Plasticity in the Primary Auditory Cortex, Not What You Think it is: Implications for Basic and Clinical Auditory Neuroscience.

Norman M Weinberger
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引用次数: 7

Abstract

Standard beliefs that the function of the primary auditory cortex (A1) is the analysis of sound have proven to be incorrect. Its involvement in learning, memory and other complex processes in both animals and humans is now well-established, although often not appreciated. Auditory coding is strongly modifed by associative learning, evident as associative representational plasticity (ARP) in which the representation of an acoustic dimension, like frequency, is re-organized to emphasize a sound that has become behaviorally important. For example, the frequency tuning of a cortical neuron can be shifted to match that of a significant sound and the representational area of sounds that acquire behavioral importance can be increased. ARP depends on the learning strategy used to solve an auditory problem and the increased cortical area confers greater strength of auditory memory. Thus, primary auditory cortex is involved in cognitive processes, transcending its assumed function of auditory stimulus analysis. The implications for basic neuroscience and clinical auditory neuroscience are presented and suggestions for remediation of auditory processing disorders are introduced.

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初级听觉皮层的可塑性,不是你想的那样:对基础和临床听觉神经科学的启示。
认为初级听觉皮层(A1)的功能是分析声音的标准观点已被证明是不正确的。它在动物和人类的学习、记忆和其他复杂过程中的作用现在已经得到了证实,尽管常常不被重视。听觉编码受到联想学习的强烈修改,明显表现为联想表征可塑性(ARP),其中声音维度的表征,如频率,被重新组织以强调已成为行为重要的声音。例如,皮层神经元的频率调谐可以转移到与重要声音的频率调谐相匹配,并且获得行为重要性的声音的代表性区域可以增加。ARP依赖于用来解决听觉问题的学习策略,增加的皮质面积赋予听觉记忆更强的强度。因此,初级听觉皮层参与认知过程,超越了其假设的听觉刺激分析功能。提出了听觉加工障碍对基础神经科学和临床听觉神经科学的影响,并介绍了听觉加工障碍的修复建议。
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