Institute for Human Neuroscience, Boys Town National Research Hospital, Boys Town, NE 68010, USA.
Department of Physical Therapy, Munroe-Meyer Institute, University of Nebraska Medical Center, Omaha, NE 68198, USA.
Cereb Cortex. 2021 Jun 10;31(7):3353-3362. doi: 10.1093/cercor/bhab016.
Dynamically allocating neural resources to salient features or objects within our visual space is fundamental to making rapid and accurate decisions. Impairments in such visuospatial abilities have been consistently documented in the clinical literature on individuals with cerebral palsy (CP), although the underlying neural mechanisms are poorly understood. In this study, we used magnetoencephalography (MEG) and oscillatory analysis methods to examine visuospatial processing in children with CP and demographically matched typically developing (TD) children. Our results indicated robust oscillations in the theta (4-8 Hz), alpha (8-14 Hz), and gamma (64-80 Hz) frequency bands in the occipital cortex of both groups during visuospatial processing. Importantly, the group with CP exhibited weaker cortical oscillations in the theta and gamma frequency bands, as well as slower response times and worse accuracy during task performance compared to the TD children. Furthermore, we found that weaker theta and gamma oscillations were related to greater visuospatial performance deficits across both groups. We propose that the weaker occipital oscillations seen in children with CP may reflect poor bottom-up processing of incoming visual information, which subsequently affects the higher-order visual computations essential for accurate visual perception and integration for decision-making.
动态分配神经资源以突出我们视觉空间内的特征或物体,这对于快速准确地做出决策至关重要。脑瘫(CP)患者的临床文献中一致记录了这种视空间能力的损伤,尽管其潜在的神经机制仍不清楚。在这项研究中,我们使用脑磁图(MEG)和振荡分析方法来检查 CP 患儿和人口统计学匹配的典型发育(TD)儿童的视空间处理。我们的结果表明,在视空间处理过程中,两组儿童的枕叶皮层中都存在强大的θ(4-8 Hz)、α(8-14 Hz)和γ(64-80 Hz)频段的振荡。重要的是,与 TD 儿童相比,CP 组在任务表现期间表现出较弱的θ和γ频段的皮质振荡、较慢的反应时间和较差的准确性。此外,我们发现两组中较弱的θ和γ振荡与较大的视空间表现缺陷相关。我们提出,CP 患儿中较弱的枕叶振荡可能反映了传入视觉信息的不良下传处理,这随后影响了准确的视觉感知和整合决策所需的高阶视觉计算。