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听觉丘脑纹状体和皮质纹状体通路传递关于声音特征的互补信息。

Auditory Thalamostriatal and Corticostriatal Pathways Convey Complementary Information about Sound Features.

机构信息

Institute of Neuroscience and Department of Biology, University of Oregon, Eugene, Oregon 97403.

Institute of Neuroscience and Department of Biology, University of Oregon, Eugene, Oregon 97403

出版信息

J Neurosci. 2019 Jan 9;39(2):271-280. doi: 10.1523/JNEUROSCI.1188-18.2018. Epub 2018 Nov 20.

Abstract

Multiple parallel neural pathways link sound-related signals to behavioral responses. For instance, the striatum, a brain structure involved in action selection and reward-related learning, receives neuronal projections from both the auditory thalamus and auditory cortex. It is not clear whether sound information that reaches the striatum through these two pathways is redundant or complementary. We used an optogenetic approach in awake mice of both sexes to identify thalamostriatal and corticostriatal neurons during extracellular recordings, and characterized neural responses evoked by sounds of different frequencies and amplitude modulation rates. We found that neurons in both pathways encode sound frequency with similar fidelity, but display different coding strategies for amplitude modulated noise. Whereas corticostriatal neurons provide a more accurate representation of amplitude modulation rate in their overall firing rate, thalamostriatal neurons convey information about the precise timing of acoustic events. These results demonstrate that auditory thalamus and auditory cortex neurons provide complementary information to the striatum, and suggest that these pathways could be differentially recruited depending on the requirements of a sound-driven behavior. Sensory signals from the cerebral cortex and the thalamus converge onto the striatum, a nucleus implicated in reward-related learning. It is not clear whether these two sensory inputs convey redundant or complementary information. By characterizing the sound-evoked responses of thalamostriatal and corticostriatal neurons, our work demonstrates that these neural pathways convey complementary information about the temporal features of sounds. This work opens new avenues for investigating how these pathways could be selectively recruited depending on task demands, and provides a framework for studying convergence of cortical and thalamic information onto the striatum in other sensory systems.

摘要

多条平行的神经通路将与声音相关的信号与行为反应联系起来。例如,纹状体是参与动作选择和与奖励相关的学习的大脑结构,它接收来自听觉丘脑和听觉皮层的神经元投射。目前尚不清楚通过这两条通路到达纹状体的声音信息是冗余的还是互补的。我们使用在觉醒的雌雄小鼠中进行的光遗传学方法,在细胞外记录期间鉴定出丘脑纹状体和皮质纹状体神经元,并对不同频率和幅度调制率的声音进行了特征描述。我们发现,两条通路上的神经元以相似的保真度编码声音频率,但对幅度调制噪声的编码策略不同。虽然皮质纹状体神经元在其整体放电率中提供了更准确的幅度调制率表示,但丘脑纹状体神经元传递有关声事件精确时间的信息。这些结果表明,听觉丘脑和听觉皮层神经元向纹状体提供了互补的信息,并且表明这些通路可能根据声音驱动行为的要求而被不同程度地招募。来自大脑皮层和丘脑的感觉信号汇聚到纹状体,纹状体是与奖励相关的学习中涉及的核。目前尚不清楚这两个感觉输入是否传递冗余或互补信息。通过对丘脑纹状体和皮质纹状体神经元的声音诱发反应进行特征描述,我们的工作表明,这些神经通路传递有关声音时间特征的互补信息。这项工作为研究这些通路如何根据任务需求选择性地被招募开辟了新的途径,并为研究皮质和丘脑信息在其他感觉系统中汇聚到纹状体提供了一个框架。

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