Suppr超能文献

在运动过程中增强小鼠背侧听觉场中细胞类型特异性神经元反应的调制。

Enhanced modulation of cell-type specific neuronal responses in mouse dorsal auditory field during locomotion.

机构信息

Institute of Cognitive Neurology and Dementia Research, Otto-von-Guericke-University Magdeburg, Leipziger Str. 44, 39120, Magdeburg, Germany; German Centre for Neurodegenerative Diseases, Leipziger Str. 44, 39120, Magdeburg, Germany.

Institute of Cognitive Neurology and Dementia Research, Otto-von-Guericke-University Magdeburg, Leipziger Str. 44, 39120, Magdeburg, Germany; German Centre for Neurodegenerative Diseases, Leipziger Str. 44, 39120, Magdeburg, Germany; Cognitive Neurophysiology group, Leibniz Institute for Neurobiology (LIN), 39118, Magdeburg, Germany.

出版信息

Cell Calcium. 2021 Jun;96:102390. doi: 10.1016/j.ceca.2021.102390. Epub 2021 Mar 17.

Abstract

As we move through the environment we experience constantly changing sensory input that must be merged with our ongoing motor behaviors - creating dynamic interactions between our sensory and motor systems. Active behaviors such as locomotion generally increase the sensory-evoked neuronal activity in visual and somatosensory cortices, but evidence suggests that locomotion largely suppresses neuronal responses in the auditory cortex. However, whether this effect is ubiquitous across different anatomical regions of the auditory cortex is largely unknown. In mice, auditory association fields such as the dorsal auditory cortex (AuD), have been shown to have different physiological response properties, protein expression patterns, and cortical as well as subcortical connections, in comparison to primary auditory regions (A1) - suggesting there may be important functional differences. Here we examined locomotion-related modulation of neuronal activity in cortical layers ⅔ of AuD and A1 using two-photon Ca imaging in head-fixed behaving mice that are able to freely run on a spherical treadmill. We determined the proportion of neurons in these two auditory regions that show enhanced and suppressed sensory-evoked responses during locomotion and quantified the depth of modulation. We found that A1 shows more suppression and AuD more enhanced responses during locomotion periods. We further revealed differences in the circuitry between these auditory regions and motor cortex, and found that AuD is more highly connected to motor cortical regions. Finally, we compared the cell-type specific locomotion-evoked modulation of responses in AuD and found that, while subpopulations of PV-expressing interneurons showed heterogeneous responses, the population in general was largely suppressed during locomotion, while excitatory population responses were generally enhanced in AuD. Therefore, neurons in primary and dorsal auditory fields have distinct response properties, with dorsal regions exhibiting enhanced activity in response to movement. This functional distinction may be important for auditory processing during navigation and acoustically guided behavior.

摘要

当我们在环境中移动时,我们会不断地体验到不断变化的感觉输入,这些输入必须与我们正在进行的运动行为融合在一起——在我们的感觉和运动系统之间产生动态的相互作用。像运动这样的主动行为通常会增加视觉和体感皮层中感觉诱发的神经元活动,但有证据表明,运动在很大程度上抑制了听觉皮层中的神经元反应。然而,这种效应是否在听觉皮层的不同解剖区域普遍存在还知之甚少。在小鼠中,与初级听觉区域(A1)相比,背侧听觉皮层(AuD)等听觉联合区域已被证明具有不同的生理反应特性、蛋白质表达模式以及皮质和皮质下连接,这表明可能存在重要的功能差异。在这里,我们使用头固定在行为小鼠上的双光子 Ca 成像技术,检查了在自由在球形跑步机上奔跑的小鼠中,听觉皮层第 ⅔ 层的神经元活动与运动相关的调制。我们确定了这两个听觉区域中在运动期间表现出增强和抑制感觉诱发反应的神经元的比例,并量化了调制的深度。我们发现,A1 在运动期间显示出更多的抑制,AuD 显示出更多的增强反应。我们进一步揭示了这些听觉区域与运动皮层之间的电路差异,并发现 AuD 与运动皮层区域的连接更为紧密。最后,我们比较了 AuD 和运动诱发反应的细胞类型特异性调制,发现虽然表达 PV 的中间神经元的亚群表现出异质反应,但总体而言,在运动期间,该群体受到很大抑制,而兴奋群体的反应在 AuD 中通常增强。因此,初级和背侧听觉区域的神经元具有不同的反应特性,背侧区域对运动表现出增强的活性。这种功能上的区别可能对导航和声音引导行为期间的听觉处理很重要。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验