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首页> 外文期刊>Journal of the Association for Research in Otolaryngology: JARO >Effects of pulse phase duration and location of stimulation within the inferior colliculus on auditory cortical evoked potentials in a guinea pig model.
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Effects of pulse phase duration and location of stimulation within the inferior colliculus on auditory cortical evoked potentials in a guinea pig model.

机译:脉冲相位持续时间和下丘内刺激位置对豚鼠模型听觉皮层诱发电位的影响。

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摘要

The auditory midbrain implant (AMI), which consists of a single shank array designed for stimulation within the central nucleus of the inferior colliculus (ICC), has been developed for deaf patients who cannot benefit from a cochlear implant. Currently, performance levels in clinical trials for the AMI are far from those achieved by the cochlear implant and vary dramatically across patients, in part due to stimulation location effects. As an initial step towards improving the AMI, we investigated how stimulation of different regions along the isofrequency domain of the ICC as well as varying pulse phase durations and levels affected auditory cortical activity in anesthetized guinea pigs. This study was motivated by the need to determine in which region to implant the single shank array within a three-dimensional ICC structure and what stimulus parameters to use in patients. Our findings indicate that complex and unfavorable cortical activation properties are elicited by stimulation of caudal-dorsal ICC regions with the AMI array. Our results also confirm the existence of different functional regions along the isofrequency domain of the ICC (i.e., a caudal-dorsal and a rostral-ventral region), which has been traditionally unclassified. Based on our study as well as previous animal and human AMI findings, we may need to deliver more complex stimuli than currently used in the AMI patients to effectively activate the caudal ICC or ensure that the single shank AMI is only implanted into a rostral-ventral ICC region in future patients.
机译:听觉中脑植入物(AMI)由单柄阵列组成,旨在刺激下丘脑(ICC)中央核内的刺激,已为无法从人工耳蜗中受益的聋人患者开发。当前,AMI的临床试验中的性能水平远非人工耳蜗所达到的水平,并且在患者之间差异很大,部分原因是受刺激位置的影响。作为改善AMI的第一步,我们研究了在ICC等频域上不同区域的刺激以及不同的脉冲相位持续时间和水平如何影响麻醉的豚鼠的听觉皮层活动。这项研究的动机是需要确定在三维ICC结构内的哪个区域植入单柄阵列,以及要在患者中使用哪些刺激参数。我们的发现表明,AMI阵列刺激尾背ICC区域可引起复杂而不利的皮质激活特性。我们的结果还证实了沿ICC的等频域存在不同的功能区域(即尾-背和鼻-腹侧区域),这在传统上是未分类的。根据我们的研究以及先前动物和人类AMI的发现,我们可能需要提供比当前AMI患者中使用的刺激更复杂的刺激,以有效激活尾部ICC或确保仅将单柄AMI植入到延髓腹侧ICC地区的未来患者。

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