Beenhakker Mark P
Epilepsy Curr. 2019 Mar-Apr;19(2):112-114. doi: 10.1177/1535759719835348.
Whole-Brain Neuronal Activity Displays Crackling Noise Dynamics Ponce-Alvarez A, Jouary A, Privat M, Deco G, Sumbre G. Neuron. 2018;100(6):1446-1459.e6. Previous studies suggest that the brain operates at a critical point in which phases of order and disorder coexist, producing emergent patterned dynamics at all scales and optimizing several brain functions. Here, we combined light-sheet microscopy with GCaMP zebrafish larvae to study whole-brain dynamics in vivo at near single-cell resolution. We show that spontaneous activity propagates in the brain's 3-dimensional space, generating scale-invariant neuronal avalanches with time courses and recurrence times that exhibit statistical self-similarity at different magnitude, temporal, and frequency scales. This suggests that the nervous system operates close to a nonequilibrium phase transition, where a large repertoire of spatial, temporal, and interactive modes can be supported. Finally, we show that gap junctions contribute to the maintenance of criticality and that, during interactions with the environment (sensory inputs and self-generated behaviors), the system is transiently displaced to a more ordered regime, conceivably to limit the potential sensory representations and motor outcomes.
全脑神经元活动呈现噼啪噪声动力学 庞塞 - 阿尔瓦雷斯A,茹亚里A,普里瓦特M,德科G,萨姆布雷G。《神经元》。2018年;100(6):1446 - 1459.e6。先前的研究表明,大脑在一个临界点运行,在这个临界点上,有序和无序阶段共存,在所有尺度上产生涌现的模式动力学,并优化多种脑功能。在这里,我们将光片显微镜与GCaMP斑马鱼幼虫相结合,以近单细胞分辨率研究体内全脑动力学。我们表明,自发活动在大脑的三维空间中传播,产生尺度不变的神经元雪崩,其时间进程和复发时间在不同的幅度、时间和频率尺度上表现出统计自相似性。这表明神经系统在接近非平衡相变的状态下运行,在这种状态下可以支持大量的空间、时间和交互模式。最后,我们表明缝隙连接有助于维持临界状态,并且在与环境相互作用(感觉输入和自我产生的行为)期间,系统会暂时转移到一个更有序的状态,这可能是为了限制潜在的感觉表征和运动结果。