Liang Qian, Chen Zhe, Chen Xie, Huang Qiang, Sun Tao
Intelligent Robotics Institute, School of Mechatronical Engineering, Beijing Institute of Technology, Beijing 100081, China.
School of Medical Technology, Beijing Institute of Technology, Beijing 100081, China.
Micromachines (Basel). 2023 Aug 31;14(9):1703. doi: 10.3390/mi14091703.
Microcontact printing (CP) is widely used to guide neurons to form 2D networks for neuroscience research. However, it is still difficult to establish 3D neuronal cultures on the CP substrate even though 3D neuronal structures are able to recapitulate critical aspects of native tissue. Here, we demonstrate that the reduced cell-substrate adhesion caused by the CP substrate could conveniently facilitate the aggregate formation of large-scale 3D neuron cluster networks. Furthermore, based on the quantitative analysis of the calcium activity of the resulting cluster networks, the effect of cell seeding density and local restriction of the CP substrate on network dynamics was investigated in detail. The results revealed that cell aggregation degree, rather than cell number, could take on the main role of the generation of synchronized network-wide calcium oscillation (network bursts) in the 3D neuron cluster networks. This finding may provide new insights for easy and cell-saving construction of in vitro 3D pathological models of epilepsy, and into deciphering the onset and evolution of network bursts in developmental nerve systems.
微接触印刷(CP)被广泛用于引导神经元形成二维网络,以进行神经科学研究。然而,尽管三维神经元结构能够重现天然组织的关键特征,但在CP基板上建立三维神经元培养物仍然很困难。在这里,我们证明了CP基板引起的细胞与基板粘附力降低可以方便地促进大规模三维神经元簇网络的聚集体形成。此外,基于对所得簇网络钙活性的定量分析,详细研究了细胞接种密度和CP基板的局部限制对网络动力学的影响。结果表明,在三维神经元簇网络中,细胞聚集程度而非细胞数量在同步全网络钙振荡(网络爆发)的产生中起主要作用。这一发现可能为简便且节省细胞地构建癫痫体外三维病理模型以及解读发育神经系统中网络爆发的发生和演变提供新的见解。