Neural Correlates of Perceptual Plasticity in the Auditory Midbrain and Thalamus.

IF 4.4 2区 医学 Q1 NEUROSCIENCES
Rose Ying, Daniel J Stolzberg, Melissa L Caras
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引用次数: 0

Abstract

Hearing is an active process in which listeners must detect and identify sounds, segregate and discriminate stimulus features, and extract their behavioral relevance. Adaptive changes in sound detection can emerge rapidly, during sudden shifts in acoustic or environmental context, or more slowly as a result of practice. Although we know that context- and learning-dependent changes in the sensitivity of auditory cortical (ACX) neurons support many aspects of perceptual plasticity, the contribution of subcortical auditory regions to this process is less understood. Here, we recorded single- and multiunit activity from the central nucleus of the inferior colliculus (ICC) and the ventral subdivision of the medial geniculate nucleus (MGV) of male and female Mongolian gerbils under two different behavioral contexts: as animals performed an amplitude modulation (AM) detection task and as they were passively exposed to AM sounds. Using a signal detection framework to estimate neurometric sensitivity, we found that neural thresholds in both regions improve during task performance, and this improvement is largely driven by changes in the firing rate rather than phase locking. We also found that ICC and MGV neurometric thresholds improve as animals learn to detect small AM depths during a multiday perceptual training paradigm. Finally, we revealed that in the MGV, but not the ICC, context-dependent enhancements in AM sensitivity grow stronger during perceptual training, mirroring prior observations in the ACX. Together, our results suggest that the auditory midbrain and thalamus contribute to changes in sound processing and perception over rapid and slow timescales.

听觉中脑和丘脑知觉可塑性的神经关联。
听力是一个主动的过程,听者必须检测和识别声音,分离和区分刺激特征,并提取其行为相关性。声音检测的适应性变化可以在声音或环境背景的突然变化中迅速出现,也可以在实践中较慢地出现。虽然我们知道听觉皮层(ACX)神经元敏感性的环境和学习依赖性变化支持感知可塑性的许多方面,但皮层下听觉区域对这一过程的贡献尚不清楚。在这里,我们记录了雄性和雌性蒙古沙鼠在两种不同的行为背景下的下丘中央核(ICC)和内侧膝状核(MGV)腹侧分支的单单元和多单元活动:当动物执行调幅(AM)检测任务时,以及当它们被动暴露于AM声音时。使用信号检测框架来估计神经测量灵敏度,我们发现在任务执行过程中,两个区域的神经阈值都有所改善,这种改善主要是由放电速率的变化而不是相位锁定驱动的。我们还发现,当动物在多日感知训练范式中学习检测小AM深度时,ICC和MGV神经测量阈值有所提高。最后,我们发现在MGV中,而不是ICC中,AM敏感性的上下文依赖性增强在感知训练中变得更强,这反映了ACX中先前的观察结果。总之,我们的结果表明,听觉中脑和丘脑在快速和缓慢的时间尺度上对声音处理和感知的变化做出了贡献。意义陈述听者所听到的内容取决于几个因素,比如听者是专心听讲还是心不在焉,所听到的声音是有意义的还是无关紧要的。练习还可以通过提高对特定声音特征的检测来塑造听力,就像在语言或音乐学习中发生的那样。了解大脑中声音感知的变化是如何产生的,对于制定优化健康听力的策略以及治疗这些过程出错的疾病非常重要。我们报告说,听觉中脑和丘脑的神经元在声音敏感性上表现出快速的变化,这取决于声音的行为相关性,并且在几天的训练中出现缓慢的改善。我们的研究结果表明,皮质下区域对柔性听力有重要贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Neuroscience
Journal of Neuroscience 医学-神经科学
CiteScore
9.30
自引率
3.80%
发文量
1164
审稿时长
12 months
期刊介绍: JNeurosci (ISSN 0270-6474) is an official journal of the Society for Neuroscience. It is published weekly by the Society, fifty weeks a year, one volume a year. JNeurosci publishes papers on a broad range of topics of general interest to those working on the nervous system. Authors now have an Open Choice option for their published articles
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