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早期失明中的跨模态可塑性。

Cross-modal plasticity in early blindness.

作者信息

Ptito Maurice, Kupers Ron

机构信息

Ecole d'Optométrie, Université de Montréal, CP 6128, Succursale Centre-ville, Canada.

出版信息

J Integr Neurosci. 2005 Dec;4(4):479-88. doi: 10.1142/s0219635205000951.

Abstract

The brain shows a remarkable capacity to reorganize itself following early sensory deprivation or neonatal brain damage. Using two models of deprivation, we will show that the brain does indeed adjust to the loss of either the visual cortex (which receives most of the retinal inputs through the lateral geniculate bodies of the thalamus) or the eyes (which provide the major input to the visual cortex) through cross-modal plastic processes. Hamsters, deprived of their visual system at birth, develop novel and permanent retinal projections to the auditory thalamus. These projections form functional synapses and project to the auditory cortex. When trained on a visual discrimination task, the "rewired" hamsters perform as well as normal hamsters. Lesions of the auditory cortex produce cortical blindness. Congenitally blind human subjects, trained to discriminate the orientation of a stimulus applied to the tongue via an electrotactile device, show activation of their visual cortex, whereas trained blindfolded controls show only activation of the somatosensory cortex representing the tongue. We propose that in blind subjects, there is an unmasking of existing cortico-cortical (parieto-occipital) connections, enabling transfer of somatosensory information to visual cortex.

摘要

大脑在早期感觉剥夺或新生儿脑损伤后展现出显著的自我重组能力。利用两种剥夺模型,我们将证明大脑确实会通过跨模态可塑性过程来适应视觉皮层(其通过丘脑外侧膝状体接收大部分视网膜输入)或眼睛(其为视觉皮层提供主要输入)的缺失。出生时视觉系统被剥夺的仓鼠会形成新的、永久性的从视网膜到听觉丘脑的投射。这些投射形成功能性突触并投射到听觉皮层。当在视觉辨别任务中接受训练时,“重新布线”的仓鼠表现与正常仓鼠一样好。听觉皮层损伤会导致皮质盲。先天性盲人受试者经过训练,通过电触觉设备辨别施加在舌头上的刺激的方向时,其视觉皮层会被激活,而经过训练的蒙眼对照组仅表现出代表舌头的体感皮层的激活。我们提出,在盲人受试者中,现有的皮质 - 皮质(顶枕)连接被揭示出来,使得体感信息能够转移到视觉皮层。

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