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微机械加工电极阵列与V1功能图谱的精确对齐。

Precise alignment of micromachined electrode arrays with V1 functional maps.

作者信息

Nauhaus Ian, Ringach Dario L

机构信息

Dept. of Biomedical Engineering, University of California, Los Angeles, CA 90095-1763, USA.

出版信息

J Neurophysiol. 2007 May;97(5):3781-9. doi: 10.1152/jn.00120.2007. Epub 2007 Mar 7.

Abstract

Recent theoretical models of primary visual cortex predict a relationship between receptive field properties and the location of the neuron within the orientation maps. Testing these predictions requires the development of new methods that allow the recording of single units at various locations across the orientation map. Here we present a novel technique for the precise alignment of functional maps and array recordings. Our strategy consists of first measuring the orientation maps in V1 using intrinsic optical imaging. A micromachined electrode array is subsequently implanted in the same patch of cortex for electrophysiological recordings, including the measurement of orientation tuning curves. The location of the array within the map is obtained by finding the position that maximizes the agreement between the preferred orientations measured electrically and optically. Experimental results of the alignment procedure from two implementations in monkey V1 are presented. The estimated accuracy of the procedure is evaluated using computer simulations. The methodology should prove useful in studying how signals from the local neighborhood of a neuron, thought to provide a dominant feedback signal, shape the receptive field properties in V1.

摘要

近期关于初级视觉皮层的理论模型预测,感受野特性与神经元在方位图中的位置之间存在某种关系。要验证这些预测,需要开发新方法,以便在方位图的不同位置记录单个神经元。在此,我们介绍一种用于功能图与阵列记录精确对齐的新技术。我们的策略首先是使用内在光学成像测量V1区的方位图。随后将微机械加工的电极阵列植入同一皮层区域进行电生理记录,包括测量方位调谐曲线。通过找到使电测量和光测量的偏好方位之间一致性最大化的位置,来确定阵列在图中的位置。文中给出了在猴V1区的两种实现方式下对齐过程的实验结果。使用计算机模拟评估了该过程的估计精度。该方法在研究来自神经元局部邻域(被认为提供主要反馈信号)的信号如何塑造V1区的感受野特性方面应会很有用。

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