1 |
Willmore BDB, King AJ. Adaptation in auditory processing. Physiol Rev 2023;103:1025-58. [PMID: 36049112 DOI: 10.1152/physrev.00011.2022] [Reference Citation Analysis]
|
2 |
Luo D, Liu J, Auksztulewicz R, Wing Yip TK, Kanold PO, Schnupp JW. Hierarchical Deviant Processing in Auditory Cortex of Awake Mice. bioRxiv 2023:2023. [PMID: 36711896 DOI: 10.1101/2023.01.18.524413] [Reference Citation Analysis]
|
3 |
Stein J, von Kriegstein K, Tabas A. Predictive encoding of pure tones and FM-sweeps in the human auditory cortex. Cereb Cortex Commun 2022;3:tgac047. [PMID: 36545253 DOI: 10.1093/texcom/tgac047] [Reference Citation Analysis]
|
4 |
Poublan-couzardot A, Lecaignard F, Fucci E, Davidson RJ, Mattout J, Lutz A, Abdoun O. Time-resolved dynamic computational modeling of human EEG recordings reveals gradients of generative mechanisms for the MMN response.. [DOI: 10.1101/2022.09.12.507526] [Reference Citation Analysis]
|
5 |
Chen C, Xu S, Wang Y, Wang X. Location-Specific Facilitation in Primate Auditory Cortex.. [DOI: 10.1101/2022.06.19.496736] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
|
6 |
Ishida N, Kubota T, Ito Y, Shiramatsu T, Suwa E, Takahashi H. Information Processing Capacity in the Rat Auditory Cortex. IEEJ Trans EIS 2022;142:569-577. [DOI: 10.1541/ieejeiss.142.569] [Reference Citation Analysis]
|
7 |
Canales-johnson A, Teixeira Borges AF, Komatsu M, Fujii N, Fahrenfort JJ, Miller KJ, Noreika V. Broadband Dynamics Rather than Frequency-Specific Rhythms Underlie Prediction Error in the Primate Auditory Cortex. J Neurosci 2021;41:9374-91. [DOI: 10.1523/jneurosci.0367-21.2021] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
|
8 |
Vanattou-Saïfoudine N, Han C, Krause R, Vasilaki E, von der Behrens W, Indiveri G. A robust model of Stimulus-Specific Adaptation validated on neuromorphic hardware. Sci Rep 2021;11:17904. [PMID: 34504155 DOI: 10.1038/s41598-021-97217-3] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
9 |
Tivadar RI, Knight RT, Tzovara A. Automatic Sensory Predictions: A Review of Predictive Mechanisms in the Brain and Their Link to Conscious Processing. Front Hum Neurosci 2021;15:702520. [PMID: 34489663 DOI: 10.3389/fnhum.2021.702520] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
|
10 |
Skoe E, Krizman J, Spitzer ER, Kraus N. Auditory Cortical Changes Precede Brainstem Changes During Rapid Implicit Learning: Evidence From Human EEG. Front Neurosci 2021;15:718230. [PMID: 34483831 DOI: 10.3389/fnins.2021.718230] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
11 |
Makarov R, Sintsov M, Valeeva G, Starikov P, Negrov D, Khazipov R. Bone conducted responses in the neonatal rat auditory cortex. Sci Rep 2021;11:16777. [PMID: 34408208 DOI: 10.1038/s41598-021-96188-9] [Cited by in Crossref: 2] [Cited by in F6Publishing: 3] [Article Influence: 1.0] [Reference Citation Analysis]
|
12 |
Parras GG, Casado-Román L, Schröger E, Malmierca MS. The posterior auditory field is the chief generator of prediction error signals in the auditory cortex. Neuroimage 2021;242:118446. [PMID: 34352393 DOI: 10.1016/j.neuroimage.2021.118446] [Cited by in Crossref: 9] [Cited by in F6Publishing: 9] [Article Influence: 4.5] [Reference Citation Analysis]
|
13 |
Zeeman M, Liu X, Zhang O, Yan J. Role of N-methyl-d-aspartate receptor subunits GluN2A and GluN2B in auditory thalamocortical long-term potentiation in adult mice. Neurosci Lett 2021;761:136091. [PMID: 34197904 DOI: 10.1016/j.neulet.2021.136091] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
14 |
Cappotto D, Auksztulewicz R, Kang H, Poeppel D, Melloni L, Schnupp J. Decoding the Content of Auditory Sensory Memory Across Species. Cereb Cortex 2021;31:3226-36. [PMID: 33625488 DOI: 10.1093/cercor/bhab002] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 2.5] [Reference Citation Analysis]
|
15 |
Baumgarten TJ, Maniscalco B, Lee JL, Flounders MW, Abry P, He BJ. Neural integration underlying naturalistic prediction flexibly adapts to varying sensory input rate. Nat Commun 2021;12:2643. [PMID: 33976118 DOI: 10.1038/s41467-021-22632-z] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.5] [Reference Citation Analysis]
|
16 |
Homma NY, Atencio CA, Schreiner CE. Plasticity of Multidimensional Receptive Fields in Core Rat Auditory Cortex Directed by Sound Statistics. Neuroscience 2021;467:150-70. [PMID: 33951506 DOI: 10.1016/j.neuroscience.2021.04.028] [Reference Citation Analysis]
|
17 |
Schöbi D, Homberg F, Frässle S, Endepols H, Moran RJ, Friston KJ, Tittgemeyer M, Heinzle J, Stephan KE. Model-based prediction of muscarinic receptor function from auditory mismatch negativity responses. Neuroimage 2021;237:118096. [PMID: 33940149 DOI: 10.1016/j.neuroimage.2021.118096] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.5] [Reference Citation Analysis]
|
18 |
Kang H, Auksztulewicz R, An H, Abi Chacra N, Sutter ML, Schnupp JWH. Neural Correlates of Auditory Pattern Learning in the Auditory Cortex. Front Neurosci 2021;15:610978. [PMID: 33790730 DOI: 10.3389/fnins.2021.610978] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.5] [Reference Citation Analysis]
|
19 |
Baghdadi G, Towhidkhah F, Rajabi M. An oscillatory-based model. Neurocognitive Mechanisms of Attention 2021. [DOI: 10.1016/b978-0-323-90935-8.00011-1] [Reference Citation Analysis]
|
20 |
Casado-Román L, Carbajal GV, Pérez-González D, Malmierca MS. Prediction error signaling explains neuronal mismatch responses in the medial prefrontal cortex. PLoS Biol 2020;18:e3001019. [PMID: 33347436 DOI: 10.1371/journal.pbio.3001019] [Cited by in Crossref: 21] [Cited by in F6Publishing: 22] [Article Influence: 7.0] [Reference Citation Analysis]
|
21 |
Song PR, Zhai YY, Gong YM, Du XY, He J, Zhang QC, Yu X. Adaptation in the Dorsal Belt and Core Regions of the Auditory Cortex in the Awake Rat. Neuroscience 2021;455:79-88. [PMID: 33285236 DOI: 10.1016/j.neuroscience.2020.11.042] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 0.7] [Reference Citation Analysis]
|
22 |
Srivastava HK, Bandyopadhyay S. Parallel Lemniscal and Non-Lemniscal Sources Control Auditory Responses in the Orbitofrontal Cortex (OFC). eNeuro 2020;7:ENEURO. [PMID: 32753369 DOI: 10.1523/ENEURO.0121-20.2020] [Cited by in Crossref: 2] [Cited by in F6Publishing: 3] [Article Influence: 0.7] [Reference Citation Analysis]
|
23 |
Kang H, Auksztulewicz R, An HJ, Abichacra N, Sutter ML, Schnupp JWH. Neural correlates of auditory pattern learning in the auditory cortex.. [DOI: 10.1101/2020.09.24.311464] [Reference Citation Analysis]
|
24 |
Malmierca MS, Auksztulewicz R. Stimulus-specific adaptation, MMN and predictive coding. Hear Res 2021;399:108076. [PMID: 32933789 DOI: 10.1016/j.heares.2020.108076] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 1.7] [Reference Citation Analysis]
|
25 |
Xiong C, Liu X, Kong L, Yan J. Thalamic gating contributes to forward suppression in the auditory cortex. PLoS One 2020;15:e0236760. [PMID: 32726372 DOI: 10.1371/journal.pone.0236760] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 1.3] [Reference Citation Analysis]
|
26 |
Parras GG, Valdés-Baizabal C, Harms L, Michie PT, Malmierca MS. The effect of NMDA-R antagonist, MK-801, on neuronal mismatch along the rat auditory thalamocortical pathway. Sci Rep 2020;10:12391. [PMID: 32709861 DOI: 10.1038/s41598-020-68837-y] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 2.7] [Reference Citation Analysis]
|
27 |
Zhai YY, Auksztulewicz R, Song PR, Sun ZH, Gong YM, Du XY, He J, Yu X. Synaptic Adaptation Contributes to Stimulus-Specific Adaptation in the Thalamic Reticular Nucleus. Neurosci Bull 2020;36:1538-41. [PMID: 32557078 DOI: 10.1007/s12264-020-00536-0] [Cited by in Crossref: 3] [Cited by in F6Publishing: 2] [Article Influence: 1.0] [Reference Citation Analysis]
|
28 |
Jin M, Glickfeld LL. Magnitude, time course, and specificity of rapid adaptation across mouse visual areas. J Neurophysiol 2020;124:245-58. [PMID: 32584636 DOI: 10.1152/jn.00758.2019] [Cited by in Crossref: 4] [Cited by in F6Publishing: 5] [Article Influence: 1.3] [Reference Citation Analysis]
|
29 |
Amsalem O, King J, Reimann M, Ramaswamy S, Muller E, Markram H, Nelken I, Segev I. Dense Computer Replica of Cortical Microcircuits Unravels Cellular Underpinnings of Auditory Surprise Response.. [DOI: 10.1101/2020.05.31.126466] [Cited by in Crossref: 6] [Cited by in F6Publishing: 6] [Article Influence: 2.0] [Reference Citation Analysis]
|
30 |
Pérez-González D, Parras GG, Morado-Díaz CJ, Aedo-Sánchez C, Carbajal GV, Malmierca MS. Deviance detection in physiologically identified cell types in the rat auditory cortex. Hear Res 2021;399:107997. [PMID: 32482383 DOI: 10.1016/j.heares.2020.107997] [Cited by in Crossref: 5] [Cited by in F6Publishing: 6] [Article Influence: 1.7] [Reference Citation Analysis]
|
31 |
Shiramatsu TI, Takahashi H. Mismatch-negativity (MMN) in animal models: Homology of human MMN? Hear Res 2021;399:107936. [PMID: 32197715 DOI: 10.1016/j.heares.2020.107936] [Cited by in Crossref: 9] [Cited by in F6Publishing: 10] [Article Influence: 3.0] [Reference Citation Analysis]
|
32 |
Harms L, Parras GG, Michie PT, Malmierca MS. The Role of Glutamate Neurotransmission in Mismatch Negativity (MMN), A Measure of Auditory Synaptic Plasticity and Change-detection. Neuroscience 2021;456:106-13. [PMID: 32045628 DOI: 10.1016/j.neuroscience.2020.01.046] [Cited by in Crossref: 10] [Cited by in F6Publishing: 7] [Article Influence: 3.3] [Reference Citation Analysis]
|
33 |
Srivastava HK, Bandyopadhyay S. Parallel lemniscal and non-lemniscal sources control auditory responses in the orbitofrontal cortex (OFC).. [DOI: 10.1101/2020.02.05.935569] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.3] [Reference Citation Analysis]
|
34 |
An H, Auksztulewicz R, Kang H, Schnupp JWH. Cortical mapping of mismatch responses to independent acoustic features. Hear Res 2021;399:107894. [PMID: 31987647 DOI: 10.1016/j.heares.2020.107894] [Cited by in Crossref: 9] [Cited by in F6Publishing: 9] [Article Influence: 3.0] [Reference Citation Analysis]
|
35 |
Carbajal GV, Malmierca MS. Novelty Processing in the Auditory System: Detection, Adaptation or Expectation? The Senses: A Comprehensive Reference 2020. [DOI: 10.1016/b978-0-12-809324-5.24154-0] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.0] [Reference Citation Analysis]
|
36 |
Kopp-scheinpflug C, Linden JF. Coding of Temporal Information. The Senses: A Comprehensive Reference 2020. [DOI: 10.1016/b978-0-12-809324-5.24255-7] [Reference Citation Analysis]
|
37 |
Teichert T, Jedema H, Shen Z, Gurnsey K. Mismatch responses mediated by adaptation and deviance detection have complementary functional profiles that point to different auditory short-term memory systems.. [DOI: 10.1101/2019.12.18.881821] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.3] [Reference Citation Analysis]
|
38 |
Canales-johnson A, Teixeira Borges AF, Komatsu M, Fujii N, Fahrenfort JJ, Miller KJ, Noreika V. Broadband Dynamics Rather than Frequency-Specific Rhythms Underlie Prediction Error in the Primate Auditory Cortex.. [DOI: 10.1101/821942] [Reference Citation Analysis]
|
39 |
Casado-román L, Carbajal GV, Pérez-gonzález D, Malmierca MS. Prediction error signaling explains neuronal mismatch responses in the medial prefrontal cortex.. [DOI: 10.1101/778928] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.3] [Reference Citation Analysis]
|
40 |
Bigelow J, Morrill RJ, Dekloe J, Hasenstaub AR. Movement and VIP Interneuron Activation Differentially Modulate Encoding in Mouse Auditory Cortex. eNeuro 2019;6:ENEURO. [PMID: 31481397 DOI: 10.1523/ENEURO.0164-19.2019] [Cited by in Crossref: 28] [Cited by in F6Publishing: 29] [Article Influence: 7.0] [Reference Citation Analysis]
|
41 |
Lu K, Liu W, Dutta K, Zan P, Fritz JB, Shamma SA. Adaptive Efficient Coding of Correlated Acoustic Properties. J Neurosci 2019;39:8664-78. [PMID: 31519821 DOI: 10.1523/JNEUROSCI.0141-19.2019] [Cited by in Crossref: 6] [Cited by in F6Publishing: 6] [Article Influence: 1.5] [Reference Citation Analysis]
|
42 |
Teichert T, Gurnsey K. Formation and decay of auditory short-term memory in the macaque monkey. J Neurophysiol 2019;121:2401-15. [PMID: 31017849 DOI: 10.1152/jn.00821.2018] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 0.5] [Reference Citation Analysis]
|
43 |
Vinken K, Boix X, Kreiman G. Incorporating neuronal fatigue in deep neural networks captures dynamics of adaptation in neurophysiology and perception.. [DOI: 10.1101/642777] [Reference Citation Analysis]
|
44 |
Parras GG, Valdés-baizabal C, Harms L, Michie P, Malmierca MS. The effect of NMDA-R antagonist, MK-801, on neuronal mismatch along the auditory thalamocortical pathway.. [DOI: 10.1101/636068] [Cited by in Crossref: 1] [Article Influence: 0.3] [Reference Citation Analysis]
|
45 |
Zhai Y, Sun Z, Gong Y, Tang Y, Yu X. Integrative stimulus-specific adaptation of the natural sounds in the auditory cortex of the awake rat. Brain Struct Funct 2019;224:1753-66. [DOI: 10.1007/s00429-019-01880-2] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 1.3] [Reference Citation Analysis]
|
46 |
Wang F, Liu J, Zhang J. Early postnatal noise exposure degrades the stimulus-specific adaptation of neurons in the rat auditory cortex in adulthood. Neuroscience 2019;404:1-13. [DOI: 10.1016/j.neuroscience.2019.01.064] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 1.0] [Reference Citation Analysis]
|
47 |
Camalier CR, Scarim K, Mishkin M, Averbeck BB. A Comparison of Auditory Oddball Responses in Dorsolateral Prefrontal Cortex, Basolateral Amygdala, and Auditory Cortex of Macaque. J Cogn Neurosci 2019;31:1054-64. [PMID: 30883292 DOI: 10.1162/jocn_a_01387] [Cited by in Crossref: 17] [Cited by in F6Publishing: 20] [Article Influence: 4.3] [Reference Citation Analysis]
|
48 |
Carbajal GV, Malmierca MS. The Neuronal Basis of Predictive Coding Along the Auditory Pathway: From the Subcortical Roots to Cortical Deviance Detection. Trends Hear 2018;22:2331216518784822. [PMID: 30022729 DOI: 10.1177/2331216518784822] [Cited by in Crossref: 50] [Cited by in F6Publishing: 62] [Article Influence: 12.5] [Reference Citation Analysis]
|
49 |
Lu K, Liu W, Dutta K, Fritz JB, Shamma SA. Adaptive efficient coding of correlated acoustic properties.. [DOI: 10.1101/548156] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.3] [Reference Citation Analysis]
|
50 |
Malmierca MS, Niño-aguillón BE, Nieto-diego J, Porteros Á, Pérez-gonzález D, Escera C. Pattern-sensitive neurons reveal encoding of complex auditory regularities in the rat inferior colliculus. NeuroImage 2019;184:889-900. [DOI: 10.1016/j.neuroimage.2018.10.012] [Cited by in Crossref: 13] [Cited by in F6Publishing: 11] [Article Influence: 3.3] [Reference Citation Analysis]
|
51 |
Duque D, Pais R, Malmierca MS. Stimulus-specific adaptation in the anesthetized mouse revealed by brainstem auditory evoked potentials. Hearing Research 2018;370:294-301. [DOI: 10.1016/j.heares.2018.08.011] [Cited by in Crossref: 13] [Cited by in F6Publishing: 13] [Article Influence: 2.6] [Reference Citation Analysis]
|
52 |
Rui Y, He J, Zhai Y, Sun Z, Yu X. Frequency-Dependent Stimulus-Specific Adaptation and Regularity Sensitivity in the Rat Auditory Thalamus. Neuroscience 2018;392:13-24. [DOI: 10.1016/j.neuroscience.2018.09.015] [Cited by in Crossref: 10] [Cited by in F6Publishing: 8] [Article Influence: 2.0] [Reference Citation Analysis]
|
53 |
Dong M, Vicario DS. Neural Correlate of Transition Violation and Deviance Detection in the Songbird Auditory Forebrain. Front Syst Neurosci 2018;12:46. [PMID: 30356811 DOI: 10.3389/fnsys.2018.00046] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 1.0] [Reference Citation Analysis]
|
54 |
Demany L, Semal C. Automatic Frequency-Shift Detection in the Auditory System: A Review of Psychophysical Findings. Neuroscience 2018;389:30-40. [DOI: 10.1016/j.neuroscience.2017.08.045] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 0.6] [Reference Citation Analysis]
|
55 |
Lu K, Liu W, Zan P, David SV, Fritz JB, Shamma SA. Implicit Memory for Complex Sounds in Higher Auditory Cortex of the Ferret. J Neurosci 2018;38:9955-66. [PMID: 30266740 DOI: 10.1523/JNEUROSCI.2118-18.2018] [Cited by in Crossref: 8] [Cited by in F6Publishing: 12] [Article Influence: 1.6] [Reference Citation Analysis]
|
56 |
Baghdadi G, Towhidkhah F, Rostami R. A mathematical model to mimic the shape of event related desynchronization/synchronization. J Theor Biol 2018;453:117-24. [PMID: 29802963 DOI: 10.1016/j.jtbi.2018.05.026] [Cited by in Crossref: 5] [Cited by in F6Publishing: 6] [Article Influence: 1.0] [Reference Citation Analysis]
|
57 |
Osman AF, Lee CM, Escabí MA, Read HL. A Hierarchy of Time Scales for Discriminating and Classifying the Temporal Shape of Sound in Three Auditory Cortical Fields. J Neurosci 2018;38:6967-82. [PMID: 29954851 DOI: 10.1523/JNEUROSCI.2871-17.2018] [Cited by in Crossref: 13] [Cited by in F6Publishing: 13] [Article Influence: 2.6] [Reference Citation Analysis]
|
58 |
Polterovich A, Jankowski MM, Nelken I. Deviance sensitivity in the auditory cortex of freely moving rats. PLoS One 2018;13:e0197678. [PMID: 29874246 DOI: 10.1371/journal.pone.0197678] [Cited by in Crossref: 23] [Cited by in F6Publishing: 24] [Article Influence: 4.6] [Reference Citation Analysis]
|
59 |
Kikuchi Y, Sedley W, Griffiths TD, Petkov CI. Evolutionarily conserved neural signatures involved in sequencing predictions and their relevance for language. Curr Opin Behav Sci 2018;21:145-53. [PMID: 30057937 DOI: 10.1016/j.cobeha.2018.05.002] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 1.6] [Reference Citation Analysis]
|
60 |
Camalier CR, Scarim KC, Mishkin M, Averbeck BB. A comparison of auditory oddball responses in dorsolateral prefrontal cortex, basolateral amygdala and auditory cortex of macaque.. [DOI: 10.1101/326280] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 0.2] [Reference Citation Analysis]
|
61 |
Himberger KD, Chien HY, Honey CJ. Principles of Temporal Processing Across the Cortical Hierarchy. Neuroscience 2018;389:161-74. [PMID: 29729293 DOI: 10.1016/j.neuroscience.2018.04.030] [Cited by in Crossref: 43] [Cited by in F6Publishing: 45] [Article Influence: 8.6] [Reference Citation Analysis]
|
62 |
Kurkela JLO, Lipponen A, Kyläheiko I, Astikainen P. Electrophysiological evidence of memory-based detection of auditory regularity violations in anesthetized mice. Sci Rep 2018;8:3027. [PMID: 29445171 DOI: 10.1038/s41598-018-21411-z] [Cited by in Crossref: 24] [Cited by in F6Publishing: 24] [Article Influence: 4.8] [Reference Citation Analysis]
|
63 |
Parras GG, Nieto-Diego J, Carbajal GV, Valdés-Baizabal C, Escera C, Malmierca MS. Neurons along the auditory pathway exhibit a hierarchical organization of prediction error. Nat Commun 2017;8:2148. [PMID: 29247159 DOI: 10.1038/s41467-017-02038-6] [Cited by in Crossref: 145] [Cited by in F6Publishing: 152] [Article Influence: 24.2] [Reference Citation Analysis]
|
64 |
Xu X, Zhai Y, Kou X, Yu X. Adaptation facilitates spatial discrimination for deviant locations in the thalamic reticular nucleus of the rat. Neuroscience 2017;365:1-11. [DOI: 10.1016/j.neuroscience.2017.09.022] [Cited by in Crossref: 5] [Cited by in F6Publishing: 5] [Article Influence: 0.8] [Reference Citation Analysis]
|
65 |
Nishimura M, Takemoto M, Song W. Organization of auditory areas in the superior temporal gyrus of marmoset monkeys revealed by real-time optical imaging. Brain Struct Funct 2018;223:1599-614. [DOI: 10.1007/s00429-017-1574-0] [Cited by in Crossref: 11] [Cited by in F6Publishing: 12] [Article Influence: 1.8] [Reference Citation Analysis]
|
66 |
Ayala YA, Malmierca MS. The effect of inhibition on stimulus-specific adaptation in the inferior colliculus. Brain Struct Funct 2018;223:1391-407. [PMID: 29143124 DOI: 10.1007/s00429-017-1546-4] [Cited by in Crossref: 6] [Cited by in F6Publishing: 11] [Article Influence: 1.0] [Reference Citation Analysis]
|
67 |
Rajendran VG, Teki S, Schnupp JWH. Temporal Processing in Audition: Insights from Music. Neuroscience 2018;389:4-18. [PMID: 29108832 DOI: 10.1016/j.neuroscience.2017.10.041] [Cited by in Crossref: 21] [Cited by in F6Publishing: 22] [Article Influence: 3.5] [Reference Citation Analysis]
|
68 |
Irvine DRF. Plasticity in the auditory system. Hear Res 2018;362:61-73. [PMID: 29126650 DOI: 10.1016/j.heares.2017.10.011] [Cited by in Crossref: 39] [Cited by in F6Publishing: 31] [Article Influence: 6.5] [Reference Citation Analysis]
|
69 |
Valdés-Baizabal C, Parras GG, Ayala YA, Malmierca MS. Endocannabinoid Modulation of Stimulus-Specific Adaptation in Inferior Colliculus Neurons of the Rat. Sci Rep 2017;7:6997. [PMID: 28765608 DOI: 10.1038/s41598-017-07460-w] [Cited by in Crossref: 18] [Cited by in F6Publishing: 18] [Article Influence: 3.0] [Reference Citation Analysis]
|
70 |
Scott BH, Saleem KS, Kikuchi Y, Fukushima M, Mishkin M, Saunders RC. Thalamic connections of the core auditory cortex and rostral supratemporal plane in the macaque monkey. J Comp Neurol 2017;525:3488-513. [PMID: 28685822 DOI: 10.1002/cne.24283] [Cited by in Crossref: 17] [Cited by in F6Publishing: 17] [Article Influence: 2.8] [Reference Citation Analysis]
|
71 |
Sollini J, Mill R, Sumner CJ. Spatial Processing Is Frequency Specific in Auditory Cortex But Not in the Midbrain. J Neurosci 2017;37:6588-99. [PMID: 28559383 DOI: 10.1523/JNEUROSCI.3034-16.2017] [Cited by in Crossref: 7] [Cited by in F6Publishing: 7] [Article Influence: 1.2] [Reference Citation Analysis]
|
72 |
Yarden TS, Nelken I. Stimulus-specific adaptation in a recurrent network model of primary auditory cortex. PLoS Comput Biol 2017;13:e1005437. [PMID: 28288158 DOI: 10.1371/journal.pcbi.1005437] [Cited by in Crossref: 41] [Cited by in F6Publishing: 45] [Article Influence: 6.8] [Reference Citation Analysis]
|
73 |
Vinken K, Vogels R, Op de Beeck H. Recent Visual Experience Shapes Visual Processing in Rats through Stimulus-Specific Adaptation and Response Enhancement. Current Biology 2017;27:914-9. [DOI: 10.1016/j.cub.2017.02.024] [Cited by in Crossref: 42] [Cited by in F6Publishing: 26] [Article Influence: 7.0] [Reference Citation Analysis]
|
74 |
White-schwoch T, Kraus N. The Janus Face of Auditory Learning: How Life in Sound Shapes Everyday Communication. The Frequency-Following Response 2017. [DOI: 10.1007/978-3-319-47944-6_6] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 0.5] [Reference Citation Analysis]
|
75 |
Kurkela JL, Lipponen A, Hämäläinen JA, Näätänen R, Astikainen P. Passive exposure to speech sounds induces long-term memory representations in the auditory cortex of adult rats. Sci Rep 2016;6:38904. [PMID: 27996015 DOI: 10.1038/srep38904] [Cited by in Crossref: 7] [Cited by in F6Publishing: 8] [Article Influence: 1.0] [Reference Citation Analysis]
|