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聋人颞上回白质连接的敏感期。

Sensitive period for white-matter connectivity of superior temporal cortex in deaf people.

机构信息

State Key Laboratory of Cognitive Neuroscience and Learning, Beijing Normal University, Beijing 100875, China.

出版信息

Hum Brain Mapp. 2012 Feb;33(2):349-59. doi: 10.1002/hbm.21215. Epub 2011 Mar 9.

Abstract

Previous studies have shown that white matter in the deaf brain changes due to hearing loss. However, how white-matter development is influenced by early hearing experience of deaf people is still unknown. Using diffusion tensor imaging and tract-based spatial statistics, we compared white-matter structures among three groups of subjects including 60 congenitally deaf individuals, 36 acquired deaf (AD) individuals, and 38 sex- and age-matched hearing controls (HC). The result showed that the deaf individuals had significantly reduced fractional anisotropy (FA) values in bilateral superior temporal cortex and the splenium of corpus callosum compared to HC. The reduction of FA values in acquired deafness correlated with onset age of deafness, but not the duration of deafness. To explore the underlying mechanism of FA changes in the deaf groups, we further analyzed radial and axial diffusivities and found that (1) the reduced FA values in deaf individuals compared to HC is primarily driven by higher radial diffusivity values and (2) in the AD, higher radial diffusivity was correlated with earlier onset age of deafness, but not the duration of deafness. These findings imply that early sensory experience is critical for the growth of fiber myelination, and anatomical reorganization following auditory deprivation is sensitive to early plasticity in the brain.

摘要

先前的研究表明,由于听力损失,聋人大脑中的白质会发生变化。然而,早期听力经验如何影响聋人的白质发育仍不清楚。我们使用弥散张量成像和基于束的空间统计学,比较了包括 60 名先天性聋人、36 名后天聋人(AD)和 38 名性别和年龄匹配的听力对照组(HC)在内的三组受试者的白质结构。结果表明,与 HC 相比,聋人双侧颞上回和胼胝体压部的各向异性分数(FA)值显著降低。AD 聋人的 FA 值降低与耳聋发病年龄相关,而与耳聋持续时间无关。为了探究聋人组 FA 值变化的潜在机制,我们进一步分析了径向和轴向扩散率,发现:(1)与 HC 相比,聋人 FA 值降低主要是由较高的径向扩散率引起的;(2)在 AD 中,较高的径向扩散率与耳聋发病年龄较早相关,而与耳聋持续时间无关。这些发现表明,早期的感觉经验对于纤维髓鞘的生长至关重要,而听觉剥夺后的解剖结构重组对大脑的早期可塑性敏感。

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