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通过锰增强 MRI 和听觉惊跳反射测试的独特组合,记录到关键的耳鸣相关脑区的证据。

Evidence of key tinnitus-related brain regions documented by a unique combination of manganese-enhanced MRI and acoustic startle reflex testing.

机构信息

Department of Anatomy and Cell Biology, Wayne State University School of Medicine, Detroit, Michigan, United States of America.

出版信息

PLoS One. 2010 Dec 15;5(12):e14260. doi: 10.1371/journal.pone.0014260.

Abstract

Animal models continue to improve our understanding of tinnitus pathogenesis and aid in development of new treatments. However, there are no diagnostic biomarkers for tinnitus-related pathophysiology for use in awake, freely moving animals. To address this disparity, two complementary methods were combined to examine reliable tinnitus models (rats repeatedly administered salicylate or exposed to a single noise event): inhibition of acoustic startle and manganese-enhanced MRI. Salicylate-induced tinnitus resulted in wide spread supernormal manganese uptake compared to noise-induced tinnitus. Neither model demonstrated significant differences in the auditory cortex. Only in the dorsal cortex of the inferior colliculus (DCIC) did both models exhibit supernormal uptake. Therefore, abnormal membrane depolarization in the DCIC appears to be important in tinnitus-mediated activity. Our results provide the foundation for future studies correlating the severity and longevity of tinnitus with hearing loss and neuronal activity in specific brain regions and tools for evaluating treatment efficacy across paradigms.

摘要

动物模型继续提高我们对耳鸣发病机制的理解,并有助于开发新的治疗方法。然而,对于清醒、自由活动的动物,尚无用于耳鸣相关病理生理学的诊断生物标志物。为了解决这一差距,我们结合了两种互补的方法来检查可靠的耳鸣模型(反复给予水杨酸盐或单次噪声暴露的大鼠):声惊反射抑制和锰增强 MRI。与噪声诱导的耳鸣相比,水杨酸盐诱导的耳鸣导致广泛的超锰摄取。两种模型在听觉皮层均无显著差异。只有在下丘背侧耳蜗核(DCIC)中,两种模型均表现出超锰摄取。因此,DCIC 中的异常膜去极化似乎在耳鸣介导的活动中很重要。我们的研究结果为未来研究提供了基础,这些研究将耳鸣的严重程度和持续时间与特定脑区的听力损失和神经元活动相关联,并为评估跨范式的治疗效果提供了工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d740/3002264/7dae34e5edeb/pone.0014260.g001.jpg

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