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首页> 外文期刊>Journal of the Association for Research in Otolaryngology: JARO >Structural and Ultrastructural Changes to Type I Spiral Ganglion Neurons and Schwann Cells in the Deafened Guinea Pig Cochlea
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Structural and Ultrastructural Changes to Type I Spiral Ganglion Neurons and Schwann Cells in the Deafened Guinea Pig Cochlea

机译:聋人豚鼠耳蜗中I型螺旋神经节神经元和Schwann细胞的结构和超微结构变化

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摘要

Abstract Sensorineural hearing loss is commonly caused by damage to cochlear sensory hair cells. Coinciding with hair cell degeneration, the peripheral fibres of type I spiral ganglion neurons (SGNs) that normally form synaptic connections with the inner hair cell gradually degenerate. We examined the time course of these degenerative changes in type I SGNs and their satellite Schwann cells at the ultrastructural level in guinea pigs at 2, 6, and 12?weeks following aminoglycoside-induced hearing loss. Degeneration of the peripheral fibres occurred prior to the degeneration of the type I SGN soma and was characterised by shrinkage of the fibre followed by retraction of the axoplasm, often leaving a normal myelin lumen devoid of axoplasmic content. A statistically significant reduction in the cross-sectional area of peripheral fibres was evident as early as 2?weeks following deafening ( p ? p ?
机译:摘要传感器听力损失通常由耳蜗感觉细胞损伤引起的。 与毛细胞变性重合,I型螺旋神经节神经元(SGNS)的外周纤维通常形成与内毛细胞的突触连接逐渐变质。 在氨基糖苷诱导的听力损失后,我们检查了在豚鼠的超微结构水平的豚鼠超微结构水平上的这些退行性变化的时间过程。 在I型SGN SOMA的退化之前发生外周纤维的变性,其特征在于纤维的收缩,然后缩回轴质,通常留下缺乏轴质含量的正常髓鞘。 在耳聋后2个周纤维的横截面积的横截面积的统计学显着降低(p?p?

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