Department of Neuroscience, Imaging and Clinical Sciences - and ITAB, Institute for Advanced Biomedical Technologies, G. d'Annunzio University of Chieti-Pescara, Chieti, Italy.
Department of Psychological, Health and Territorial Sciences - and ITAB, Institute for Advanced Biomedical Technologies, G. d'Annunzio University of Chieti-Pescara, Chieti, Italy.
Sci Rep. 2021 Oct 15;11(1):20533. doi: 10.1038/s41598-021-00048-5.
Functional connectivity (FC) of brain networks dynamically fluctuates during both rest and task execution. Individual differences in dynamic FC have been associated with several cognitive and behavioral traits. However, whether dynamic FC also contributes to sensorimotor representations guiding body-environment interactions, such as the representation of peripersonal space (PPS), is currently unknown. PPS is the space immediately surrounding the body and acts as a multisensory interface between the individual and the environment. We used an audio-tactile task with approaching sounds to map the individual PPS extension, and fMRI to estimate the background FC. Specifically, we analyzed FC values for each stimulus type (near and far space) and its across-trial variability. FC was evaluated between task-relevant nodes of two fronto-parietal networks (the Dorsal Attention Network, DAN, and the Fronto-Parietal Network, FPN) and a key PPS region in the premotor cortex (PM). PM was significantly connected to specific task-relevant nodes of the DAN and the FPN during the audio-tactile task, and FC was stronger while processing near space, as compared to far space. At the individual level, less PPS extension was associated with stronger premotor-parietal FC during processing of near space, while the across-trial variability of premotor-parietal and premotor-frontal FC was higher during the processing of far space. Notably, only across-trial FC variability captured the near-far modulation of space processing. Our findings indicate that PM connectivity with task-relevant frontal and parietal regions and its dynamic changes participate in the mechanisms that enable PPS representation, in agreement with the idea that neural variability plays a crucial role in plastic and dynamic sensorimotor representations.
脑网络的功能连接(FC)在休息和任务执行期间动态波动。个体动态 FC 的差异与多种认知和行为特征有关。然而,动态 FC 是否也有助于指导身体-环境相互作用的感觉运动表示,例如,个人空间(PPS)的表示,目前尚不清楚。PPS 是身体周围的空间,是个体与环境之间的多感觉界面。我们使用带有接近声音的音频触觉任务来绘制个体 PPS 扩展图,并使用 fMRI 估计背景 FC。具体来说,我们分析了每种刺激类型(近场和远场)及其跨试验变异性的 FC 值。在两个额顶网络(背侧注意网络,DAN 和额顶网络,FPN)和运动前皮层(PM)中的一个关键 PPS 区域之间评估了 FC。在音频触觉任务期间,PM 与 DAN 和 FPN 的特定任务相关节点显着连接,与远场相比,处理近场时 FC 更强。在个体水平上,与处理近场时的运动前顶叶 FC 相比,PPS 扩展越小,而处理远场时的运动前顶叶和运动前额叶 FC 的跨试验变异性越高。值得注意的是,只有跨试验 FC 变异性捕获了空间处理的近-远调制。我们的发现表明,PM 与任务相关的额顶区域的连接及其动态变化参与了使 PPS 表示的机制,这与神经变异性在可塑性和动态感觉运动表示中起着至关重要的作用的观点一致。