Opris Ioan, Chang Stephano, Noga Brian R
The Miami Project to Cure Paralysis, Department of Neurological Surgery, University of Miami Miller School of Medicine, Miami, FL, United States.
Front Neuroanat. 2017 Dec 14;11:116. doi: 10.3389/fnana.2017.00116. eCollection 2017.
The objective of this perspective article is to examine columnar inter-laminar integration during the executive control of behavior. The integration hypothesis posits that perceptual and behavioral signals are integrated within the prefrontal cortical inter-laminar microcircuits. Inter-laminar minicolumnar activity previously recorded from the dorsolateral prefrontal cortex (dlPFC) of nonhuman primates, trained in a visual delay match-to-sample (DMS) task, was re-assessed from an integrative perspective. Biomorphic multielectrode arrays (MEAs) played a unique role in the recording of columnar cell firing in the dlPFC layers 2/3 and 5/6. Several integrative aspects stem from these experiments: 1. Functional integration of perceptual and behavioral signals across cortical layers during executive control. The integrative effect of dlPFC minicolumns was shown by: (i) increased correlated firing on correct vs. error trials; (ii) decreased correlated firing when the number of non-matching images increased; and (iii) similar spatial firing preference across cortical-striatal cells during spatial-trials, and less on object-trials. 2. Causal relations to integration of cognitive signals by the minicolumnar turbo-engines. The inter-laminar integration between the perceptual and executive circuits was facilitated by stimulating the infra-granular layers with firing patterns obtained from supra-granular layers that enhanced spatial preference of percent correct performance on spatial trials. 3. Integration across hierarchical levels of the brain. The integration of intention signals (visual spatial, direction) with movement preparation (timing, velocity) in striatum and with the motor command and posture in midbrain is also discussed. These findings provide evidence for inter-laminar integration of executive control signals within brain's prefrontal cortical microcircuits.
这篇观点文章的目的是研究行为执行控制过程中的柱状层间整合。整合假说认为,感知和行为信号在前额叶皮质层间微回路中进行整合。从整合的角度重新评估了先前在视觉延迟匹配样本(DMS)任务中训练的非人类灵长类动物背外侧前额叶皮质(dlPFC)记录的层间微柱状活动。生物形态多电极阵列(MEA)在记录dlPFC第2/3层和第5/6层的柱状细胞放电中发挥了独特作用。这些实验产生了几个整合方面的结果:1. 执行控制过程中跨皮质层的感知和行为信号的功能整合。dlPFC微柱的整合效应表现为:(i)正确试验与错误试验相比,相关放电增加;(ii)不匹配图像数量增加时,相关放电减少;(iii)空间试验期间,皮质-纹状体细胞之间的空间放电偏好相似,而在物体试验中则较少。2. 微柱状“涡轮发动机”与认知信号整合的因果关系。通过用从颗粒上层获得的放电模式刺激颗粒下层,促进了感知和执行回路之间的层间整合,这种放电模式增强了空间试验中正确表现百分比的空间偏好。3. 大脑不同层次间的整合。还讨论了纹状体中意图信号(视觉空间、方向)与运动准备(时间、速度)以及中脑运动命令和姿势的整合。这些发现为大脑前额叶皮质微回路中执行控制信号的层间整合提供了证据。