Potential roles of cholinergic modulation in the neural coding of location and movement speed.

PubWeight™: 0.75‹?›

🔗 View Article (PMID 27677935)

Published in J Physiol Paris on September 24, 2016

Authors

Holger Dannenberg1, James R Hinman2, Michael E Hasselmo3

Author Affiliations

1: Center for Systems Neuroscience, Department of Psychological and Brain Sciences, Center for Memory and Brain, Graduate Program for Neuroscience, Boston University, 2 Cummington Mall, Boston, MA 02215, USA. Electronic address: hdannenb@bu.edu.
2: Center for Systems Neuroscience, Department of Psychological and Brain Sciences, Center for Memory and Brain, Graduate Program for Neuroscience, Boston University, 2 Cummington Mall, Boston, MA 02215, USA. Electronic address: hinman@bu.edu.
3: Center for Systems Neuroscience, Department of Psychological and Brain Sciences, Center for Memory and Brain, Graduate Program for Neuroscience, Boston University, 2 Cummington Mall, Boston, MA 02215, USA. Electronic address: Hasselmo@bu.edu.

Articles cited by this

(truncated to the top 100)

Neural networks and physical systems with emergent collective computational abilities. Proc Natl Acad Sci U S A (1982) 20.85

Place navigation impaired in rats with hippocampal lesions. Nature (1982) 15.79

Regulation of synaptic efficacy by coincidence of postsynaptic APs and EPSPs. Science (1997) 13.11

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

Why there are complementary learning systems in the hippocampus and neocortex: insights from the successes and failures of connectionist models of learning and memory. Psychol Rev (1995) 11.39

Theta oscillations in the hippocampus. Neuron (2002) 10.77

Gamma (40-100 Hz) oscillation in the hippocampus of the behaving rat. J Neurosci (1995) 7.35

A mesoscale connectome of the mouse brain. Nature (2014) 6.32

Internally generated cell assembly sequences in the rat hippocampus. Science (2008) 5.81

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

Spatial representation in the entorhinal cortex. Science (2004) 5.16

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

Modulation of visual responses by behavioral state in mouse visual cortex. Neuron (2010) 4.84

Frequency of gamma oscillations routes flow of information in the hippocampus. Nature (2009) 4.81

Replay of neuronal firing sequences in rat hippocampus during sleep following spatial experience. Science (1996) 4.74

Theta rhythms coordinate hippocampal-prefrontal interactions in a spatial memory task. PLoS Biol (2005) 4.73

Hippocampal electrical activity and voluntary movement in the rat. Electroencephalogr Clin Neurophysiol (1969) 4.56

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

A disinhibitory microcircuit for associative fear learning in the auditory cortex. Nature (2011) 4.12

Prefrontal acetylcholine release controls cue detection on multiple timescales. Neuron (2007) 3.79

Control of the repetitive discharge of rat CA 1 pyramidal neurones in vitro. J Physiol (1984) 3.71

Cortical interneurons that specialize in disinhibitory control. Nature (2013) 3.56

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

Inhibition of inhibition in visual cortex: the logic of connections between molecularly distinct interneurons. Nat Neurosci (2013) 3.51

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

Major dissociation between medial and lateral entorhinal input to dorsal hippocampus. Science (2005) 3.50

Three groups of interneurons account for nearly 100% of neocortical GABAergic neurons. Dev Neurobiol (2011) 3.50

The role of acetylcholine in learning and memory. Curr Opin Neurobiol (2006) 3.49

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

A proposed function for hippocampal theta rhythm: separate phases of encoding and retrieval enhance reversal of prior learning. Neural Comput (2002) 3.31

A cortical circuit for gain control by behavioral state. Cell (2014) 3.23

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

Basal forebrain activation enhances cortical coding of natural scenes. Nat Neurosci (2009) 3.21

Theta-gamma coupling increases during the learning of item-context associations. Proc Natl Acad Sci U S A (2009) 3.17

Gating of human theta oscillations by a working memory task. J Neurosci (2001) 3.12

Human memory strength is predicted by theta-frequency phase-locking of single neurons. Nature (2010) 3.09

Area map of mouse visual cortex. J Comp Neurol (2007) 3.06

Memory consolidation and the medial temporal lobe: a simple network model. Proc Natl Acad Sci U S A (1994) 3.06

Differential regulation of neocortical synapses by neuromodulators and activity. Neuron (1997) 3.01

A disinhibitory circuit mediates motor integration in the somatosensory cortex. Nat Neurosci (2013) 2.97

Coherent theta oscillations and reorganization of spike timing in the hippocampal- prefrontal network upon learning. Neuron (2010) 2.96

Cross-frequency coupling supports multi-item working memory in the human hippocampus. Proc Natl Acad Sci U S A (2010) 2.94

Acetylcholine contributes through muscarinic receptors to attentional modulation in V1. Nature (2008) 2.92

Neuromodulation: acetylcholine and memory consolidation. Trends Cogn Sci (1999) 2.85

GABA-containing neurons in the septum control inhibitory interneurons in the hippocampus. Nature (1988) 2.84

Mechanism of graded persistent cellular activity of entorhinal cortex layer v neurons. Neuron (2006) 2.81

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

Hippocampal electrical activity in arousal. J Neurophysiol (1954) 2.71

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

Cross-frequency phase-phase coupling between θ and γ oscillations in the hippocampus. J Neurosci (2012) 2.69

The θ-γ neural code. Neuron (2013) 2.69

Accurate path integration in continuous attractor network models of grid cells. PLoS Comput Biol (2009) 2.59

Loss of hippocampal theta rhythm results in spatial memory deficit in the rat. Science (1978) 2.50

The largest group of superficial neocortical GABAergic interneurons expresses ionotropic serotonin receptors. J Neurosci (2010) 2.50

Bidirectional synaptic plasticity induced by a single burst during cholinergic theta oscillation in CA1 in vitro. Neuron (1995) 2.40

Human hippocampal theta activity during virtual navigation. Hippocampus (2005) 2.37

Hippocampal theta rhythm and its coupling with gamma oscillations require fast inhibition onto parvalbumin-positive interneurons. Proc Natl Acad Sci U S A (2009) 2.34

Biogenic amines and the states of sleep. Science (1969) 2.32

Low- and high-frequency membrane potential oscillations during theta activity in CA1 and CA3 pyramidal neurons of the rat hippocampus under ketamine-xylazine anesthesia. J Neurophysiol (1993) 2.31

Functional specialization of mouse higher visual cortical areas. Neuron (2011) 2.30

High acetylcholine levels set circuit dynamics for attention and encoding and low acetylcholine levels set dynamics for consolidation. Prog Brain Res (2004) 2.26

Grid cell mechanisms and function: contributions of entorhinal persistent spiking and phase resetting. Hippocampus (2008) 2.25

Gain modulation by nicotine in macaque v1. Neuron (2007) 2.23

Hippocampal "time cells": time versus path integration. Neuron (2013) 2.23

Functional specialization of seven mouse visual cortical areas. Neuron (2011) 2.19

Dynamics of learning and recall at excitatory recurrent synapses and cholinergic modulation in rat hippocampal region CA3. J Neurosci (1995) 2.14

Two types of hippocampal rhythmical slow activity in both the rabbit and the rat: relations to behavior and effects of atropine, diethyl ether, urethane, and pentobarbital. Exp Neurol (1975) 2.08

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

Environmental novelty is signaled by reduction of the hippocampal theta frequency. Hippocampus (2008) 2.01

Characterization of a slow cholinergic post-synaptic potential recorded in vitro from rat hippocampal pyramidal cells. J Physiol (1984) 2.01

Fast modulation of visual perception by basal forebrain cholinergic neurons. Nat Neurosci (2013) 1.99

Microdialysis measurement of cortical and hippocampal acetylcholine release during sleep-wake cycle in freely moving cats. Brain Res (1995) 1.90

Medial prefrontal cortex cells show dynamic modulation with the hippocampal theta rhythm dependent on behavior. Hippocampus (2005) 1.89

Speed cells in the medial entorhinal cortex. Nature (2015) 1.87

Spatial memory in the rat requires the dorsolateral band of the entorhinal cortex. Neuron (2005) 1.87

Stimulation in hippocampal region CA1 in behaving rats yields long-term potentiation when delivered to the peak of theta and long-term depression when delivered to the trough. J Neurosci (2003) 1.86

Long-term potentiation in the dentate gyrus is induced preferentially on the positive phase of theta-rhythm. Brain Res (1988) 1.85

Muscarinic modulation of the oscillatory and repetitive firing properties of entorhinal cortex layer II neurons. J Neurophysiol (1997) 1.84

Theta sequences are essential for internally generated hippocampal firing fields. Nat Neurosci (2014) 1.83

Disinhibition of rat hippocampal pyramidal cells by GABAergic afferents from the septum. J Physiol (1997) 1.82

Stimulation on the positive phase of hippocampal theta rhythm induces long-term potentiation that can Be depotentiated by stimulation on the negative phase in area CA1 in vivo. J Neurosci (1997) 1.82

Acetylcholine as a neuromodulator: cholinergic signaling shapes nervous system function and behavior. Neuron (2012) 1.81

Laminar selectivity of the cholinergic suppression of synaptic transmission in rat hippocampal region CA1: computational modeling and brain slice physiology. J Neurosci (1994) 1.81

Perisomatic GABA release and thalamocortical integration onto neocortical excitatory cells are regulated by neuromodulators. Neuron (2008) 1.80

Behavioral vigilance following infusions of 192 IgG-saporin into the basal forebrain: selectivity of the behavioral impairment and relation to cortical AChE-positive fiber density. Behav Neurosci (1996) 1.80

Nicotinic receptor activation excites distinct subtypes of interneurons in the rat hippocampus. J Neurosci (1999) 1.77

Expression of m1-m4 muscarinic acetylcholine receptor proteins in rat hippocampus and regulation by cholinergic innervation. J Neurosci (1995) 1.76

Hippocampal place cells: parallel input streams, subregional processing, and implications for episodic memory. Hippocampus (2006) 1.74

Low acetylcholine during slow-wave sleep is critical for declarative memory consolidation. Proc Natl Acad Sci U S A (2004) 1.73

Human hippocampal theta oscillations and the formation of episodic memories. Hippocampus (2011) 1.70

Encoding and retrieval of episodic memories: role of cholinergic and GABAergic modulation in the hippocampus. Hippocampus (1996) 1.68

Selective cholinergic modulation of cortical GABAergic cell subtypes. J Neurophysiol (1997) 1.68

Synaptic potentials mediated via alpha-bungarotoxin-sensitive nicotinic acetylcholine receptors in rat hippocampal interneurons. J Neurosci (1998) 1.66

Cholinergic modulation of the functional organization of the cat visual cortex. Brain Res (1983) 1.64

Spatiotemporal coupling between hippocampal acetylcholine release and theta oscillations in vivo. J Neurosci (2010) 1.62

Presynaptic inhibitory effect of acetylcholine in the hippocampus. J Neurosci (1981) 1.62

A functional role of cholinergic innervation to neurons in the cat visual cortex. J Neurophysiol (1987) 1.59

Representation of non-spatial and spatial information in the lateral entorhinal cortex. Front Behav Neurosci (2011) 1.56

Network analysis of corticocortical connections reveals ventral and dorsal processing streams in mouse visual cortex. J Neurosci (2012) 1.55