Magnitude, time course, and specificity of rapid adaptation across mouse visual areas

被引:11
作者
Jin, Miaomiao [1 ]
Glickfeld, Lindsey L. [1 ]
机构
[1] Duke Univ, Med Ctr, Dept Neurobiol, Durham, NC 27710 USA
关键词
extracellular electrophysiology; higher visual areas; history dependence; primary visual cortex; superior colliculus; TERM SYNAPTIC PLASTICITY; RETINAL GANGLION-CELLS; SUPERIOR COLLICULUS; CONTRAST ADAPTATION; SENSORY ADAPTATION; FUNCTIONAL SPECIALIZATION; DIFFERENTIAL DEPRESSION; GAIN-CONTROL; CORTEX; ORIENTATION;
D O I
10.1152/jn.00758.2019
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Adaptation is a ubiquitous feature of sensory processing whereby recent experience shapes future responses. The mouse primary visual cortex (V1) is particularly sensitive to recent experience, where a brief stimulus can suppress subsequent responses for seconds. This rapid adaptation profoundly impacts perception, suggesting that its effects are propagated along the visual hierarchy. To understand how rapid adaptation influences sensory processing, we measured its effects at key nodes in the visual system: in V1, three higher visual areas (HVAs: lateromedial, anterolateral, and posteromedial), and the superior colliculus (SC) in awake mice of both sexes using single-unit recordings. Consistent with the feed-forward propagation of adaptation along the visual hierarchy, we find that neurons in layer 4 adapt less strongly than those in other layers of VI. Furthermore, neurons in the HVAs adapt more strongly, and recover more slowly, than those in V1. The magnitude and time course of adaptation was comparable in each of the HVAs and in the SC. suggesting that adaptation may not linearly accumulate along the feed-forward visual processing hierarchy. Despite the increase in adaptation in the HVAs compared with V1, the effects were similarly orientation specific across all areas. These data reveal that adaptation profoundly shapes cortical processing. with increasing impact at higher levels in the cortical hierarchy, and also strongly influencing computations in the SC. Thus, we find robust, brain-wide effects of rapid adaptation on sensory processing. NEW & NOTEWORTHY Rapid adaptation dynamically alters sensory signals to account for recent experience. To understand how adaptation affects sensory processing and perception. we must determine how it impacts the diverse set of cortical and subcortical areas along the hierarchy of the mouse visual system. We find that rapid adaptation strongly impacts neurons in primary visual cortex, the higher visual areas, and the colliculus, consistent with its profound effects on behavior.
引用
收藏
页码:245 / 258
页数:14
相关论文
共 95 条
[31]   A Cortical Circuit for Gain Control by Behavioral State [J].
Fu, Yu ;
Tucciarone, Jason M. ;
Espinosa, J. Sebastian ;
Sheng, Nengyin ;
Darcy, Daniel P. ;
Nicoll, Roger A. ;
Huang, Z. Josh ;
Stryker, Michael P. .
CELL, 2014, 156 (06) :1139-1152
[32]   Somatosensory integration controlled by dynamic thalamocortical feed-forward inhibition [J].
Gabernet, L ;
Jadhav, SP ;
Feldman, DE ;
Carandini, M ;
Scanziani, M .
NEURON, 2005, 48 (02) :315-327
[33]   Distinct Representation and Distribution of Visual Information by Specific Cell Types in Mouse Superficial Superior Colliculus [J].
Gale, Samuel D. ;
Murphy, Gabe J. .
JOURNAL OF NEUROSCIENCE, 2014, 34 (40) :13458-13471
[34]   Intensity-Dependent Adaptation of Cortical and Thalamic Neurons Is Controlled by Brainstem Circuits of the Sensory Pathway [J].
Ganmor, Elad ;
Katz, Yonatan ;
Lampl, Ilan .
NEURON, 2010, 66 (02) :273-286
[35]   Higher-Order Areas of the Mouse Visual Cortex [J].
Glickfeld, Lindsey L. ;
Olsen, Shawn R. .
ANNUAL REVIEW OF VISION SCIENCE, VOL 3, 2017, 3 :251-273
[36]   The neocortical circuit: themes and variations [J].
Harris, Kenneth D. ;
Shepherd, Gordon M. G. .
NATURE NEUROSCIENCE, 2015, 18 (02) :170-181
[37]   Shift in the Balance between Excitation and Inhibition during Sensory Adaptation of S1 Neurons [J].
Heiss, Jaime E. ;
Katz, Yonatan ;
Ganmor, Elad ;
Lampl, Ilan .
JOURNAL OF NEUROSCIENCE, 2008, 28 (49) :13320-13330
[38]   Balanced excitation and inhibition determine spike timing during frequency adaptation [J].
Higley, MJ ;
Contreras, D .
JOURNAL OF NEUROSCIENCE, 2006, 26 (02) :448-457
[39]   DEPTH SEGREGATION OF RETINAL GANGLION-CELLS PROJECTING TO MOUSE SUPERIOR COLLICULUS [J].
HOFBAUER, A ;
DRAGER, UC .
JOURNAL OF COMPARATIVE NEUROLOGY, 1985, 234 (04) :465-474
[40]   The Mouse Superior Colliculus: An Emerging Model for Studying Circuit Formation and Function [J].
Ito, Shinya ;
Feldheim, David A. .
FRONTIERS IN NEURAL CIRCUITS, 2018, 12