Your browser doesn't support javascript.
loading
: 20 | 50 | 100
1 - 20 de 1.038
1.
PLoS One ; 19(5): e0298867, 2024.
Article En | MEDLINE | ID: mdl-38728266

U.S. service members maintain constant situational awareness (SA) due to training and experience operating in dynamic and complex environments. Work examining how military experience impacts SA during visual search of a complex naturalistic environment, is limited. Here, we compare Active Duty service members and Civilians' physiological behavior during a navigational visual search task in an open-world virtual environment (VE) while cognitive load was manipulated. We measured eye-tracking and electroencephalogram (EEG) outcomes from Active Duty (N = 21) and Civilians (N = 15) while they navigated a desktop VE at a self-regulated pace. Participants searched and counted targets (N = 15) presented among distractors, while cognitive load was manipulated with an auditory Math Task. Results showed Active Duty participants reported significantly greater/closer to the correct number of targets compared to Civilians. Overall, Active Duty participants scanned the VE with faster peak saccade velocities and greater average saccade magnitudes compared to Civilians. Convolutional Neural Network (CNN) response (EEG P-300) was significantly weighted more to initial fixations for the Active Duty group, showing reduced attentional resources on object refixations compared to Civilians. There were no group differences in fixation outcomes or overall CNN response when comparing targets versus distractor objects. When cognitive load was manipulated, only Civilians significantly decreased their average dwell time on each object and the Active Duty group had significantly fewer numbers of correct answers on the Math Task. Overall, the Active Duty group explored the VE with increased scanning speed and distance and reduced cognitive re-processing on objects, employing a different, perhaps expert, visual search strategy indicative of increased SA. The Active Duty group maintained SA in the main visual search task and did not appear to shift focus to the secondary Math Task. Future work could compare how a stress inducing environment impacts these groups' physiological or cognitive markers and performance for these groups.


Awareness , Electroencephalography , Military Personnel , Humans , Military Personnel/psychology , Male , Female , Adult , Awareness/physiology , Young Adult , Cognition/physiology , Virtual Reality , Attention/physiology , Spatial Navigation/physiology , Saccades/physiology
2.
PLoS One ; 19(5): e0298116, 2024.
Article En | MEDLINE | ID: mdl-38722850

Spatial navigation is a multi-faceted behaviour drawing on many different aspects of cognition. Visuospatial abilities, such as mental rotation and visuospatial working memory, in particular, may be key factors. A range of tests have been developed to assess visuospatial processing and memory, but how such tests relate to navigation ability remains unclear. This understanding is important to advance tests of navigation for disease monitoring in various disorders (e.g., Alzheimer's disease) where spatial impairment is an early symptom. Here, we report the use of an established mobile gaming app, Sea Hero Quest (SHQ), as a measure of navigation ability in a sample of young, predominantly female university students (N = 78; 20; female = 74.3%; mean age = 20.33 years). We used three separate tests of navigation embedded in SHQ: wayfinding, path integration and spatial memory in a radial arm maze. In the same participants, we also collected measures of mental rotation (Mental Rotation Test), visuospatial processing (Design Organization Test) and visuospatial working memory (Digital Corsi). We found few strong correlations across our measures. Being good at wayfinding in a virtual navigation test does not mean an individual will also be good at path integration, have a superior memory in a radial arm maze, or rate themself as having a strong sense of direction. However, we observed that participants who were good in the wayfinding task of SHQ tended to perform well on the three visuospatial tasks examined here, and to also use a landmark strategy in the radial maze task. These findings help clarify the associations between different abilities involved in spatial navigation.


Spatial Navigation , Humans , Female , Spatial Navigation/physiology , Male , Young Adult , Adult , Memory, Short-Term/physiology , Spatial Memory/physiology , Maze Learning/physiology , Space Perception/physiology , Adolescent , Mobile Applications
3.
Nat Commun ; 15(1): 4053, 2024 May 14.
Article En | MEDLINE | ID: mdl-38744848

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.


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
4.
J Comput Neurosci ; 52(2): 133-144, 2024 May.
Article En | MEDLINE | ID: mdl-38581476

Spatial navigation through novel spaces and to known goal locations recruits multiple integrated structures in the mammalian brain. Within this extended network, the hippocampus enables formation and retrieval of cognitive spatial maps and contributes to decision making at choice points. Exploration and navigation to known goal locations produce synchronous activity of hippocampal neurons resulting in rhythmic oscillation events in local networks. Power of specific oscillatory frequencies and numbers of these events recorded in local field potentials correlate with distinct cognitive aspects of spatial navigation. Typically, oscillatory power in brain circuits is analyzed with Fourier transforms or short-time Fourier methods, which involve assumptions about the signal that are likely not true and fail to succinctly capture potentially informative features. To avoid such assumptions, we applied a method that combines manifold discovery techniques with dynamical systems theory, namely diffusion maps and Takens' time-delay embedding theory, that avoids limitations seen in traditional methods. This method, called diffusion mapped delay coordinates (DMDC), when applied to hippocampal signals recorded from juvenile rats freely navigating a Y-maze, replicates some outcomes seen with standard approaches and identifies age differences in dynamic states that traditional analyses are unable to detect. Thus, DMDC may serve as a suitable complement to more traditional analyses of LFPs recorded from behaving subjects that may enhance information yield.


Hippocampus , Animals , Hippocampus/physiology , Male , Rats , Rats, Long-Evans , Neurons/physiology , Spatial Navigation/physiology , Maze Learning/physiology , Models, Neurological , Action Potentials/physiology
5.
Nat Commun ; 15(1): 3221, 2024 Apr 15.
Article En | MEDLINE | ID: mdl-38622129

The hippocampus creates a cognitive map of the external environment by encoding spatial and self-motion-related information. However, it is unclear whether hippocampal neurons could also incorporate internal cognitive states reflecting an animal's exploratory intention, which is not driven by rewards or unexpected sensory stimuli. In this study, a subgroup of CA1 neurons was found to encode both spatial information and animals' investigatory intentions in male mice. These neurons became active before the initiation of exploration behaviors at specific locations and were nearly silent when the same fields were traversed without exploration. Interestingly, this neuronal activity could not be explained by object features, rewards, or mismatches in environmental cues. Inhibition of the lateral entorhinal cortex decreased the activity of these cells during exploration. Our findings demonstrate that hippocampal neurons may bridge external and internal signals, indicating a potential connection between spatial representation and intentional states in the construction of internal navigation systems.


Intention , Spatial Navigation , Male , Mice , Animals , Space Perception/physiology , Hippocampus/physiology , Entorhinal Cortex , Cues , Spatial Navigation/physiology
6.
Nat Commun ; 15(1): 3476, 2024 Apr 24.
Article En | MEDLINE | ID: mdl-38658530

Cognitive maps in the hippocampal-entorhinal system are central for the representation of both spatial and non-spatial relationships. Although this system, especially in humans, heavily relies on vision, the role of visual experience in shaping the development of cognitive maps remains largely unknown. Here, we test sighted and early blind individuals in both imagined navigation in fMRI and real-world navigation. During imagined navigation, the Human Navigation Network, constituted by frontal, medial temporal, and parietal cortices, is reliably activated in both groups, showing resilience to visual deprivation. However, neural geometry analyses highlight crucial differences between groups. A 60° rotational symmetry, characteristic of a hexagonal grid-like coding, emerges in the entorhinal cortex of sighted but not blind people, who instead show a 90° (4-fold) symmetry, indicative of a square grid. Moreover, higher parietal cortex activity during navigation in blind people correlates with the magnitude of 4-fold symmetry. In sum, early blindness can alter the geometry of entorhinal cognitive maps, possibly as a consequence of higher reliance on parietal egocentric coding during navigation.


Blindness , Brain Mapping , Entorhinal Cortex , Magnetic Resonance Imaging , Humans , Blindness/physiopathology , Male , Adult , Female , Entorhinal Cortex/diagnostic imaging , Entorhinal Cortex/physiopathology , Entorhinal Cortex/physiology , Brain Mapping/methods , Parietal Lobe/diagnostic imaging , Parietal Lobe/physiopathology , Middle Aged , Spatial Navigation/physiology , Young Adult , Visually Impaired Persons , Cognition/physiology , Imagination/physiology
7.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi ; 41(2): 335-341, 2024 Apr 25.
Article Zh | MEDLINE | ID: mdl-38686415

Place cell with location tuning characteristics play an important role in brain spatial cognition and navigation, but there is relatively little research on place cell screening and its influencing factors. Taking pigeons as model animals, the screening process of pigeon place cell was given by using the spike signal in pigeon hippocampus under free activity. The effects of grid number and filter kernel size on the place field of place cells during the screening process were analyzed. The results from the real and simulation data showed that the proposed place cell screening method presented in this study could effectively screen out place cell, and the research found that the size of place field was basically inversely proportional to the number of grids divided, and was basically proportional to the size of Gaussian filter kernel in the overall trend. This result will not only help to determine the appropriate parameters in the place cell screening process, but also promote the research on the neural mechanism of spatial cognition and navigation of birds such as pigeons.


Columbidae , Hippocampus , Columbidae/physiology , Animals , Hippocampus/cytology , Hippocampus/physiology , Place Cells/physiology , Spatial Navigation/physiology , Cognition , Action Potentials
8.
Behav Processes ; 217: 105026, 2024 Apr.
Article En | MEDLINE | ID: mdl-38582301

Species of crab have been shown to spatially track and navigate to consequential locations through different processes, such as path integration and landmark orienting. Few investigations examine their ability to wayfind in complex environments, like mazes, with multiple intersections and how they may utilize specific features to benefit this process. Spatial learning potentially would lend a fitness advantage to animals living in complicated habitats, and ghost crab (Ocypode quadrata) is a semiterrestrial species that typically occupies extensive beach environments, which present many navigational challenges. Despite their potential, there are currently no studies that investigate forms of spatial cognition in these animals. To better diversify our knowledge of this trait, the current research exposed ghost crab to a maze with seven intersections. Animals were given multiple trials to learn the location of a reward destination to a specific criterion proficiency. In one condition several landmarks were distributed throughout the maze, and in another the environment was completely empty. Results showed that ghost crab in the landmark present group were able to learn the maze faster, they required significantly fewer trials to reach the learning criterion than those in the landmark absent group. However, only approximately half of the total sample met the learning criterion, indicating the maze was rather difficult. These findings are interpreted through theories of route learning that suggest animals may navigate by establishing landmark-turn associations. Such processes have implications for the cognitive ability of ghost crab, and spatial learning in this species may support the notion of convergent evolution for this trait.


Brachyura , Maze Learning , Spatial Navigation , Animals , Brachyura/physiology , Maze Learning/physiology , Spatial Navigation/physiology , Male , Space Perception/physiology , Cues , Spatial Learning/physiology
9.
Proc Natl Acad Sci U S A ; 121(12): e2315758121, 2024 Mar 19.
Article En | MEDLINE | ID: mdl-38489383

Grid cells in the entorhinal cortex (EC) encode an individual's location in space, integrating both environmental and multisensory bodily cues. Notably, body-derived signals are also primary signals for the sense of self. While studies have demonstrated that continuous application of visuo-tactile bodily stimuli can induce perceptual shifts in self-location, it remains unexplored whether these illusory changes suffice to trigger grid cell-like representation (GCLR) within the EC, and how this compares to GCLR during conventional virtual navigation. To address this, we systematically induced illusory drifts in self-location toward controlled directions using visuo-tactile bodily stimulation, while maintaining the subjects' visual viewpoint fixed (absent conventional virtual navigation). Subsequently, we evaluated the corresponding GCLR in the EC through functional MRI analysis. Our results reveal that illusory changes in perceived self-location (independent of changes in environmental navigation cues) can indeed evoke entorhinal GCLR, correlating in strength with the magnitude of perceived self-location, and characterized by similar grid orientation as during conventional virtual navigation in the same virtual room. These data demonstrate that the same grid-like representation is recruited when navigating based on environmental, mainly visual cues, or when experiencing illusory forward drifts in self-location, driven by perceptual multisensory bodily cues.


Grid Cells , Illusions , Spatial Navigation , Humans , Entorhinal Cortex/physiology , Grid Cells/physiology , Consciousness , Illusions/physiology , Touch , Spatial Navigation/physiology
10.
Elife ; 122024 Feb 16.
Article En | MEDLINE | ID: mdl-38363198

A behavioral strategy crucial to survival is directed navigation to a goal, such as a food or home location. One potential neural substrate for supporting goal-directed navigation is the parahippocampus, which contains neurons that represent an animal's position, orientation, and movement through the world, and that change their firing activity to encode behaviorally relevant variables such as reward. However, little prior work on the parahippocampus has considered how neurons encode variables during goal-directed navigation in environments that dynamically change. Here, we recorded single units from rat parahippocampal cortex while subjects performed a goal-directed task. The maze dynamically changed goal-locations via a visual cue on a trial-to-trial basis, requiring subjects to use cue-location associations to receive reward. We observed a mismatch-like signal, with elevated neural activity on incorrect trials, leading to rate-remapping. The strength of this remapping correlated with task performance. Recordings during open-field foraging allowed us to functionally define navigational coding for a subset of the neurons recorded in the maze. This approach revealed that head-direction coding units remapped more than other functional-defined units. Taken together, this work thus raises the possibility that during goal-directed navigation, parahippocampal neurons encode error information reflective of an animal's behavioral performance.


Hippocampus , Spatial Navigation , Animals , Rats , Cerebral Cortex , Goals , Hippocampus/physiology , Neurons/physiology , Spatial Navigation/physiology
11.
Psychol Bull ; 150(4): 464-486, 2024 Apr.
Article En | MEDLINE | ID: mdl-38330348

Spatial skills are key predictors of achievement in science, technology, engineering, and mathematics disciplines, despite being acquired through everyday life and not formally taught in schools. Spatial skills include a diverse group of abilities broadly related to reasoning about properties of space such as distance and direction. Recently, more research has investigated the link between spatial skills and spatial anxiety, defined as a fear or apprehension felt when engaged in spatial thinking. There has yet to be a meta-analytic review summarizing these findings. Thus, the goal of this preregistered meta-analytic review is to provide an estimate of the size of the relation between spatial anxiety and spatial skills while considering several moderators (grade/age group, sex, spatial skills measure/subtype, spatial anxiety measure/subtype, geographical region of sample, publication type/year, and risk of bias). Analyzing 283 effect sizes accumulated from research conducted between 1994 and 2020, we found a small, negative, and statistically significant (r = -.14) correlation between spatial anxiety and spatial skills. Results showed that effect sizes including mental manipulation anxiety, scalar comparison anxiety, and navigation skill were often significantly stronger than effect sizes including measures of other subtypes. The magnitude of the relation was not significantly different in children and adults, though effect sizes tended to be weaker for younger samples (r = -.08). Our results are consistent with previous findings of a significant relation between spatial anxiety and skills, and this work bridges a gap in the existing research, lending support to future research efforts investigating spatial cognition. (PsycInfo Database Record (c) 2024 APA, all rights reserved).


Anxiety , Spatial Navigation , Humans , Anxiety/psychology , Spatial Navigation/physiology , Child , Space Perception/physiology , Adult , Adolescent , Female , Male , Young Adult
12.
Nature ; 626(8000): 819-826, 2024 Feb.
Article En | MEDLINE | ID: mdl-38326621

To navigate, we must continuously estimate the direction we are headed in, and we must correct deviations from our goal1. Direction estimation is accomplished by ring attractor networks in the head direction system2,3. However, we do not fully understand how the sense of direction is used to guide action. Drosophila connectome analyses4,5 reveal three cell populations (PFL3R, PFL3L and PFL2) that connect the head direction system to the locomotor system. Here we use imaging, electrophysiology and chemogenetic stimulation during navigation to show how these populations function. Each population receives a shifted copy of the head direction vector, such that their three reference frames are shifted approximately 120° relative to each other. Each cell type then compares its own head direction vector with a common goal vector; specifically, it evaluates the congruence of these vectors via a nonlinear transformation. The output of all three cell populations is then combined to generate locomotor commands. PFL3R cells are recruited when the fly is oriented to the left of its goal, and their activity drives rightward turning; the reverse is true for PFL3L. Meanwhile, PFL2 cells increase steering speed, and are recruited when the fly is oriented far from its goal. PFL2 cells adaptively increase the strength of steering as directional error increases, effectively managing the tradeoff between speed and accuracy. Together, our results show how a map of space in the brain can be combined with an internal goal to generate action commands, via a transformation from world-centric coordinates to body-centric coordinates.


Brain , Drosophila melanogaster , Goals , Head , Neurons , Orientation, Spatial , Spatial Navigation , Animals , Brain/cytology , Brain/physiology , Connectome , Drosophila melanogaster/cytology , Drosophila melanogaster/physiology , Head/physiology , Locomotion/physiology , Neurons/classification , Neurons/physiology , Orientation, Spatial/physiology , Spatial Navigation/physiology , Time Factors
13.
Sheng Wu Yi Xue Gong Cheng Xue Za Zhi ; 41(1): 80-89, 2024 Feb 25.
Article Zh | MEDLINE | ID: mdl-38403607

Physiological studies have revealed that rats perform spatial localization relying on grid cells and place cells in the entorhinal-hippocampal CA3 structure. The dynamic connection between the entorhinal-hippocampal structure and the prefrontal cortex is crucial for navigation. Based on these findings, this paper proposes a spatial navigation method based on the entorhinal-hippocampal-prefrontal information transmission circuit of the rat's brain, with the aim of endowing the mobile robot with strong spatial navigation capability. Using the hippocampal CA3-prefrontal spatial navigation model as a foundation, this paper constructed a dynamic self-organizing model with the hippocampal CA1 place cells as the basic unit to optimize the navigation path. The path information was then fed back to the impulse neural network via hippocampal CA3 place cells and prefrontal cortex action neurons, improving the convergence speed of the model and helping to establish long-term memory of navigation habits. To verify the validity of the method, two-dimensional simulation experiments and three-dimensional simulation robot experiments were designed in this paper. The experimental results showed that the method presented in this paper not only surpassed other algorithms in terms of navigation efficiency and convergence speed, but also exhibited good adaptability to dynamic navigation tasks. Furthermore, our method can be effectively applied to mobile robots.


Entorhinal Cortex , Spatial Navigation , Rats , Animals , Entorhinal Cortex/physiology , Spatial Navigation/physiology , Hippocampus , Neurons/physiology , Prefrontal Cortex , Models, Neurological
14.
Nature ; 626(8000): 808-818, 2024 Feb.
Article En | MEDLINE | ID: mdl-38326612

Neuronal signals that are relevant for spatial navigation have been described in many species1-10. However, a circuit-level understanding of how such signals interact to guide navigational behaviour is lacking. Here we characterize a neuronal circuit in the Drosophila central complex that compares internally generated estimates of the heading and goal angles of the fly-both of which are encoded in world-centred (allocentric) coordinates-to generate a body-centred (egocentric) steering signal. Past work has suggested that the activity of EPG neurons represents the fly's moment-to-moment angular orientation, or heading angle, during navigation2,11. An animal's moment-to-moment heading angle, however, is not always aligned with its goal angle-that is, the allocentric direction in which it wishes to progress forward. We describe FC2 cells12, a second set of neurons in the Drosophila brain with activity that correlates with the fly's goal angle. Focal optogenetic activation of FC2 neurons induces flies to orient along experimenter-defined directions as they walk forward. EPG and FC2 neurons connect monosynaptically to a third neuronal class, PFL3 cells12,13. We found that individual PFL3 cells show conjunctive, spike-rate tuning to both the heading angle and the goal angle during goal-directed navigation. Informed by the anatomy and physiology of these three cell classes, we develop a model that explains how this circuit compares allocentric heading and goal angles to build an egocentric steering signal in the PFL3 output terminals. Quantitative analyses and optogenetic manipulations of PFL3 activity support the model. Finally, using a new navigational memory task, we show that flies expressing disruptors of synaptic transmission in subsets of PFL3 cells have a reduced ability to orient along arbitrary goal directions, with an effect size in quantitative accordance with the prediction of our model. The biological circuit described here reveals how two population-level allocentric signals are compared in the brain to produce an egocentric output signal that is appropriate for motor control.


Brain , Drosophila melanogaster , Goals , Head , Neural Pathways , Orientation, Spatial , Spatial Navigation , Animals , Action Potentials , Brain/cytology , Brain/physiology , Drosophila melanogaster/cytology , Drosophila melanogaster/physiology , Head/physiology , Locomotion , Neurons/metabolism , Optogenetics , Orientation, Spatial/physiology , Space Perception/physiology , Spatial Memory/physiology , Spatial Navigation/physiology , Synaptic Transmission
15.
Learn Behav ; 52(1): 19-34, 2024 Mar.
Article En | MEDLINE | ID: mdl-38231426

The cognitive map, proposed by Tolman in the 1940s, is a hypothetical internal representation of space constructed by the brain to enable an animal to undertake flexible spatial behaviors such as navigation. The subsequent discovery of place cells in the hippocampus of rats suggested that such a map-like representation does exist, and also provided a tool with which to explore its properties. Single-neuron studies in rodents conducted in small singular spaces have suggested that the map is founded on a metric framework, preserving distances and directions in an abstract representational format. An open question is whether this metric structure pertains over extended, often complexly structured real-world space. The data reviewed here suggest that this is not the case. The emerging picture is that instead of being a single, unified construct, the map is a mosaic of fragments that are heterogeneous, variably metric, multiply scaled, and sometimes laid on top of each other. Important organizing factors within and between fragments include boundaries, context, compass direction, and gravity. The map functions not to provide a comprehensive and precise rendering of the environment but rather to support adaptive behavior, tailored to the species and situation.


Brain , Spatial Navigation , Rats , Animals , Brain/physiology , Hippocampus/physiology , Spatial Behavior , Brain Mapping/veterinary , Cognition/physiology , Space Perception/physiology , Spatial Navigation/physiology , Mammals
16.
Prog Neurobiol ; 233: 102569, 2024 Feb.
Article En | MEDLINE | ID: mdl-38232782

Grid cells fire at multiple positions that organize the vertices of equilateral triangles tiling a 2D space and are well studied in rodents. The last decade witnessed rapid progress in two other research lines on grid codes-empirical studies on distributed human grid-like representations in physical and multiple non-physical spaces, and cognitive computational models addressing the function of grid cells based on principles of efficient and predictive coding. Here, we review the progress in these fields and integrate these lines into a systematic organization. We also discuss the coordinate mechanisms of grid codes in the human entorhinal cortex and medial prefrontal cortex and their role in neurological and psychiatric diseases.


Spatial Navigation , Humans , Spatial Navigation/physiology , Brain , Entorhinal Cortex/physiology , Brain Mapping , Cognition , Models, Neurological , Space Perception/physiology
17.
Brain Struct Funct ; 229(3): 577-592, 2024 Apr.
Article En | MEDLINE | ID: mdl-37029811

Spatial learning is critical for survival and its underlying neuronal mechanisms have been studied extensively. These studies have revealed a wealth of information about the neural representations of space, such as place cells and boundary cells. While many studies have focused on how these representations emerge in the brain, their functional role in driving spatial learning and navigation has received much less attention. We extended an existing computational modeling tool-chain to study the functional role of spatial representations using closed-loop simulations of spatial learning. At the heart of the model agent was a spiking neural network that formed a ring attractor. This network received inputs from place and boundary cells and the location of the activity bump in this network was the output. This output determined the movement directions of the agent. We found that the navigation performance depended on the parameters of the place cell input, such as their number, the place field sizes, and peak firing rate, as well as, unsurprisingly, the size of the goal zone. The dependence on the place cell parameters could be accounted for by just a single variable, the overlap index, but this dependence was nonmonotonic. By contrast, performance scaled monotonically with the Fisher information of the place cell population. Our results therefore demonstrate that efficiently encoding spatial information is critical for navigation performance.


Hippocampus , Spatial Navigation , Hippocampus/physiology , Neurons/physiology , Spatial Learning , Brain , Motivation , Spatial Navigation/physiology , Models, Neurological
18.
J Exp Psychol Gen ; 153(2): 386-398, 2024 Feb.
Article En | MEDLINE | ID: mdl-37956077

Philosophers throughout history have debated the relations between the abstract geometry of formal mathematics and the physical geometry of the natural world. We provide evidence that abstract geometry reflects the geometry humans and nonhuman animals use for spatial navigation. Across two preregistered experiments, educated adults watched short videos of two points and two line segments forming an open figure on an otherwise blank screen. These simple visuals were described with sparse and minimally different language, creating different spatial contexts. After watching each video, participants were asked to click: anywhere (anywhere condition); to complete the triangle (triangle condition); where the next corner of the object would be (object condition); where the next stop on the agent's path would be (navigation condition); or where the next point on the abstract surface would be (abstract condition). Across spatial contexts, participants produced responses that reflected strikingly different sets of geometric representations; in particular, preserving distance and direction for open paths in the navigation condition but preserving length and angle for closed shapes in the object condition. In the navigation and abstract contexts, however, the elicited geometry was remarkably similar. Human language may thus effectively isolate phylogenetically ancient geometric representations used for navigating the physical world and recognizing the objects in it. Moreover, the cognitive origins of uniquely human abstract geometry may lie in representations used for navigating the physical world. (PsycInfo Database Record (c) 2024 APA, all rights reserved).


Spatial Navigation , Adult , Humans , Spatial Navigation/physiology , Language , Mathematics , Space Perception/physiology
19.
Neuron ; 112(4): 646-660.e8, 2024 Feb 21.
Article En | MEDLINE | ID: mdl-38101396

Egocentric representations of external items are essential for spatial navigation and memory. Here, we explored the neural mechanisms underlying egocentric processing in the retrosplenial cortex (RSC), a pivotal area for memory and navigation. Using one-photon and two-photon calcium imaging, we identified egocentric tuning for environment boundaries in dendrites, spines, and somas of RSC neurons (egocentric boundary cells) in the open-field task. Dendrites with egocentric tuning tended to have similarly tuned spines. We further identified egocentric neurons representing landmarks in a virtual navigation task or remembered cue location in a goal-oriented task, respectively. These neurons formed an independent population with egocentric boundary cells, suggesting that dedicated neurons with microscopic clustering of functional inputs shaped egocentric boundary processing in RSC and that RSC adopted a labeled line code with distinct classes of egocentric neurons responsible for representing different items in specific behavioral contexts, which could lead to efficient and flexible computation.


Gyrus Cinguli , Spatial Navigation , Cerebral Cortex/physiology , Spatial Navigation/physiology , Neurons/physiology , Dendrites
20.
Nature ; 625(7994): 338-344, 2024 Jan.
Article En | MEDLINE | ID: mdl-38123682

The medial entorhinal cortex (MEC) hosts many of the brain's circuit elements for spatial navigation and episodic memory, operations that require neural activity to be organized across long durations of experience1. Whereas location is known to be encoded by spatially tuned cell types in this brain region2,3, little is known about how the activity of entorhinal cells is tied together over time at behaviourally relevant time scales, in the second-to-minute regime. Here we show that MEC neuronal activity has the capacity to be organized into ultraslow oscillations, with periods ranging from tens of seconds to minutes. During these oscillations, the activity is further organized into periodic sequences. Oscillatory sequences manifested while mice ran at free pace on a rotating wheel in darkness, with no change in location or running direction and no scheduled rewards. The sequences involved nearly the entire cell population, and transcended epochs of immobility. Similar sequences were not observed in neighbouring parasubiculum or in visual cortex. Ultraslow oscillatory sequences in MEC may have the potential to couple neurons and circuits across extended time scales and serve as a template for new sequence formation during navigation and episodic memory formation.


Entorhinal Cortex , Neurons , Periodicity , Animals , Mice , Entorhinal Cortex/cytology , Entorhinal Cortex/physiology , Neurons/physiology , Parahippocampal Gyrus/physiology , Running/physiology , Time Factors , Darkness , Visual Cortex/physiology , Neural Pathways , Spatial Navigation/physiology , Memory, Episodic
...