Top-down gain control of the auditory space map by gaze control circuitry in the barn owl

被引:86
|
作者
Winkowski, DE [1 ]
Knudsen, EI [1 ]
机构
[1] Stanford Univ, Dept Neurobiol, Stanford, CA 94305 USA
关键词
D O I
10.1038/nature04411
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
High-level circuits in the brain that control the direction of gaze are intimately linked with the control of visual spatial attention(1-5). Immediately before an animal directs its gaze towards a stimulus, both psychophysical sensitivity to that visual stimulus and the responsiveness of high-order neurons in the cerebral cortex that represent the stimulus increase dramatically(3,6,7). Equivalent effects on behavioural sensitivity and neuronal responsiveness to visual stimuli result from focal electrical microstimulation of gaze control centres in monkeys(8-11). Whether the gaze control system modulates neuronal responsiveness in sensory modalities other than vision is unknown. Here we show that electrical microstimulation applied to gaze control circuitry in the forebrain of barn owls regulates the gain of midbrain auditory responses in an attention-like manner. When the forebrain circuit was activated, midbrain responses to auditory stimuli at the location encoded by the forebrain site were enhanced and spatial selectivity was sharpened. The same stimulation suppressed responses to auditory stimuli represented at other locations in the midbrain map. Such space-specific, top-down regulation of auditory responses by gaze control circuitry in the barn owl suggests that the central nervous system uses a common strategy for dynamically regulating sensory gain that applies across modalities, brain areas and classes of vertebrate species. This approach provides a path for discovering mechanisms that underlie top-down gain control in the central nervous system.
引用
收藏
页码:336 / 339
页数:4
相关论文
共 50 条
  • [31] Top-down control in tropical forests
    Brewer, SW
    Rejmanek, M
    Johnstone, EE
    Caro, TM
    BIOTROPICA, 1997, 29 (03) : 364 - 367
  • [32] Top-down control of visual attention
    Noudoost, Behrad
    Chang, Mindy H.
    Steinmetz, Nicholas A.
    Moore, Tirin
    CURRENT OPINION IN NEUROBIOLOGY, 2010, 20 (02) : 183 - 190
  • [33] A buffer control method for top-down project control
    Martens, Annelies
    Vanhoucke, Mario
    EUROPEAN JOURNAL OF OPERATIONAL RESEARCH, 2017, 262 (01) : 274 - 286
  • [34] Top-down attention control at feature space for robust pattern recognition
    Lee, SI
    Lee, SY
    BIOLOGICALLY MOTIVATED COMPUTER VISION, PROCEEDING, 2000, 1811 : 129 - 138
  • [35] Early life exposure to noise alters the representation of auditory localization cues in the auditory space map of the barn owl
    Efrati, Adi
    Gutfreund, Yoram
    JOURNAL OF NEUROPHYSIOLOGY, 2011, 105 (05) : 2522 - 2535
  • [36] Topographic projection from the optic tectum to the auditory space map in the inferior colliculus of the barn owl
    Hyde, PS
    Knudsen, EI
    JOURNAL OF COMPARATIVE NEUROLOGY, 2000, 421 (02) : 146 - 160
  • [37] Top-Down Control of Gestalt Motion Perception
    Nobre, Alexandre de Pontes
    Nikolaev, Andrey R.
    Van Leeuwen, Cees
    Wagemans, Johan
    PERCEPTION, 2019, 48 : 159 - 160
  • [38] Verbal instructions and top-down saccade control
    Mosimann, UP
    Felblinger, J
    Colloby, SJ
    Müri, RM
    EXPERIMENTAL BRAIN RESEARCH, 2004, 159 (02) : 263 - 267
  • [39] Impulsivity, Compulsivity, and Top-Down Cognitive Control
    Dalley, Jeffrey W.
    Everitt, Barry J.
    Robbins, Trevor W.
    NEURON, 2011, 69 (04) : 680 - 694
  • [40] The neural mechanisms of top-down attentional control
    J. B. Hopfinger
    M. H. Buonocore
    G. R. Mangun
    Nature Neuroscience, 2000, 3 : 284 - 291