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V1 中的眼优势柱比相关的胼胝体贴片更容易受到关键期和关键前期间眼输入不平衡的影响。

Ocular dominance columns in V1 are more susceptible than associated callosal patches to imbalance of eye input during precritical and critical periods.

机构信息

Department of Psychology, and Behavior and Neuroscience Program, University of Washington, Seattle, Washington, USA.

出版信息

J Comp Neurol. 2021 Aug 1;529(11):2883-2910. doi: 10.1002/cne.25134. Epub 2021 Mar 17.

Abstract

In Long Evans rats, ocular dominance columns (ODCs) in V1 overlap with patches of callosal connections. Using anatomical tracers, we found that ODCs and callosal patches are present at postnatal day 10 (P10), several days before eye opening, and about 10 days before the activation of the critical period for ocular dominance plasticity (~P20). In rats monocularly enucleated at P10 and perfused ~P20, ODCs ipsilateral to the remaining eye desegregated, indicating that rat ODCs are highly susceptible to monocular enucleation during a precritical period. Monocular enucleation during the critical period exerted significant, although smaller, effects. Monocular eye lid suture during the critical period led to a significant expansion of the ipsilateral projection from the nondeprived eye, whereas the contralateral projection invaded into, and intermixed with, ipsilateral ODCs innervated by the deprived eye. We propose that this intermixing allows callosal connections to contribute to the effects of monocular deprivation assessed in the hemisphere ipsilateral to the nondeprived eye. The ipsilateral and contralateral projections from the deprived eye did not undergo significant shrinkage. In contrast, we found that callosal patches are less susceptible to imbalance of eye input. In rats monocularly enucleated during either the precritical or critical periods, callosal patches were maintained in the hemisphere ipsilateral to the remaining eye, but desegregated in the hemisphere ipsilateral to the enucleated orbit. Callosal patches were maintained in rats binocularly enucleated at P10 or later. Similarly, monocular deprivation during the critical period had no significant effect on callosal patches in either hemisphere.

摘要

在长爪沙鼠中,V1 中的眼优势柱(ODC)与胼胝体连接的斑块重叠。使用解剖示踪剂,我们发现 ODC 和胼胝体斑块在出生后第 10 天(P10)出现,这比眼睛睁开早几天,比眼优势可塑性的关键期(约 P20)激活早约 10 天。在 P10 时单眼去神经的大鼠中,约 P20 时灌注,对侧眼的 ODC 去分化,表明大鼠 ODC 在关键前期对单眼去神经非常敏感。在关键期进行单眼去神经作用虽小,但仍有显著效果。在关键期进行单侧眼脸缝合导致来自非剥夺眼的同侧投射显著扩大,而对侧投射则侵入并与被剥夺眼支配的同侧 ODC 混合。我们提出,这种混合使胼胝体连接能够有助于评估非剥夺眼半球中单侧剥夺的影响。未剥夺眼的同侧和对侧投射没有发生显著萎缩。相比之下,我们发现胼胝体斑块对眼输入的不平衡不太敏感。在 P10 或之后的任何时间进行单侧去神经的大鼠中,无论在关键前期还是关键期进行单侧去神经,保留了剩余眼同侧半球的胼胝体斑块,但在去神经眼同侧半球发生了分离。在 P10 时双眼去神经的大鼠中保留了胼胝体斑块。同样,在关键期进行单侧剥夺对两个半球的胼胝体斑块均无显著影响。

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