Cook Erik P, Maunsell John H R
Howard Hughes Medical Institute and Division of Neuroscience, Baylor College of Medicine, Houston, Texas 77030, USA.
J Neurosci. 2004 Sep 8;24(36):7964-77. doi: 10.1523/JNEUROSCI.5102-03.2004.
We examined how spatially directed attention affected the integration of motion in neurons of the middle temporal (MT) area of visual cortex. We recorded from single MT neurons while monkeys performed a motion detection task under two attentional states. Using 0% coherent random dot motion, we estimated the optimal linear transfer function (or kernel) between the global motion and the neuronal response. This linear kernel filtered the random dot motion across direction, speed, and time. Slightly less than one-half of the neurons produced reasonably well defined kernels that also tended to account for both the directional selectivity and responses to coherent motion of different strengths. This subpopulation of cells had faster, more transient, and more robust responses to visual stimuli than neurons with kernels that did not contain well defined regions of integration. For those neurons that had large attentional modulation and produced well defined kernels, we found attention scaled the temporal profile of the transfer function with no appreciable shift in time or change in shape. Thus, for MT neurons described by a linear transfer function, attention produced a multiplicative scaling of the temporal integration window.
我们研究了空间定向注意力如何影响视觉皮层中颞叶(MT)区域神经元的运动整合。我们在猴子处于两种注意力状态下执行运动检测任务时,记录单个MT神经元的活动。使用0%相干随机点运动,我们估计了全局运动与神经元反应之间的最优线性传递函数(或核)。这个线性核在方向、速度和时间上对随机点运动进行滤波。略少于一半的神经元产生了定义合理的核,这些核也倾向于解释方向选择性以及对不同强度相干运动的反应。与具有不包含明确整合区域的核的神经元相比,这一亚群细胞对视觉刺激具有更快、更短暂且更稳健的反应。对于那些具有较大注意力调制且产生明确核的神经元,我们发现注意力对传递函数的时间分布进行了缩放,时间上没有明显偏移,形状也没有变化。因此,对于由线性传递函数描述的MT神经元,注意力对时间整合窗口产生了乘法缩放。