordinates, how it supports flexible navigation is less well understood. We recorded CA1 place cells while rats navigated to a goal on the honeycomb maze2. The maze tests navigation via direct and indirect paths to the goal and allows the directionality of place cells to be assessed at each choice point. Place fields showed strong directional polarization characterized by vector fields that converged to sinks distributed throughout the environment. The distribution of these 'convergence sinks' (ConSinks) was centred near the goal location and the population vector field converged on the goal, providing a strong navigational signal. Changing the goal location led to movement of ConSinks and vector fields towards the new goal. The honeycomb maze allows independent assessment of spatial representation and spatial action in place cell activity and shows how the latter relates to the former. The results suggest that the hippocampus creates a vector-based model to support flexible navigation, allowing animals to select optimal paths to destinations from any location in the environment.


Subject(s)
CA1 Region, Hippocampal , Place Cells , Spatial Navigation , Animals , CA1 Region, Hippocampal/cytology , CA1 Region, Hippocampal/physiology , Goals , Maze Learning , Place Cells/physiology , Rats , Spatial Navigation/physiology
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