Chikermane Meera, Weerdmeester Liz, Rajamani Nanditha, Köhler Richard M, Merk Timon, Vanhoecke Jojo, Horn Andreas, Neumann Wolf Julian
Department of Neurology, Movement Disorders and Neuromodulation Unit, Charité - Universitätsmedizin Berlin, Berlin, Germany.
Department of Neurology, Center for Brain Circuit Therapeutics, Brigham and Women's Hospital, Boston, United States.
Elife. 2024 Dec 4;13:RP97184. doi: 10.7554/eLife.97184.
Brain rhythms can facilitate neural communication for the maintenance of brain function. Beta rhythms (13-35 Hz) have been proposed to serve multiple domains of human ability, including motor control, cognition, memory, and emotion, but the overarching organisational principles remain unknown. To uncover the circuit architecture of beta oscillations, we leverage normative brain data, analysing over 30 hr of invasive brain signals from 1772 channels from cortical areas in epilepsy patients, to demonstrate that beta is the most distributed cortical brain rhythm. Next, we identify a shared brain network from beta-dominant areas with deeper brain structures, like the basal ganglia, by mapping parametrised oscillatory peaks to whole-brain functional and structural MRI connectomes. Finally, we show that these networks share significant overlap with dopamine uptake as indicated by positron emission tomography. Our study suggests that beta oscillations emerge in cortico-subcortical brain networks that are modulated by dopamine. It provides the foundation for a unifying circuit-based conceptualisation of the functional role of beta activity beyond the motor domain and may inspire an extended investigation of beta activity as a feedback signal for closed-loop neurotherapies for dopaminergic disorders.
脑节律可促进神经通信以维持脑功能。有人提出,β节律(13 - 35赫兹)在人类能力的多个领域发挥作用,包括运动控制、认知、记忆和情感,但总体组织原则仍不清楚。为了揭示β振荡的电路结构,我们利用标准脑数据,分析了癫痫患者皮质区域1772个通道超过30小时的侵入性脑信号,以证明β是分布最广的皮质脑节律。接下来,我们通过将参数化振荡峰值映射到全脑功能和结构MRI连接组,从β优势区域与更深层脑结构(如基底神经节)识别出一个共享脑网络。最后,我们表明,如正电子发射断层扫描所示,这些网络与多巴胺摄取有显著重叠。我们的研究表明,β振荡出现在受多巴胺调节的皮质 - 皮质下脑网络中。它为基于统一电路的β活动在运动领域之外的功能作用概念化提供了基础,并可能激发对β活动作为多巴胺能疾病闭环神经疗法反馈信号的进一步研究。