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Immersive audiomotor game play enhances neural and perceptual salience of weak signals in noise.沉浸式听动游戏增强了噪声中弱信号的神经和感知显著性。
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Frontal cortex activation causes rapid plasticity of auditory cortical processing.前额叶皮层的激活导致听觉皮层处理的快速可塑性。
J Neurosci. 2013 Nov 13;33(46):18134-48. doi: 10.1523/JNEUROSCI.0180-13.2013.
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眶额皮质神经元对声音作出反应,并激活初级听觉皮层神经元。

Orbitofrontal Cortex Neurons Respond to Sound and Activate Primary Auditory Cortex Neurons.

机构信息

Institute for Systems Research, University of Maryland, College Park, MD 20742, USA.

Department of Biology, University of Maryland, College Park, MD 20742, USA.

出版信息

Cereb Cortex. 2018 Mar 1;28(3):868-879. doi: 10.1093/cercor/bhw409.

DOI:10.1093/cercor/bhw409
PMID:28069762
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6059099/
Abstract

Sensory environments change over a wide dynamic range and sensory processing can change rapidly to facilitate stable perception. While rapid changes may occur throughout the sensory processing pathway, cortical changes are believed to profoundly influence perception. Prior stimulation studies showed that orbitofrontal cortex (OFC) can modify receptive fields and sensory coding in A1, but the engagement of OFC during listening and the pathways mediating OFC influences on A1 are unknown. We show in mice that OFC neurons respond to sounds consistent with a role of OFC in audition. We then show in vitro that OFC axons are present in A1 and excite pyramidal and GABAergic cells in all layers of A1 via glutamatergic synapses. Optogenetic stimulation of OFC terminals in A1 in vivo evokes short-latency neural activity in A1 and pairing activation of OFC projections in A1 with sounds alters sound-evoked A1 responses. Together, our results identify a direct connection from OFC to A1 that can excite A1 neurons at the earliest stage of cortical processing, and thereby sculpt A1 receptive fields. These results are consistent with a role for OFC in adjusting to changing behavioral relevance of sensory inputs and modulating A1 receptive fields to enhance sound processing.

摘要

感觉环境在很宽的动态范围内变化,而感觉处理可以迅速改变,以促进稳定的感知。虽然快速变化可能发生在整个感觉处理途径中,但皮质变化被认为会深刻影响感知。先前的刺激研究表明,眶额皮层(OFC)可以改变 A1 的感受野和感觉编码,但在听觉过程中 OFC 的参与以及介导 OFC 对 A1 影响的途径尚不清楚。我们在小鼠中表明,OFC 神经元对与 OFC 在听觉中的作用一致的声音有反应。然后,我们在体外表明,OFC 轴突存在于 A1 中,并通过谷氨酸能突触兴奋 A1 中所有层的锥体和 GABA 能细胞。在体光遗传刺激 A1 中的 OFC 末梢会在 A1 中引起短潜伏期的神经活动,并且将 A1 中的 OFC 投射的激活与声音配对会改变声音诱发的 A1 反应。总之,我们的结果确定了从 OFC 到 A1 的直接连接,该连接可以在皮质处理的最早阶段兴奋 A1 神经元,从而塑造 A1 的感受野。这些结果与 OFC 在调整感觉输入的不断变化的行为相关性以及调节 A1 感受野以增强声音处理方面的作用一致。