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通过激活病毒载体表达的盐细菌视紫红质对皮质下视觉通路中的突触传递进行选择性光学控制。

Selective optical control of synaptic transmission in the subcortical visual pathway by activation of viral vector-expressed halorhodopsin.

机构信息

Department of Developmental Physiology, National Institute for Physiological Sciences, Okazaki, Japan.

出版信息

PLoS One. 2011 Apr 5;6(4):e18452. doi: 10.1371/journal.pone.0018452.

Abstract

The superficial layer of the superior colliculus (sSC) receives visual inputs via two different pathways: from the retina and the primary visual cortex. However, the functional significance of each input for the operation of the sSC circuit remains to be identified. As a first step toward understanding the functional role of each of these inputs, we developed an optogenetic method to specifically suppress the synaptic transmission in the retino-tectal pathway. We introduced enhanced halorhodopsin (eNpHR), a yellow light-sensitive, membrane-targeting chloride pump, into mouse retinal ganglion cells (RGCs) by intravitreously injecting an adeno-associated virus serotype-2 vector carrying the CMV-eNpHR-EYFP construct. Several weeks after the injection, whole-cell recordings made from sSC neurons in slice preparations revealed that yellow laser illumination of the eNpHR-expressing retino-tectal axons, putatively synapsing onto the recorded cells, effectively inhibited EPSCs evoked by electrical stimulation of the optic nerve layer. We also showed that sSC spike activities elicited by visual stimulation were significantly reduced by laser illumination of the sSC in anesthetized mice. These results indicate that photo-activation of eNpHR expressed in RGC axons enables selective blockade of retino-tectal synaptic transmission. The method established here can most likely be applied to a variety of brain regions for studying the function of individual inputs to these regions.

摘要

上丘浅层(sSC)通过两条不同的通路接收视觉输入:来自视网膜和初级视觉皮层。然而,每个输入对 sSC 回路运行的功能意义仍有待确定。为了了解这些输入的每个输入的功能作用,我们开发了一种光遗传学方法来特异性抑制视网膜-丘脑通路中的突触传递。我们通过玻璃体内注射携带 CMV-eNpHR-EYFP 构建体的腺相关病毒血清型 2 载体,将增强型 halorhodopsin(eNpHR)引入小鼠视网膜神经节细胞(RGC)中。注射后数周,在切片制剂中从 sSC 神经元进行全细胞记录显示,黄色激光照射表达 eNpHR 的视网膜-丘脑轴突,推测与记录细胞突触,有效地抑制了视神经层电刺激诱发的 EPSC。我们还表明,在麻醉小鼠中,视觉刺激引起的 sSC 尖峰活动可通过 sSC 的激光照射显著减少。这些结果表明,在 RGC 轴突中表达的 eNpHR 的光激活能够选择性阻断视网膜-丘脑突触传递。这里建立的方法很可能适用于各种脑区,用于研究这些脑区的单个输入的功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4192/3071716/1c68e8b08bb4/pone.0018452.g001.jpg

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