Neural mechanisms of self-location.

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Published in Curr Biol on April 14, 2014

Authors

C Barry1, N Burgess2

Author Affiliations

1: UCL Research Department of Cell & Developmental Biology, Gower Street, London, WC1E 6BT, UK. Electronic address: caswell.barry@ucl.ac.uk.
2: UCL Institute of Cognitive Neuroscience, London, WC1N 3AR, UK; UCL Institute of Neurology, Queen Square, London, WC1N 3BG, UK. Electronic address: n.burgess@ucl.ac.uk.

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A synaptic model of memory: long-term potentiation in the hippocampus. Nature (1993) 29.13

The hippocampus as a spatial map. Preliminary evidence from unit activity in the freely-moving rat. Brain Res (1971) 15.17

Microstructure of a spatial map in the entorhinal cortex. Nature (2005) 12.64

Theta oscillations in the hippocampus. Neuron (2002) 10.77

Phase relationship between hippocampal place units and the EEG theta rhythm. Hippocampus (1993) 10.50

Dynamics of the hippocampal ensemble code for space. Science (1993) 9.47

Simple memory: a theory for archicortex. Philos Trans R Soc Lond B Biol Sci (1971) 9.06

Conjunctive representation of position, direction, and velocity in entorhinal cortex. Science (2006) 6.81

Head-direction cells recorded from the postsubiculum in freely moving rats. I. Description and quantitative analysis. J Neurosci (1990) 5.42

Geometric determinants of the place fields of hippocampal neurons. Nature (1996) 5.18

The effects of changes in the environment on the spatial firing of hippocampal complex-spike cells. J Neurosci (1987) 4.87

Distinct ensemble codes in hippocampal areas CA3 and CA1. Science (2004) 4.82

Requirement for hippocampal CA3 NMDA receptors in associative memory recall. Science (2002) 4.78

Representation of geometric borders in the entorhinal cortex. Science (2008) 4.61

Cellular networks underlying human spatial navigation. Nature (2003) 4.51

An oscillatory interference model of grid cell firing. Hippocampus (2007) 4.42

Place units in the hippocampus of the freely moving rat. Exp Neurol (1976) 4.34

Attractor dynamics in the hippocampal representation of the local environment. Science (2005) 4.09

Development of the spatial representation system in the rat. Science (2010) 3.88

Path integration and cognitive mapping in a continuous attractor neural network model. J Neurosci (1997) 3.69

Development of the hippocampal cognitive map in preweanling rats. Science (2010) 3.64

Experience-dependent rescaling of entorhinal grids. Nat Neurosci (2007) 3.54

Hippocampus-independent phase precession in entorhinal grid cells. Nature (2008) 3.50

Dual phase and rate coding in hippocampal place cells: theoretical significance and relationship to entorhinal grid cells. Hippocampus (2005) 3.43

Temporal frequency of subthreshold oscillations scales with entorhinal grid cell field spacing. Science (2007) 3.39

Grid cells in pre- and parasubiculum. Nat Neurosci (2010) 3.39

Boundary vector cells in the subiculum of the hippocampal formation. J Neurosci (2009) 3.28

Long-term plasticity in hippocampal place-cell representation of environmental geometry. Nature (2002) 3.24

The entorhinal grid map is discretized. Nature (2012) 3.23

Independent rate and temporal coding in hippocampal pyramidal cells. Nature (2003) 3.18

Long-term dynamics of CA1 hippocampal place codes. Nat Neurosci (2013) 3.06

Comparison of population coherence of place cells in hippocampal subfields CA1 and CA3. Nature (2004) 3.06

Representation of spatial orientation by the intrinsic dynamics of the head-direction cell ensemble: a theory. J Neurosci (1996) 2.90

Deciphering the hippocampal polyglot: the hippocampus as a path integration system. J Exp Biol (1996) 2.86

Head-direction cells recorded from the postsubiculum in freely moving rats. II. Effects of environmental manipulations. J Neurosci (1990) 2.80

Reduction of theta rhythm dissociates grid cell spatial periodicity from directional tuning. Science (2011) 2.78

The spatial periodicity of grid cells is not sustained during reduced theta oscillations. Science (2011) 2.70

Experience-dependent modifications of hippocampal place cell firing. Hippocampus (1991) 2.48

Human theta oscillations exhibit task dependence during virtual maze navigation. Nature (1999) 2.36

Hippocampal place units in the freely moving rat: why they fire where they fire. Exp Brain Res (1978) 2.34

Modeling place fields in terms of the cortical inputs to the hippocampus. Hippocampus (2000) 2.32

Evidence for grid cells in a human memory network. Nature (2010) 2.31

Optogenetic dissection of entorhinal-hippocampal functional connectivity. Science (2013) 2.26

Head direction cells recorded in the anterior thalamic nuclei of freely moving rats. J Neurosci (1995) 2.24

Grid cells and theta as oscillatory interference: theory and predictions. Hippocampus (2008) 2.23

Place cells, head direction cells, and the learning of landmark stability. J Neurosci (1995) 2.20

Direct recordings of grid-like neuronal activity in human spatial navigation. Nat Neurosci (2013) 2.19

Fragmentation of grid cell maps in a multicompartment environment. Nat Neurosci (2009) 2.18

Dynamics of mismatch correction in the hippocampal ensemble code for space: interaction between path integration and environmental cues. J Neurosci (1996) 2.17

Grid cells without theta oscillations in the entorhinal cortex of bats. Nature (2011) 2.07

Grid cells and theta as oscillatory interference: electrophysiological data from freely moving rats. Hippocampus (2008) 2.03

A model of the neural basis of the rat's sense of direction. Adv Neural Inf Process Syst (1995) 2.03

Single unit activity in the rat hippocampus during a spatial memory task. Exp Brain Res (1987) 1.97

The boundary vector cell model of place cell firing and spatial memory. Rev Neurosci (2006) 1.93

The firing of hippocampal place cells in the dark depends on the rat's recent experience. J Neurosci (1990) 1.89

Long-term stability of the place-field activity of single units recorded from the dorsal hippocampus of freely behaving rats. Brain Res (1990) 1.89

Heterogeneous modulation of place cell firing by changes in context. J Neurosci (2003) 1.88

Development of cue integration in human navigation. Curr Biol (2008) 1.81

Path integration in mammals and its interaction with visual landmarks. J Exp Biol (1996) 1.80

Conversion of a phase- to a rate-coded position signal by a three-stage model of theta cells, grid cells, and place cells. Hippocampus (2008) 1.68

Rats are able to navigate in virtual environments. J Exp Biol (2005) 1.65

Membrane potential dynamics of grid cells. Nature (2013) 1.64

Spatial firing properties of hippocampal CA1 populations in an environment containing two visually identical regions. J Neurosci (1998) 1.58

Cosine directional tuning of theta cell burst frequencies: evidence for spatial coding by oscillatory interference. J Neurosci (2011) 1.57

How vision and movement combine in the hippocampal place code. Proc Natl Acad Sci U S A (2012) 1.54

Neuronal code for extended time in the hippocampus. Proc Natl Acad Sci U S A (2012) 1.54

Hippocampal cellular and network activity in freely moving echolocating bats. Nat Neurosci (2007) 1.52

Cellular mechanisms of spatial navigation in the medial entorhinal cortex. Nat Neurosci (2013) 1.50

What grid cells convey about rat location. J Neurosci (2008) 1.49

Dynamic interactions between local surface cues, distal landmarks, and intrinsic circuitry in hippocampal place cells. J Neurosci (2002) 1.46

Firing properties of rat lateral mammillary single units: head direction, head pitch, and angular head velocity. J Neurosci (1998) 1.43

Anticipatory head direction signals in anterior thalamus: evidence for a thalamocortical circuit that integrates angular head motion to compute head direction. J Neurosci (1995) 1.38

Brain oscillations and memory. Curr Opin Neurobiol (2010) 1.35

Grid cell firing patterns signal environmental novelty by expansion. Proc Natl Acad Sci U S A (2012) 1.35

Landmark learning and visuo-spatial memories in gerbils. J Comp Physiol A (1986) 1.34

Directionally selective mnemonic properties of neurons in the lateral dorsal nucleus of the thalamus of rats. J Neurosci (1993) 1.34

Head direction cell representations maintain internal coherence during conflicting proximal and distal cue rotations: comparison with hippocampal place cells. J Neurosci (2006) 1.32

A controlled attractor network model of path integration in the rat. J Comput Neurosci (2005) 1.32

Models of place and grid cell firing and theta rhythmicity. Curr Opin Neurobiol (2011) 1.31

Hippocampal place fields emerge upon single-cell manipulation of excitability during behavior. Science (2012) 1.27

Specific evidence of low-dimensional continuous attractor dynamics in grid cells. Nat Neurosci (2013) 1.24

Head-direction cells in the rat posterior cortex. II. Contributions of visual and ideothetic information to the directional firing. Exp Brain Res (1994) 1.22

Grid cell hexagonal patterns formed by fast self-organized learning within entorhinal cortex. Hippocampus (2010) 1.21

Grid cells in mice. Hippocampus (2008) 1.20

Knock-out of HCN1 subunit flattens dorsal-ventral frequency gradient of medial entorhinal neurons in adult mice. J Neurosci (2009) 1.20

The frequency of rat's hippocampal theta rhythm is related to the speed of locomotion. Brain Res (1998) 1.20

A model combining oscillations and attractor dynamics for generation of grid cell firing. Front Neural Circuits (2012) 1.13

Homing with locale, taxon, and dead reckoning strategies by foraging rats: sensory hierarchy in spatial navigation. Behav Brain Res (1999) 1.12

Spatial firing of hippocampal place cells in blind rats. J Neurosci (1998) 1.11

Learning in a geometric model of place cell firing. Hippocampus (2007) 1.11

Study of CA1 place cell activity and exploratory behavior following spatial and nonspatial changes in the environment. Hippocampus (2005) 1.11

Robotic and neuronal simulation of the hippocampus and rat navigation. Philos Trans R Soc Lond B Biol Sci (1997) 1.10

Path integration: how the head direction signal maintains and corrects spatial orientation. Nat Neurosci (2012) 1.06

Lateral entorhinal neurons are not spatially selective in cue-rich environments. Hippocampus (2010) 1.03

Rapid spatial reorientation and head direction cells. J Neurosci (2003) 1.01

A hybrid oscillatory interference/continuous attractor network model of grid cell firing. J Neurosci (2014) 1.00

Possible role of acetylcholine in regulating spatial novelty effects on theta rhythm and grid cells. Front Neural Circuits (2012) 1.00

Directional control of hippocampal place fields. Exp Brain Res (1997) 0.98

Which coordinate system for modelling path integration? J Theor Biol (2009) 0.90

Models of grid cells and theta oscillations. Nature (2012) 0.87