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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >LEARNING-STAGE-DEPENDENT, FIELD-SPECIFIC, MAP PLASTICITY IN THE RAT AUDITORY CORTEX DURING APPETITIVE OPERANT CONDITIONING
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LEARNING-STAGE-DEPENDENT, FIELD-SPECIFIC, MAP PLASTICITY IN THE RAT AUDITORY CORTEX DURING APPETITIVE OPERANT CONDITIONING

机译:适应性操作员调节条件下大鼠听觉皮层的学习阶段依赖性,场特异性的地图可塑性

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Cortical reorganizations during acquisition of motor skills and experience-dependent recovery after deafferen-tation consist of several distinct phases, in which expansion of receptive fields is followed by the shrinkage and use-dependent refinement. In perceptual learning, however, such non-monotonic, stage-dependent plasticity remains elusive in the sensory cortex. In the present study, microelectrode mapping characterized plasticity in the rat auditory cortex, including primary, anterior, and ventral/suprarhinal auditory fields (A1, AAF, and VAF/SRAF), at the early and late stages of appetitive operant conditioning. We first demonstrate that most plasticity at the early stage was tentative, and that long-lasting plasticity after extended training was able to be categorized into either early- or late-stage-dominant plasticity. Second, training-induced plasticity occurred both locally and globally with a specific temporal order. Conditioned-stimulus (CS) frequency used in the task tended to be locally over-represented in AAF at the early stage and in VAF/SRAF at the late stage. The behavioral relevance of neural responses suggests that the local plasticity also occurred in A1 at the early stage. In parallel, the tone-responsive area globally shrank at the late stage independently of CS frequency, and this shrinkage was also correlated with the behavioral improvements. Thus, the stage-dependent plasticity may commonly underlie cortical reorganization in the perceptual learning, yet the interactions of local and global plasticity have led to more complicated reorganization than previously thought. Field-specific plasticity has important implications for how each field subserves in the learning; for example, consistent with recent notions, A1 should construct filters to better identify auditory objects at the early stage, while VAF/ SRAF contribute to hierarchical computation and storage at the late stage. ? 2011 IBRO. Published by Elsevier Ltd. All rights reserved.
机译:在获得运动技能期间的皮质重组和脱除咖啡因后依赖于经验的恢复包括几个不同的阶段,在这些阶段中,感受野的扩展随后是收缩和依赖用途的提炼。然而,在感知学习中,这种非单调的,阶段依赖性的可塑性在感觉皮层中仍然难以捉摸。在本研究中,微电极作图表征了大鼠听觉皮层的可塑性,包括在操作性操作条件调节的早期和晚期,包括原发,前部和腹/上皮听觉区(A1,AAF和VAF / SRAF)。我们首先证明,早期的大多数可塑性是试验性的,经过长期训练后的持久可塑性可以分为早期或晚期占主导地位的可塑性。其次,训练引起的可塑性在局部和全局都以特定的时间顺序发生。任务中使用的条件刺激(CS)频率在早期的AAF和后期的VAF / SRAF中往往局部偏高。神经反应的行为相关性表明,早期阶段A1也发生了局部可塑性。同时,音调响应区域在后期独立于CS频率而整体收缩,并且这种收缩也与行为改善相关。因此,在知觉学习中,阶段依赖的可塑性通常可能是皮质重组的基础,但是局部和全局可塑性的相互作用导致了比以前认为的更为复杂的重组。特定领域的可塑性对学习中每个领域如何服务具有重要意义。例如,与最近的观点一致,A1应该构造过滤器以在早期阶段更好地识别听觉对象,而VAF / SRAF在后期阶段为分层计算和存储做出贡献。 ? 2011年IBRO。由Elsevier Ltd.出版。保留所有权利。

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