首页> 美国卫生研究院文献>The Journal of Neuroscience >Spatiotemporal Profile of Voltage-Sensitive Dye Responses in the Visual Cortex of Tree Shrews Evoked by Electric Microstimulation of the Dorsal Lateral Geniculate and Pulvinar Nuclei
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Spatiotemporal Profile of Voltage-Sensitive Dye Responses in the Visual Cortex of Tree Shrews Evoked by Electric Microstimulation of the Dorsal Lateral Geniculate and Pulvinar Nuclei

机译:背侧细小神经和鼓状核的电微刺激引起的树Sh视觉皮层中电压敏感染料响应的时空分布

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摘要

The primary visual cortex (V1) receives its main thalamic drive from the dorsal lateral geniculate nucleus (dLGN) through synaptic contacts terminating primarily in cortical layer IV. In contrast, the projections from the pulvinar nucleus to the cortex are less clearly defined. The pulvinar projects predominantly to layer I in V1, and layer IV in extrastriate areas. These projection patterns suggest that the pulvinar nucleus most strongly influences (drives) activity in cortical areas beyond V1. Should this hypothesis be true, one would expect the spatiotemporal responses evoked by pulvinar activation to be different in V1 and extrastriate areas, reflecting the different connectivity patterns. We investigated this issue by analyzing the spatiotemporal dynamics of cortical visual areas' activity following thalamic electrical microstimulation in tree shrews, using optical imaging and voltage-sensitive dyes. As expected, electrical stimulation of the dLGN induced fast and local responses in V1, as well as in extrastriate and contralateral cortical areas. In contrast, electrical stimulation of the pulvinar induced fast and local responses in extrastriate areas, followed by weak and diffuse activation in V1 and contralateral cortical areas. This study highlights spatiotemporal cortical activation characteristics induced by stimulation of first (dLGN) and high-order (pulvinar) thalamic nuclei.>SIGNIFICANCE STATEMENT The pulvinar nucleus represents the main extrageniculate thalamic visual structure in higher-order mammals, but its exact role remains enigmatic. The pulvinar receive prominent inputs from virtually all visual cortical areas. Cortico-thalamo-cortical pathways through the pulvinar nuclei may then provide a complementary route for corticocortical information flow. One step toward the understanding of the role of transthalamic corticocortical pathways is to determine the nature of the signals transmitted between the cortex and the thalamus. By performing, for the first time, high spatiotemporal mesoscopic imaging on tree shrews (the primate's closest relative) through the combination of voltage-sensitive dye recordings and brain stimulation, we revealed clear evidence of distinct thalamocortical functional connectivity pattern originating from the geniculate nucleus and the pulvinar nuclei.
机译:初级视觉皮层(V1)通过主要终止于皮层IV的突触接触从背外侧膝状核(dLGN)获得其主要丘脑驱动力。相反,从髓核到皮层的投影不太清楚。髓腔主要投射到V1的第I层,而在边缘区域突出到IV层。这些投影模式表明,髓核最强烈地影响(驱动)V1以外的皮质区域的活动。如果这个假设是正确的,那么人们就会期望在V1和边缘区域中,髓核激活引起的时空响应会有所不同,反映出不同的连通性模式。我们通过使用光学成像和压敏染料分析丘脑中的丘脑电微刺激后皮层视觉区域活动的时空动态,从而研究了这一问题。不出所料,dLGN的电刺激可在V1以及上皮和对侧皮层区域引起快速和局部反应。相比之下,电刺激髓腔会在纹状体区域引起快速和局部反应,随后在V1和对侧皮质区域中出现弱而弥漫的激活。这项研究强调了第一(dLGN)和高级(丘脑)丘脑核的刺激所引起的时空皮质激活特征。>意义声明但是它的确切作用仍然是个谜。髓腔几乎从所有视觉皮层区域接受重要输入。穿过丘脑核的皮质-丘脑-皮质途径可为皮质信息流提供补充途径。理解丘脑皮层皮质通路的作用的第一步是确定皮层和丘脑之间传递的信号的性质。通过首次通过电压敏感染料记录和大脑刺激相结合,对树sh(灵长类的最接近的亲属)进行高时空介观成像,我们揭示了清楚的证据,证明丘脑皮层功能连接模式源自膝状核和髓核。

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