Rodent auditory perception: Critical band limitations and plasticity.

PubWeight™: 0.75‹?›

🔗 View Article (PMID 25827498)

Published in Neuroscience on March 28, 2015

Authors

J King1, M Insanally1, M Jin1, A R O Martins2, J A D'amour1, R C Froemke3

Author Affiliations

1: Skirball Institute for Biomolecular Medicine, New York University School of Medicine, New York, NY, USA; Department of Otolaryngology, New York University School of Medicine, New York, NY, USA; Department of Neuroscience and Physiology, New York University School of Medicine, New York, NY, USA; Center for Neural Science, New York University, New York, NY, USA.
2: Skirball Institute for Biomolecular Medicine, New York University School of Medicine, New York, NY, USA; Department of Otolaryngology, New York University School of Medicine, New York, NY, USA; Department of Neuroscience and Physiology, New York University School of Medicine, New York, NY, USA; Center for Neural Science, New York University, New York, NY, USA; PhD Programme in Experimental Biology and Biomedicine, Center for Neurosciences and Cell Biology, University of Coimbra, Portugal.
3: Skirball Institute for Biomolecular Medicine, New York University School of Medicine, New York, NY, USA; Department of Otolaryngology, New York University School of Medicine, New York, NY, USA; Department of Neuroscience and Physiology, New York University School of Medicine, New York, NY, USA; Center for Neural Science, New York University, New York, NY, USA. Electronic address: robert.froemke@med.nyu.edu.

Articles cited by this

(truncated to the top 100)

Model of autism: increased ratio of excitation/inhibition in key neural systems. Genes Brain Behav (2003) 8.48

Cortical plasticity: from synapses to maps. Annu Rev Neurosci (1998) 7.24

Balanced inhibition underlies tuning and sharpens spike timing in auditory cortex. Nature (2003) 6.98

Cortical map reorganization enabled by nucleus basalis activity. Science (1998) 5.65

Rapid task-related plasticity of spectrotemporal receptive fields in primary auditory cortex. Nat Neurosci (2003) 5.12

Attention improves performance primarily by reducing interneuronal correlations. Nat Neurosci (2009) 5.03

Processing of low-probability sounds by cortical neurons. Nat Neurosci (2003) 4.74

Musical experience shapes human brainstem encoding of linguistic pitch patterns. Nat Neurosci (2007) 4.13

Precise inhibition is essential for microsecond interaural time difference coding. Nature (2002) 3.90

The neural basis of perceptual learning. Neuron (2001) 3.79

A synaptic memory trace for cortical receptive field plasticity. Nature (2007) 3.31

Language, music, syntax and the brain. Nat Neurosci (2003) 3.30

Multiple time scales of adaptation in auditory cortex neurons. J Neurosci (2004) 3.30

Synaptic mechanisms of forward suppression in rat auditory cortex. Neuron (2005) 3.24

Map plasticity in somatosensory cortex. Science (2005) 3.07

Environmental noise retards auditory cortical development. Science (2003) 2.61

Temporal coherence and attention in auditory scene analysis. Trends Neurosci (2010) 2.52

Induction of a physiological memory in the cerebral cortex by stimulation of the nucleus basalis. Proc Natl Acad Sci U S A (1996) 2.49

Auditory filter shapes derived with noise stimuli. J Acoust Soc Am (1976) 2.44

Spike-timing-dependent synaptic plasticity depends on dendritic location. Nature (2005) 2.38

Critical period window for spectral tuning defined in the primary auditory cortex (A1) in the rat. J Neurosci (2007) 2.29

Linearity of cortical receptive fields measured with natural sounds. J Neurosci (2004) 2.26

Auditory plasticity and hyperactivity following cochlear damage. Hear Res (2000) 2.06

Developmental sensory experience balances cortical excitation and inhibition. Nature (2010) 2.06

The auditory cortex of the house mouse: left-right differences, tonotopic organization and quantitative analysis of frequency representation. J Comp Physiol A (1997) 1.93

Plasticity of temporal pattern codes for vocalization stimuli in primary auditory cortex. J Neurosci (2006) 1.92

Task difficulty and performance induce diverse adaptive patterns in gain and shape of primary auditory cortical receptive fields. Neuron (2009) 1.89

Selective removal of lateral olivocochlear efferents increases vulnerability to acute acoustic injury. J Neurophysiol (2006) 1.82

Cross-domain effects of music and language experience on the representation of pitch in the human auditory brainstem. J Cogn Neurosci (2009) 1.82

Modular organization of frequency integration in primary auditory cortex. Annu Rev Neurosci (2000) 1.75

Tonal consonance and critical bandwidth. J Acoust Soc Am (1965) 1.73

The rise of the mouse, biomedicine's model mammal. Science (2000) 1.72

Low-frequency characteristics of intracellularly recorded receptor potentials in guinea-pig cochlear hair cells. J Physiol (1983) 1.71

Basilar membrane tuning in the cat cochlea. Science (1982) 1.69

Laminar fine structure of frequency organization in auditory midbrain. Nature (1997) 1.69

Disruption of primary auditory cortex by synchronous auditory inputs during a critical period. Proc Natl Acad Sci U S A (2002) 1.60

Development of spectral and temporal response selectivity in the auditory cortex. Proc Natl Acad Sci U S A (2005) 1.52

Cortical map plasticity improves learning but is not necessary for improved performance. Neuron (2011) 1.52

Physiology and topography of neurons with multipeaked tuning curves in cat primary auditory cortex. J Neurophysiol (1991) 1.49

Hearing after congenital deafness: central auditory plasticity and sensory deprivation. Cereb Cortex (2002) 1.44

Early experience impairs perceptual discrimination. Nat Neurosci (2007) 1.44

Learning to encode timing: mechanisms of plasticity in the auditory brainstem. Neuron (2009) 1.43

HRP study of the organization of auditory afferents ascending to central nucleus of inferior colliculus in cat. J Comp Neurol (1981) 1.39

Feature-dependent sensitive periods in the development of complex sound representation. J Neurosci (2009) 1.39

Modular organization of intrinsic connections associated with spectral tuning in cat auditory cortex. Proc Natl Acad Sci U S A (2001) 1.35

Effects of reverberation on brainstem representation of speech in musicians and non-musicians. Brain Res (2010) 1.35

Congenital auditory deprivation reduces synaptic activity within the auditory cortex in a layer-specific manner. Cereb Cortex (2000) 1.33

The relationship of the spiral turns of the cochlea and the length of the basilar membrane to the range of audible frequencies in ground dwelling mammals. J Acoust Soc Am (1985) 1.33

Environment and brain plasticity: towards an endogenous pharmacotherapy. Physiol Rev (2014) 1.33

Hearing ranges of laboratory animals. J Am Assoc Lab Anim Sci (2007) 1.32

Long-term modification of cortical synapses improves sensory perception. Nat Neurosci (2012) 1.31

Cortical development, plasticity and re-organization in children with cochlear implants. J Commun Disord (2009) 1.31

A discontinuous tonotopic organization in the inferior colliculus of the rat. J Neurosci (2008) 1.31

A spike-timing code for discriminating conspecific vocalizations in the thalamocortical system of anesthetized and awake guinea pigs. J Neurosci (2009) 1.29

Complex sound analysis (frequency resolution, filtering and spectral integration) by single units of the inferior colliculus of the cat. Brain Res (1988) 1.26

Unbalanced synaptic inhibition can create intensity-tuned auditory cortex neurons. Neuroscience (2007) 1.24

The influence of cochlear shape on low-frequency hearing. Proc Natl Acad Sci U S A (2008) 1.23

Improved cortical entrainment to infant communication calls in mothers compared with virgin mice. Eur J Neurosci (2006) 1.22

Stimulus-timing-dependent plasticity of cortical frequency representation. J Neurosci (2008) 1.19

Musical experience offsets age-related delays in neural timing. Neurobiol Aging (2012) 1.18

Reorganization in awake rat auditory cortex by local microstimulation and its effect on frequency-discrimination behavior. J Neurophysiol (2001) 1.14

Harnessing plasticity to understand learning and treat disease. Trends Neurosci (2012) 1.13

Spectral and temporal modulation tradeoff in the inferior colliculus. J Neurophysiol (2009) 1.13

Formation of spike response to sound tones in cat auditory cortex neurons: interaction of excitatory and inhibitory effects. Neuroscience (1991) 1.11

Unimodal and cross-modal plasticity in the 'deaf' auditory cortex. Int J Audiol (2007) 1.10

Development of tonotopy in the inferior colliculus. I. Electrophysiological mapping in house mice. Brain Res Dev Brain Res (1990) 1.10

Summation of vibrotactile intensity: an analog to auditory critical bands? Sens Processes (1979) 1.10

Selective attention increases both gain and feature selectivity of the human auditory cortex. PLoS One (2007) 1.09

The acoustical cues to sound location in the rat: measurements of directional transfer functions. J Acoust Soc Am (2008) 1.08

Auditory midbrain responses parallel spectral integration phenomena. Science (1985) 1.07

Balanced tone-evoked synaptic excitation and inhibition in mouse auditory cortex. Neuroscience (2009) 1.06

Size of critical band in infants, children, and adults. J Exp Psychol Hum Percept Perform (1990) 1.05

Specialization of primary auditory cortex processing by sound exposure in the "critical period". Proc Natl Acad Sci U S A (2004) 1.04

Organization of dorsal cochlear nucleus type IV unit response maps and their relationship to activation by bandlimited noise. J Neurophysiol (1991) 1.03

Activity-dependent neural plasticity from bench to bedside. Neuron (2013) 1.02

Central auditory development in children with bilateral cochlear implants. Arch Otolaryngol Head Neck Surg (2006) 1.00

Auditory filter shapes of CBA/CaJ mice: behavioral assessments. J Acoust Soc Am (2006) 1.00

Experiments on ototoxic effects of antibiotics. Adv Otorhinolaryngol (1973) 1.00

Frequency resolution and spectral integration (critical band analysis) in single units of the cat primary auditory cortex. J Comp Physiol A (1997) 0.99

Inferior colliculus of the house mouse. I. A quantitative study of tonotopic organization, frequency representation, and tone-threshold distribution. J Comp Neurol (1985) 0.99

Psychophysical frequency resolution in the cat as determined by simultaneous masking and its relation to auditory-nerve resolution. J Acoust Soc Am (1979) 0.98

Critical bands and filter characteristics in the ear of the housemouse (Mus musculus). Biol Cybern (1976) 0.98

The nicotinic receptor of cochlear hair cells: a possible pharmacotherapeutic target? Biochem Pharmacol (2009) 0.97

Heterosynaptic plasticity prevents runaway synaptic dynamics. J Neurosci (2013) 0.96

Behavioral measures of frequency selectivity in the chinchilla. J Acoust Soc Am (1992) 0.95

Principles of neuroplasticity-based rehabilitation. Prog Brain Res (2013) 0.95

Cortical plasticity, excitatory-inhibitory balance, and sensory perception. Prog Brain Res (2013) 0.95

Development of auditory cortical synaptic receptive fields. Neurosci Biobehav Rev (2011) 0.92

Behavioral and ultrastructural correlates of acoustic trauma. Ann Otol Rhinol Laryngol (1971) 0.92

Cortical gamma rhythms modulate NMDAR-mediated spike timing dependent plasticity in a biophysical model. PLoS Comput Biol (2009) 0.91

Elevated correlations in neuronal ensembles of mouse auditory cortex following parturition. J Neurosci (2013) 0.91

Continuous white noise exposure during and after auditory critical period differentially alters bidirectional thalamocortical plasticity in rat auditory cortex in vivo. Eur J Neurosci (2007) 0.91

Tonotopy and inhibition in the midbrain inferior colliculus shape spectral resolution of sounds in neural critical bands. Eur J Neurosci (2008) 0.90

Masked and unmasked pure-tone thresholds of infants and adults: development of auditory frequency selectivity and sensitivity. J Speech Hear Res (1984) 0.90

Correlations between cochlear hair cell loss and shifts of masked and absolute behavioral auditory thresholds in the house mouse. Acta Otolaryngol (1979) 0.90

Permanent defects in rat peripheral auditory function following perinatal hypothyroidism: determination of a critical period. Brain Res (1985) 0.89

Neural circuits underlying adaptation and learning in the perception of auditory space. Neurosci Biobehav Rev (2011) 0.89

Brief exposure of juvenile rats to noise impairs the development of the response properties of inferior colliculus neurons. Eur J Neurosci (2009) 0.87

Comparative psychoacoustics. Hear Res (1988) 0.87

Frequency response areas of mouse inferior colliculus neurons: II. Critical bands. Neuroreport (2006) 0.87