Spinoza Centre for Neuroimaging, Meibergdreef 75, 1105 BK, Amsterdam, The Netherlands.
Experimental and Applied Psychology, Vrije University Amsterdam, Van der Boechorststraat 7, 1181 BT, Amsterdam, The Netherlands.
Nat Commun. 2021 Jan 11;12(1):221. doi: 10.1038/s41467-020-20567-5.
Dedicated maps for cognitive quantities such as timing, size and numerosity support the view that topography is a general principle of brain organization. To date, however, all of these maps were driven by the visual system. Here, we ask whether there are supramodal topographic maps representing cognitive dimensions irrespective of the stimulated sensory modality. We measured haptically and visually driven numerosity-selective neural responses using model-based analyses and ultra-high field (7T) fMRI. We found topographically organized neural populations tuned to haptic numerosity. The responses to visual or haptic numerosity shared a similar cortical network. However, the maps of the two modalities only partially overlap. Thus, although both visual and haptic numerosities are processed in a similar supramodal functional network, the underlying neural populations may be related, but distinct. Therefore, we hypothesize that overlap between modality-specific maps facilitates cross-modal interactions and supramodal representation of cognitive quantities.
专门用于表示时间、大小和数量等认知量的地图支持了地形是大脑组织的一般原则的观点。然而,到目前为止,所有这些地图都是由视觉系统驱动的。在这里,我们想知道是否存在不依赖于刺激感觉模式的表示认知维度的超模态地形图。我们使用基于模型的分析和超高场(7T)fMRI 测量了触觉和视觉数量选择性神经反应。我们发现了对触觉数量有调谐的地形组织的神经群体。对视觉或触觉数量的反应共享相似的皮质网络。然而,两种模式的地图仅部分重叠。因此,尽管视觉和触觉数量都在类似的超模态功能网络中得到处理,但潜在的神经群体可能相关,但不同。因此,我们假设模态特定地图之间的重叠促进了跨模态相互作用和认知量的超模态表示。