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单侧传导性听力损失破坏大鼠初级听觉皮层双耳处理的发育精细化。

Unilateral Conductive Hearing Loss Disrupts the Developmental Refinement of Binaural Processing in the Rat Primary Auditory Cortex.

作者信息

Liu Jing, Huang Xinyi, Zhang Jiping

机构信息

Key Laboratory of Brain Functional Genomics, Ministry of Education, NYU-ECNU Institute of Brain and Cognitive Science at NYU Shanghai, School of Life Sciences, East China Normal University, Shanghai, China.

出版信息

Front Neurosci. 2021 Nov 19;15:762337. doi: 10.3389/fnins.2021.762337. eCollection 2021.

Abstract

Binaural hearing is critically important for the perception of sound spatial locations. The primary auditory cortex (AI) has been demonstrated to be necessary for sound localization. However, after hearing onset, how the processing of binaural cues by AI neurons develops, and how the binaural processing of AI neurons is affected by reversible unilateral conductive hearing loss (RUCHL), are not fully elucidated. Here, we determined the binaural processing of AI neurons in four groups of rats: postnatal day (P) 14-18 rats, P19-30 rats, P57-70 adult rats, and RUCHL rats (P57-70) with RUCHL during P14-30. We recorded the responses of AI neurons to both monaural and binaural stimuli with variations in interaural level differences (ILDs) and average binaural levels. We found that the monaural response types, the binaural interaction types, and the distributions of the best ILDs of AI neurons in P14-18 rats are already adult-like. However, after hearing onset, there exist developmental refinements in the binaural processing of AI neurons, which are exhibited by the increase in the degree of binaural interaction, and the increase in the sensitivity and selectivity to ILDs. RUCHL during early hearing development affects monaural response types, decreases the degree of binaural interactions, and decreases both the selectivity and sensitivity to ILDs of AI neurons in adulthood. These new evidences help us to understand the refinements and plasticity in the binaural processing of AI neurons during hearing development, and might enhance our understanding in the neuronal mechanism of developmental changes in auditory spatial perception.

摘要

双耳听觉对于声音空间位置的感知至关重要。初级听觉皮层(AI)已被证明对声音定位是必需的。然而,在听力开始后,AI神经元对双耳线索的处理如何发展,以及AI神经元的双耳处理如何受到可逆性单侧传导性听力损失(RUCHL)的影响,目前尚未完全阐明。在这里,我们确定了四组大鼠AI神经元的双耳处理情况:出生后第(P)14 - 18天的大鼠、P19 - 30天的大鼠、P57 - 70天的成年大鼠,以及在P14 - 30天期间患有RUCHL的RUCHL大鼠(P57 - 70)。我们记录了AI神经元对单耳和双耳刺激的反应,这些刺激具有耳间水平差异(ILDs)和平均双耳水平的变化。我们发现,P14 - 18天大鼠中AI神经元的单耳反应类型、双耳相互作用类型以及最佳ILDs的分布已经与成年大鼠相似。然而,在听力开始后,AI神经元的双耳处理存在发育上的优化,表现为双耳相互作用程度的增加,以及对ILDs的敏感性和选择性的增加。早期听力发育期间的RUCHL会影响单耳反应类型,降低双耳相互作用的程度,并降低成年期AI神经元对ILDs的选择性和敏感性。这些新证据有助于我们理解听力发育过程中AI神经元双耳处理的优化和可塑性,并可能增强我们对听觉空间感知发育变化的神经元机制的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a93c/8640238/8c19269012c0/fnins-15-762337-g001.jpg

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