Learning-induced plasticity in auditory spatial representations revealed by electrical neuroimaging

被引:54
|
作者
Spierer, Lucas
Tardif, Eric
Sperdin, Holger F.
Murray, Micah M.
Clarke, Stephanie
机构
[1] Ctr Biomed Imaging Lausanne & Geneva, EEG Core, CH-1011 Lausanne, Switzerland
[2] Vaudois Univ, Ctr Hosp, Funct Elect Neuroimaging Lab, Neuropsychol & Neurorehabil SErv, CH-1011 Lausanne, Switzerland
[3] Vaudois Univ, Ctr Hosp, Funct Elect Neuroimaging Lab, Radiol Serv, CH-1011 Lausanne, Switzerland
来源
JOURNAL OF NEUROSCIENCE | 2007年 / 27卷 / 20期
关键词
electroencephalography (EEG); auditory-evoked potential (AEP); electrical brain imaging; spatial; interaural time difference (ITD); training; plasticity; sound localization; mismatch negativity (MMN);
D O I
10.1523/JNEUROSCI.0764-07.2007
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Auditory spatial representations are likely encoded at a population level within human auditory cortices. We investigated learning-induced plasticity of spatial discrimination in healthy subjects using auditory-evoked potentials ( AEPs) and electrical neuroimaging analyses. Stimuli were 100 ms white-noise bursts lateralized with varying interaural time differences. In three experiments, plasticity was induced with 40 min of discrimination training. During training, accuracy significantly improved from near-chance levels to similar to 75%. Before and after training, AEPs were recorded to stimuli presented passively with a more medial sound lateralization outnumbering a more lateral one ( 7: 1). In experiment 1, the same lateralizations were used for training and AEP sessions. Significant AEP modulations to the different lateralizations were evident only after training, indicative of a learning-induced mismatch negativity ( MMN). More precisely, this MMN at 195-250 ms after stimulus onset followed from differences in the AEP topography to each stimulus position, indicative of changes in the underlying brain network. In experiment 2, mirror-symmetric locations were used for training and AEP sessions; no training-related AEP modulations or MMN were observed. In experiment 3, the discrimination of trained plus equidistant untrained separations was tested psychophysically before and 0, 6, 24, and 48 h after training. Learning-induced plasticity lasted < 6 h, did not generalize to untrained lateralizations, and was not the simple result of strengthening the representation of the trained lateralizations. Thus, learning-induced plasticity of auditory spatial discrimination relies on spatial comparisons, rather than a spatial anchor or a general comparator. Furthermore, cortical auditory representations of space are dynamic and subject to rapid reorganization.
引用
收藏
页码:5474 / 5483
页数:10
相关论文
共 50 条
  • [31] Learning-induced modulation of the effect of neuroglial transmission on synaptic plasticity
    Jammal, Luna
    Whalley, Ben
    Barkai, Edi
    JOURNAL OF NEUROPHYSIOLOGY, 2018, 119 (06) : 2373 - 2379
  • [32] Learning-induced plasticity of cortical representations does not affect GAD65 mRNA expression and immunolabeling of cortical neuropil
    Lech, M
    Skibinska, A
    Siucinska, E
    Kossut, M
    BRAIN RESEARCH, 2005, 1044 (02) : 266 - 271
  • [34] Learning-induced intrinsic and synaptic plasticity in the rodent medial prefrontal cortex
    Porter, James T.
    Sepulveda-Orengo, Marian T.
    NEUROBIOLOGY OF LEARNING AND MEMORY, 2020, 169
  • [35] Learning-induced sensory plasticity: Rate code, temporal code, or both?
    Edeline, JM
    AUDITORY SIGNAL PROCESSINGP: PHYSIOLOGY, PSYCHOACOUSTICS, AND MODELS, 2005, : 495 - 500
  • [36] Automatic and intrinsic auditory "what" and "where" processing in humans revealed by electrical neuroimaging
    De Santis, Laura
    Clarke, Stephanie
    Murray, Micah M.
    CEREBRAL CORTEX, 2007, 17 (01) : 9 - 17
  • [37] CONDITIONED CHANGES IN THE BASAL FOREBRAIN - RELATIONS WITH LEARNING-INDUCED CORTICAL PLASTICITY
    MAHO, C
    HARS, B
    EDELINE, JM
    HENNEVIN, E
    PSYCHOBIOLOGY, 1995, 23 (01) : 10 - 25
  • [38] Neural mechanisms of operant conditioning and learning-induced behavioral plasticity in Aplysia
    Nargeot, Romuald
    Simmers, John
    CELLULAR AND MOLECULAR LIFE SCIENCES, 2011, 68 (05) : 803 - 816
  • [39] Neural mechanisms of operant conditioning and learning-induced behavioral plasticity in Aplysia
    Romuald Nargeot
    John Simmers
    Cellular and Molecular Life Sciences, 2011, 68 : 803 - 816
  • [40] Learning-Induced Plasticity in Medial Prefrontal Cortex Predicts Preference Malleability
    Garvert, Mona M.
    Moutoussis, Michael
    Kurth-Nelson, Zeb
    Behrens, Timothy E. J.
    Dolan, Raymond J.
    NEURON, 2015, 85 (02) : 418 - 428