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用声音刺激来改变成年大鼠的音域图会导致频率辨别缺陷,而这种缺陷可以通过训练来恢复。

Modifying the Adult Rat Tonotopic Map with Sound Exposure Produces Frequency Discrimination Deficits That Are Recovered with Training.

机构信息

Department of Neurology and Neurosurgery, Montreal Neurological Institute, McGill University, Montreal, Quebec H3A 2B4, Canada.

Centre for Research on Brain, Language and Music, Montreal, Quebec H3G 2A8, Canada, and.

出版信息

J Neurosci. 2020 Mar 11;40(11):2259-2268. doi: 10.1523/JNEUROSCI.1445-19.2019. Epub 2020 Feb 5.

Abstract

Frequency discrimination learning is often accompanied by an expansion of the functional region corresponding to the target frequency within the auditory cortex. Although the perceptual significance of this plastic functional reorganization remains debated, greater cortical representation is generally thought to improve perception for a stimulus. Recently, the ability to expand functional representations through passive sound experience has been demonstrated in adult rats, suggesting that it may be possible to design passive sound exposures to enhance specific perceptual abilities in adulthood. To test this hypothesis, we exposed adult female Long-Evans rats to 2 weeks of moderate-intensity broadband white noise followed by 1 week of 7 kHz tone pips, a paradigm that results in the functional over-representation of 7 kHz within the adult tonotopic map. We then tested the ability of exposed rats to identify 7 kHz among distractor tones on an adaptive tone discrimination task. Contrary to our expectations, we found that map expansion impaired frequency discrimination and delayed perceptual learning. Rats exposed to noise followed by 15 kHz tone pips were not impaired at the same task. Exposed rats also exhibited changes in auditory cortical responses consistent with reduced discriminability of the exposure tone. Encouragingly, these deficits were completely recovered with training. Our results provide strong evidence that map expansion alone does not imply improved perception. Rather, plastic changes in frequency representation induced by bottom-up processes can worsen perceptual faculties, but because of the very nature of plasticity these changes are inherently reversible. The potent ability of our acoustic environment to shape cortical sensory representations throughout life has led to a growing interest in harnessing both passive sound experience and operant perceptual learning to enhance mature cortical function. We use sound exposure to induce targeted expansions in the adult rat tonotopic map and find that these bottom-up changes unexpectedly impair performance on an adaptive tone discrimination task. Encouragingly, however, we also show that training promotes the recovery of electrophysiological measures of reduced neural discriminability following sound exposure. These results provide support for future neuroplasticity-based treatments that take into account both the sensory statistics of our external environment and perceptual training strategies to improve learning and memory in the adult auditory system.

摘要

频率辨别学习通常伴随着听觉皮层中与目标频率相对应的功能区域的扩展。尽管这种可塑性功能重组的感知意义仍存在争议,但通常认为更大的皮层表示度可以改善对刺激的感知。最近,在成年大鼠中已经证明了通过被动声音体验来扩展功能表示的能力,这表明可以设计被动声音暴露来增强成年期的特定感知能力。为了验证这一假设,我们让成年雌性 Long-Evans 大鼠接受 2 周的中等强度宽带白噪声暴露,然后接受 1 周的 7 kHz 音调脉冲刺激,该范式导致成年等频图谱中 7 kHz 的功能过度表达。然后,我们在自适应音调辨别任务中测试了暴露大鼠识别 7 kHz 音调的能力。与我们的预期相反,我们发现图谱扩展会损害频率辨别能力并延迟感知学习。在相同任务中,暴露于噪声后接受 15 kHz 音调脉冲刺激的大鼠并未受损。暴露于噪声的大鼠在听觉皮层反应中也表现出与暴露音调辨别力降低一致的变化。令人鼓舞的是,这些缺陷可以通过训练完全恢复。我们的结果提供了强有力的证据,表明仅图谱扩展并不意味着感知能力提高。相反,由自上而下的过程引起的频率表示的可塑性变化可能会降低感知能力,但由于可塑性的本质,这些变化是可以完全逆转的。我们的声环境塑造整个生命中皮层感觉表示的强大能力,导致人们越来越感兴趣地利用被动声音体验和操作性感知学习来增强成熟的皮层功能。我们使用声音暴露来诱导成年大鼠等频图谱的靶向扩展,并发现这些自下而上的变化出人意料地损害了自适应音调辨别任务的表现。然而,令人鼓舞的是,我们还表明,训练可以促进在声音暴露后减少神经辨别力的电生理测量的恢复。这些结果为基于神经可塑性的未来治疗提供了支持,这些治疗考虑到了我们外部环境的感觉统计数据和感知训练策略,以提高成年听觉系统的学习和记忆能力。

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