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一个兴奋性皮质反馈回路控制着啮齿动物丘脑的视网膜波传播。

An excitatory cortical feedback loop gates retinal wave transmission in rodent thalamus.

作者信息

Murata Yasunobu, Colonnese Matthew T

机构信息

Department of Pharmacology and Physiology, George Washington University, Washington, United States.

Institute for Neuroscience, George Washington University, Washington, United States.

出版信息

Elife. 2016 Oct 11;5:e18816. doi: 10.7554/eLife.18816.

Abstract

Spontaneous retinal waves are critical for the development of receptive fields in visual thalamus (LGN) and cortex (VC). Despite a detailed understanding of the circuit specializations in retina that generate waves, whether central circuit specializations also exist to control their propagation through visual pathways of the brain is unknown. Here we identify a developmentally transient, corticothalamic amplification of retinal drive to thalamus as a mechanism for retinal wave transmission in the infant rat brain. During the period of retinal waves, corticothalamic connections excite LGN, rather than driving feedforward inhibition as observed in the adult. This creates an excitatory feedback loop that gates retinal wave transmission through the LGN. This cortical multiplication of retinal wave input ends just prior to eye-opening, as cortex begins to inhibit LGN. Our results show that the early retino-thalamo-cortical circuit uses developmentally specialized feedback amplification to ensure powerful, high-fidelity transmission of retinal activity despite immature connectivity.

摘要

自发性视网膜波对于视觉丘脑(外侧膝状体核,LGN)和皮层(视皮层,VC)中感受野的发育至关重要。尽管我们已经详细了解了视网膜中产生这些波的回路特化情况,但尚不清楚中枢回路是否也存在特化机制来控制它们在大脑视觉通路中的传播。在这里,我们确定了一种发育过程中短暂出现的、从皮层到丘脑的视网膜驱动放大现象,这是幼鼠大脑中视网膜波传播的一种机制。在视网膜波出现期间,皮层丘脑连接会兴奋外侧膝状体核,而不是像在成年动物中观察到的那样驱动前馈抑制。这就形成了一个兴奋性反馈回路,控制着视网膜波通过外侧膝状体核的传播。随着视皮层开始抑制外侧膝状体核,这种视网膜波输入的皮层放大作用恰好在睁眼之前结束。我们的研究结果表明,早期的视网膜 - 丘脑 - 皮层回路利用发育特化的反馈放大机制,确保尽管连接不成熟,但视网膜活动仍能进行强大且高保真的传递。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/25cd/5059135/f99212b85a6f/elife-18816-fig1.jpg

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