Rao S G, Williams G V, Goldman-Rakic P S
Section of Neurobiology, Yale University School of Medicine, New Haven, Connecticut 06510, USA.
J Neurophysiol. 1999 Apr;81(4):1903-16. doi: 10.1152/jn.1999.81.4.1903.
Studies on the cellular mechanisms of working memory demonstrated that neurons in dorsolateral prefrontal cortex (dPFC) exhibit directionally tuned activity during an oculomotor delayed response. To determine the particular contributions of pyramidal cells and interneurons to spatial tuning in dPFC, we examined both individually and in pairs the tuning properties of regular-spiking (RS) and fast-spiking (FS) units that represent putative pyramidal cells and interneurons, respectively. Our main finding is that FS units possess spatially tuned sensory, motor, and delay activity (i. e., "memory fields") similar to those found in RS units. Furthermore, when recorded simultaneously at the same site, the majority of neighboring neurons, whether FS or RS, displayed isodirectional tuning, i.e., they shared very similar tuning angles for the sensory and delay phases of the task. As the trial entered the response phase of the task, many FS units shifted their direction of tuning and became cross-directional to adjacent RS units by the end of the trial. These results establish that a large part of inhibition in prefrontal cortex is spatially oriented rather than being untuned and simply regulating the threshold response of pyramidal cell output. Moreover, the isodirectional tuning between adjacent neurons supports a functional microcolumnar organization in dPFC for spatial memory fields similar to that found in other areas of cortex for sensory receptive fields.
对工作记忆细胞机制的研究表明,在眼动延迟反应期间,背外侧前额叶皮层(dPFC)中的神经元表现出方向调谐活动。为了确定锥体细胞和中间神经元对dPFC空间调谐的具体贡献,我们分别单独以及成对地检查了分别代表假定锥体细胞和中间神经元的规则发放(RS)和快速发放(FS)单元的调谐特性。我们的主要发现是,FS单元具有与RS单元中发现的类似的空间调谐感觉、运动和延迟活动(即“记忆场”)。此外,当在同一部位同时记录时,大多数相邻神经元,无论是FS还是RS,都表现出同向调谐,即它们在任务的感觉和延迟阶段共享非常相似的调谐角度。当试验进入任务的反应阶段时,许多FS单元会改变其调谐方向,并在试验结束时与相邻的RS单元形成交叉方向。这些结果表明,前额叶皮层中的大部分抑制是空间定向的,而不是无调谐的,只是简单地调节锥体细胞输出的阈值反应。此外,相邻神经元之间的同向调谐支持dPFC中存在类似于在皮层其他区域中发现的用于感觉感受野的空间记忆场的功能性微柱组织。