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Neuromagnetic imaging of movement-related cortical oscillations in children and adults: age predicts post-movement beta rebound.儿童和成人运动相关皮层振荡的神经磁成像:年龄预测运动后β反弹。
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Orientation discrimination performance is predicted by GABA concentration and gamma oscillation frequency in human primary visual cortex.方位辨别性能由人初级视皮层中的 GABA 浓度和伽马振荡频率决定。
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大脑老化的功能和结构相关性:将视皮层 (V1) 伽马波段反应与年龄相关的结构变化相关联。

Functional and structural correlates of the aging brain: relating visual cortex (V1) gamma band responses to age-related structural change.

机构信息

Lurie Family Foundations MEG Imaging Center, Department of Radiology, Children's Hospital of Philadelphia, Philadelphia, PA 19104, USA.

出版信息

Hum Brain Mapp. 2012 Sep;33(9):2035-46. doi: 10.1002/hbm.21339. Epub 2011 Jul 18.

DOI:10.1002/hbm.21339
PMID:21769992
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3197906/
Abstract

The gamma band response is thought to be a key neural signature of information processing in the mammalian brain, yet little is known about how age-related maturation influences the γ-band response. Recent MRI-based studies have shown that brain maturation is accompanied by clear structural changes in both gray and white matter, yet the correspondence of these changes to brain function is unclear. The objective of this study was to relate visual cortex (V1) γ-band responses to age-related structural change. We evaluated MEG measured γ-band responses to contrast gratings stimuli and structural MRIs from participants observed from two separate research centers (MEG lab at CUBRIC, Cardiff University, UK, and the Lurie Family Foundations MEG Imaging Center, (CHOP) at the Children's Hospital of Philadelphia). Pooled participant data (N = 59) ranged in age from 8.7 to 45.3 years. We assessed linear associations between age and MEG γ-band frequency and amplitude, as well as between age and MRI volumetric parameters of the occipital lobe. Our MEG findings revealed a significant negative correlation for gamma band frequency versus age. Volumetric brain analysis from the occipital lobe also revealed significant negative correlations between age and the cortical thickness of pericalcarine and cuneus areas. Our functional MEG and structural MRI findings shows regionally specific changes due to maturation and may thus be informative for understanding physiological processes of neural development, maturation, and age-related decline. In addition, this study represents (to our knowledge), the first published demonstration of multicenter data sharing across MEG centers.

摘要

伽马波段响应被认为是哺乳动物大脑信息处理的关键神经特征,但对于年龄相关的成熟如何影响γ波段响应知之甚少。最近的基于 MRI 的研究表明,大脑成熟伴随着灰质和白质的明显结构变化,但这些变化与大脑功能的对应关系尚不清楚。本研究的目的是将视觉皮层 (V1) 的 γ 波段反应与年龄相关的结构变化联系起来。我们评估了来自两个独立研究中心(英国卡迪夫大学 CUBRIC 的 MEG 实验室和费城儿童医院 Lurie 家族基金会 MEG 成像中心 (CHOP))参与者的 MEG 测量的 γ 波段反应与对比度光栅刺激和结构 MRI。汇总参与者数据(N=59)年龄从 8.7 岁到 45.3 岁不等。我们评估了年龄与 MEG γ 波段频率和幅度之间的线性关联,以及年龄与枕叶磁共振体积参数之间的线性关联。我们的 MEG 发现显示γ 波段频率与年龄之间存在显著负相关。枕叶的脑容积分析还显示,年龄与距状回和楔前区皮质厚度之间存在显著负相关。我们的功能 MEG 和结构 MRI 发现显示出与成熟相关的区域特异性变化,因此可能有助于理解神经发育、成熟和与年龄相关的衰退的生理过程。此外,这项研究代表(据我们所知),首次在 MEG 中心之间展示了多中心数据共享的发表演示。