Department of Neurology, University Hospital Munich, Ludwig-Maximilians-University Munich, Marchionini Str. 15, 81377 Munich, Germany; German Center for Vertigo and Balance Disorders, IFB-LMU, University Hospital Munich, Ludwig-Maximilians-University Munich, Marchionini Str. 15, 81377 Munich, Germany.
Department of Neurology, University Hospital Munich, Ludwig-Maximilians-University Munich, Marchionini Str. 15, 81377 Munich, Germany; German Center for Vertigo and Balance Disorders, IFB-LMU, University Hospital Munich, Ludwig-Maximilians-University Munich, Marchionini Str. 15, 81377 Munich, Germany; Graduate School of Systemic Neurosciences, Department of Biology II and Neurobiology, Großhaderner Str. 2, 82151 Planegg-Martinsried, Ludwig-Maximilians-University Munich, Germany.
Neuroimage. 2022 Dec 1;264:119715. doi: 10.1016/j.neuroimage.2022.119715. Epub 2022 Nov 2.
All volitional movement in a three-dimensional space requires multisensory integration, in particular of visual and vestibular signals. Where and how the human brain processes and integrates self-motion signals remains enigmatic. Here, we applied visual and vestibular self-motion stimulation using fast and precise whole-brain neuroimaging to delineate and characterize the entire cortical and subcortical egomotion network in a substantial cohort (n=131). Our results identify a core egomotion network consisting of areas in the cingulate sulcus (CSv, PcM/pCi), the cerebellum (uvula), and the temporo-parietal cortex including area VPS and an unnamed region in the supramarginal gyrus. Based on its cerebral connectivity pattern and anatomical localization, we propose that this region represents the human homologue of macaque area 7a. Whole-brain connectivity and gradient analyses imply an essential role of the connections between the cingulate sulcus and the cerebellar uvula in egomotion perception. This could be via feedback loops involved updating visuo-spatial and vestibular information. The unique functional connectivity patterns of PcM/pCi hint at central role in multisensory integration essential for the perception of self-referential spatial awareness. All cortical egomotion hubs showed modular functional connectivity with other visual, vestibular, somatosensory and higher order motor areas, underlining their mutual function in general sensorimotor integration.
在三维空间中进行的所有随意运动都需要多感觉整合,特别是视觉和前庭信号。人类大脑在哪里以及如何处理和整合自我运动信号仍然是个谜。在这里,我们使用快速而精确的全脑神经影像学应用视觉和前庭自我运动刺激,以描绘和描述大量队列(n=131)中的整个皮质和皮质下自我运动网络。我们的结果确定了一个由扣带沟(CSv、PcM/pCi)、小脑(蚓部)和颞顶叶皮层区域包括 VPS 区和顶下小叶缘上回的一个无名区域组成的核心自我运动网络。基于其大脑连接模式和解剖定位,我们提出该区域代表猕猴 7a 区的人类同源物。全脑连接和梯度分析表明,扣带沟和小脑蚓部之间的连接在自我运动感知中起着重要作用。这可能是通过参与更新视空间和前庭信息的反馈回路来实现的。PcM/pCi 的独特功能连接模式暗示其在多感觉整合中的核心作用,这对自我参照空间意识的感知至关重要。所有皮质自我运动中枢都表现出与其他视觉、前庭、躯体感觉和更高阶运动区域的模块化功能连接,这强调了它们在一般感觉运动整合中的相互作用。