Rhodes Natalie, Rier Lukas, Singh Krish D, Sato Julie, Vandewouw Marlee M, Holmes Niall, Boto Elena, Hill Ryan M, Rea Molly, Taylor Margot J, Brookes Matthew J
Sir Peter Mansfield Imaging Centre, School of Physics and Astronomy, University of Nottingham, Nottingham, United Kingdom.
Diagnostic & Interventional Radiology, The Hospital for Sick Children, Toronto, Canada.
Imaging Neurosci (Camb). 2025 Apr 6;3. doi: 10.1162/imag_a_00527. eCollection 2025.
Disruption of the balance between excitatory and inhibitory neurotransmission (E-I balance) is thought to underlie many neurodevelopmental disorders; however, its study is typically restricted to adults, animal models, and the lab-bench. Neurophysiological oscillations in the gamma frequency band relate closely to E-I balance, and a new technology-OPM-MEG-offers the possibility to measure such signals across the lifespan. We used OPM-MEG to measure gamma oscillations induced by visual stimulation in 101 participants, aged 2-34 years. We demonstrate a significantly changing spectrum with age, with low-amplitude broadband gamma oscillations in children and high-amplitude band limited oscillations in adults. We used a canonical cortical microcircuit to model these signals, revealing a significant decrease in the ratio of excitatory to inhibitory signalling with age in the superficial pyramidal neurons of the visual cortex. Our findings detail the first MEG metrics of gamma oscillations and their underlying generators from toddlerhood, providing a benchmark against which future studies can contextualise.
兴奋性和抑制性神经传递之间的平衡失调(E-I平衡)被认为是许多神经发育障碍的潜在原因;然而,其研究通常局限于成年人、动物模型和实验室环境。γ频段的神经生理振荡与E-I平衡密切相关,一种新技术——光学脑磁图(OPM-MEG)——提供了在整个生命周期测量此类信号的可能性。我们使用OPM-MEG测量了101名年龄在2至34岁之间的参与者在视觉刺激下诱发的γ振荡。我们证明了γ振荡频谱随年龄显著变化,儿童表现为低振幅宽带γ振荡,成年人表现为高振幅窄带振荡。我们使用一个典型的皮质微电路对这些信号进行建模,发现视觉皮层浅层锥体神经元中兴奋性与抑制性信号传递的比率随年龄显著下降。我们的研究结果详细阐述了从幼儿期开始的γ振荡及其潜在发生器的首个脑磁图指标,为未来的研究提供了一个可用于背景分析的基准。