...
首页> 外文期刊>BioMed research international >Acute and Long-Term Effects of Noise Exposure on the Neuronal Spontaneous Activity in Cochlear Nucleus and Inferior Colliculus Brain Slices
【24h】

Acute and Long-Term Effects of Noise Exposure on the Neuronal Spontaneous Activity in Cochlear Nucleus and Inferior Colliculus Brain Slices

机译:噪声的急性和长期影响对人工耳蜗核和下丘脑片神经元自发活动的影响

获取原文
           

摘要

Noise exposure leads to an immediate hearing loss and is followed by a long-lasting permanent threshold shift, accompanied by changes of cellular properties within the central auditory pathway. Electrophysiological recordings have demonstrated an upregulation of spontaneous neuronal activity. It is still discussed if the observed effects are related to changes of peripheral input or evoked within the central auditory system. The present study should describe the intrinsic temporal patterns of single-unit activity upon noise-induced hearing loss of the dorsal and ventral cochlear nucleus (DCN and VCN) and the inferior colliculus (IC) in adult mouse brain slices. Recordings showed a slight, but significant, elevation in spontaneous firing rates in DCN and VCN immediately after noise trauma, whereas no differences were found in IC. One week postexposure, neuronal responses remained unchanged compared to controls. At 14 days after noise trauma, intrinsic long-term hyperactivity in brain slices of the DCN and the IC was detected for the first time. Therefore, increase in spontaneous activity seems to develop within the period of two weeks, but not before day 7. The results give insight into the complex temporal neurophysiological alterations after noise trauma, leading to a better understanding of central mechanisms in noise-induced hearing loss.
机译:噪声暴露会导致立即的听力丧失,并伴随着持久的永久性阈值漂移,并伴随着中央听觉通道内细胞特性的变化。电生理记录已证明自发神经元活动的上调。仍然讨论观察到的效果是否与周围输入的变化有关或在中央听觉系统内引起。本研究应描述成年小鼠脑片中噪声诱导的背侧和腹侧耳蜗核(DCN和VCN)和下丘脑(IC)的听力丧失时单单位活动的内在时间模式。记录显示,在受到噪音创伤后,DCN和VCN的自发放电率略有提高,但在IC中未发现差异。暴露后一周,与对照组相比,神经元反应保持不变。噪音创伤后第14天,首次检测到DCN和IC的脑片内在的长期过度活跃。因此,自发活动似乎会在两周内,而不是在第7天之前出现。结果可洞悉噪声损伤后复杂的颞神经生理变化,从而使人们更好地理解噪声引起的听力损失的中枢机制。 。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号