The development of aperiodic and periodic resting-state power between early childhood and adulthood: New insights from optically pumped magnetometers

IF 4.6 2区 医学 Q1 NEUROSCIENCES Developmental Cognitive Neuroscience Pub Date : 2024-08-10 DOI:10.1016/j.dcn.2024.101433
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Abstract

Neurophysiological signals, comprised of both periodic (e.g., oscillatory) and aperiodic (e.g., non-oscillatory) activity, undergo complex developmental changes between childhood and adulthood. With much of the existing literature primarily focused on the periodic features of brain function, our understanding of aperiodic signals is still in its infancy. Here, we are the first to examine age-related changes in periodic (peak frequency and power) and aperiodic (slope and offset) activity using optically pumped magnetometers (OPMs), a new, wearable magnetoencephalography (MEG) technology that is particularly well-suited for studying development. We examined age-related changes in these spectral features in a sample (N=65) of toddlers (1–3 years), children (4–5 years), young adults (20–26 years), and adults (27–38 years). Consistent with the extant literature, we found significant age-related decreases in the aperiodic slope and offset, and changes in peak frequency and power that were frequency-specific; we are the first to show that the effect sizes of these changes also varied across brain regions. This work not only adds to the growing body of work highlighting the advantages of using OPMs, especially for studying development, but also contributes novel information regarding the variation of neurophysiological changes with age across the brain.

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从幼儿期到成年期非周期性和周期性静息态力量的发展:光学泵浦磁力计的新见解。
神经生理信号由周期性(如振荡)和非周期性(如非振荡)活动组成,在儿童期和成年期之间会发生复杂的发育变化。现有文献主要关注大脑功能的周期性特征,而我们对非周期性信号的了解仍处于起步阶段。在这里,我们首次使用光学泵浦磁力计(OPMs)研究了周期性(峰值频率和功率)和非周期性(斜率和偏移)活动的年龄相关变化,OPMs 是一种新型的可穿戴脑磁图(MEG)技术,特别适合研究发育过程。我们研究了幼儿(1-3 岁)、儿童(4-5 岁)、青年(20-26 岁)和成人(27-38 岁)样本(样本数=65)中这些频谱特征与年龄相关的变化。与现有文献一致,我们发现与年龄相关的非周期性斜率和偏移量的显著下降,以及峰值频率和功率的变化,这些变化是频率特异性的;我们首次证明了这些变化的效应大小在不同脑区也是不同的。这项工作不仅为越来越多的工作增添了亮点,突出了使用 OPMs 的优势,尤其是在研究发育方面,而且还为大脑神经生理变化随年龄的变化提供了新的信息。
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来源期刊
CiteScore
7.60
自引率
10.60%
发文量
124
审稿时长
6-12 weeks
期刊介绍: The journal publishes theoretical and research papers on cognitive brain development, from infancy through childhood and adolescence and into adulthood. It covers neurocognitive development and neurocognitive processing in both typical and atypical development, including social and affective aspects. Appropriate methodologies for the journal include, but are not limited to, functional neuroimaging (fMRI and MEG), electrophysiology (EEG and ERP), NIRS and transcranial magnetic stimulation, as well as other basic neuroscience approaches using cellular and animal models that directly address cognitive brain development, patient studies, case studies, post-mortem studies and pharmacological studies.
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