Department of Physiology, McGill University, Montreal, Quebec, Canada.
Department of Physiology and Pharmacology, University of Western Ontario, Ontario, Canada.
Cereb Cortex. 2018 Jul 1;28(7):2405-2421. doi: 10.1093/cercor/bhx142.
Single neurons in primate dorsolateral prefrontal cortex (dLPFC) are known to encode working memory (WM) representations of visual space. Psychophysical studies have shown that the horizontal and vertical meridians of the visual field can bias spatial information maintained in WM. However, most studies and models have tacitly assumed that dLPFC neurons represent mnemonic space homogenously. The anatomical organization of these representations has also eluded clear parametric description. We investigated these issues by recording from neuronal ensembles in macaque dLPFC with microelectrode arrays while subjects performed an oculomotor delayed-response task. We found that spatial WM representations in macaque dLPFC are biased by the vertical and horizontal meridians of the visual field, dividing mnemonic space into quadrants. This bias is reflected in single neuron firing rates, neuronal ensemble representations, the spike count correlation structure, and eye movement patterns. We also found that dLPFC representations of mnemonic space cluster anatomically in a nonretinotopic manner that partially reflects the organization of visual space. These results provide an explanation for known WM biases, and reveal novel principles of WM representation in prefrontal neuronal ensembles and across the cortical surface, as well as the need to reconceptualize models of WM to accommodate the observed representational biases.
灵长类动物背外侧前额叶皮层 (dLPFC) 中的单个神经元已知可对视觉空间的工作记忆 (WM) 表示进行编码。心理物理学研究表明,视野的水平和垂直子午线可以偏置在 WM 中保持的空间信息。然而,大多数研究和模型都默认假设 dLPFC 神经元均匀地表示记忆空间。这些表示的解剖组织也难以用明确的参数描述。我们通过在猕猴执行眼球运动延迟反应任务时使用微电极阵列记录 dLPFC 中的神经元集合来研究这些问题。我们发现,猕猴 dLPFC 中的空间 WM 表示受视觉场的垂直和水平子午线的影响,将记忆空间分为四个象限。这种偏差反映在单个神经元的放电率、神经元集合的表示、尖峰计数相关结构和眼球运动模式中。我们还发现,记忆空间的 dLPFC 表示在解剖上以非视网膜拓扑方式聚类,部分反映了视觉空间的组织。这些结果为已知的 WM 偏差提供了一个解释,并揭示了前额叶神经元集合和皮质表面上 WM 表示的新原则,以及需要重新概念化 WM 模型以适应观察到的表示偏差。