Zhang Hongyong, Huang Nan, Bian Sumin, Sawan Mohamad
CenBRAIN Neurotech, School of Engineering, Westlake University, Hangzhou, Zhejiang 310030, China.
School of Life Science, Westlake University, Hangzhou, Zhejiang 310030, China.
Cyborg Bionic Syst. 2025 Mar 5;6:0220. doi: 10.34133/cbsystems.0220. eCollection 2025.
Three-dimensional (3D) neural cultures are increasingly recognized for their complexity and resemblance to in vivo neural microenvironments. In this paper, we present a novel 3D cell culturing and noninvasive characterization technique of neural spheroids. Based on embedded platinum wires, the cultured cells are lollipop-shaped spheroids where axons are extended and integrated around the embedded wires. Electrical microstimulation enhanced the connectivity between spheroids and demonstrated signal propagation among them. The resultant axonal elongation facilitated the formation of robust neural tracts interconnecting the neural spheroids. Variation of cells' density allows to adjust the spheroid's diameter, identifying 1 million cells as good number of cells for robust spheroid formation. Recordings of spheroid activities reveal higher-quality neural signal measurement from interior cells compared to those obtained from exterior cells. Viability assays confirmed the efficacy of the proposed culturing technique for sustained growth of neural spheroids over a 1-month period. The proposed spheroid culturing technique holds potential applications in various fields, such as development of brain organoids, which enables real-time interconnection characterization and sensing of environment conditions.
三维(3D)神经培养因其复杂性以及与体内神经微环境的相似性而越来越受到认可。在本文中,我们展示了一种新型的神经球3D细胞培养和非侵入性表征技术。基于嵌入式铂丝,培养的细胞呈棒棒糖形状的球体,轴突围绕嵌入式铂丝延伸并整合。电微刺激增强了球体之间的连接,并证明了信号在它们之间的传播。由此产生的轴突伸长促进了连接神经球的强健神经束的形成。细胞密度的变化可以调整球体的直径,确定100万个细胞是形成强健球体的合适细胞数量。球体活动记录显示,与从外部细胞获得的信号相比,从内部细胞获得的神经信号测量质量更高。活力测定证实了所提出的培养技术在1个月内持续促进神经球生长的有效性。所提出的球体培养技术在各个领域具有潜在应用,例如脑类器官的开发,这能够进行实时互连表征和环境条件传感。