Warm Davide, Bassetti Davide, Schroer Jonas, Luhmann Heiko J, Sinning Anne
Institute of Physiology, University Medical Center of the Johannes Gutenberg University, Mainz, Germany.
Front Cell Dev Biol. 2022 Aug 10;10:937761. doi: 10.3389/fcell.2022.937761. eCollection 2022.
Spontaneous activity plays a crucial role in brain development by coordinating the integration of immature neurons into emerging cortical networks. High levels and complex patterns of spontaneous activity are generally associated with low rates of apoptosis in the cortex. However, whether spontaneous activity patterns directly encode for survival of individual cortical neurons during development remains an open question. Here, we longitudinally investigated spontaneous activity and apoptosis in developing cortical cultures, combining extracellular electrophysiology with calcium imaging. These experiments demonstrated that the early occurrence of calcium transients was strongly linked to neuronal survival. Silent neurons exhibited a higher probability of cell death, whereas high frequency spiking and burst behavior were almost exclusively detected in surviving neurons. In local neuronal clusters, activity of neighboring neurons exerted a pro-survival effect, whereas on the functional level, networks with a high modular topology were associated with lower cell death rates. Using machine learning algorithms, cell fate of individual neurons was predictable through the integration of spontaneous activity features. Our results indicate that high frequency spiking activity constrains apoptosis in single neurons through sustained calcium rises and thereby consolidates networks in which a high modular topology is reached during early development.
自发活动通过协调未成熟神经元融入新兴皮质网络,在大脑发育中起着至关重要的作用。高水平和复杂模式的自发活动通常与皮质中低凋亡率相关。然而,在发育过程中自发活动模式是否直接编码单个皮质神经元的存活情况仍是一个悬而未决的问题。在此,我们纵向研究了发育中的皮质培养物中的自发活动和凋亡,将细胞外电生理学与钙成像相结合。这些实验表明,钙瞬变的早期出现与神经元存活密切相关。沉默神经元表现出更高的细胞死亡概率,而高频放电和爆发行为几乎只在存活的神经元中检测到。在局部神经元簇中,相邻神经元的活动发挥了促存活作用,而在功能层面,具有高模块化拓扑结构的网络与较低的细胞死亡率相关。使用机器学习算法,通过整合自发活动特征可以预测单个神经元的细胞命运。我们的结果表明,高频放电活动通过持续的钙升高来抑制单个神经元的凋亡,从而巩固在早期发育过程中达到高模块化拓扑结构的网络。