Department of Histology & Embryology, College of Basic Medical Sciences, Jilin University, Changchun 130021, People's Republic of China.
Center for Reproductive Medicine, Department of Obstetrics and Gynecology, The Second Hospital, Jilin University, Changchun 130041, People's Republic of China.
J Neural Eng. 2023 Jul 20;20(4). doi: 10.1088/1741-2552/ace658.
Three-dimensional (3D) neural tissue engineering is expected to provide new stride in developing neural disease models and functional substitutes to aid in the treatment of central nervous system injury. We have previously detailed an electrical stimulation (ES) system to generate 3D mouse engineered neural tissue (mENT). However, ES-induced human ENT (hENT) has not previously been either investigated or identified in structural and functional manner. Here, we applied ES as a stimulator to regulate human neural stem cells in 3D Matrigel, explored the components and functional properties of hENTs.By immunofluorescence chemical staining and electron microscope imaging, we evaluated the effects of ES on (1) neuronal differentiation and maturation, (2) neurites outgrowth and alignment in hENT, (3) formation of synapses and myelin sheaths in hENT. We further investigated the formation of synaptic connections between-fused mouse and human tissue. We used calcium imaging to detect activities of neurons in hENT culture.ES could induce neuronal differentiation, the orderly growth of neurites and the maturation of neuron subtypes to construct a well-developed neuronal network with synapses and myelin sheaths. Most importantly, we discovered that raising extracellular Kconcentration resulted the increasing neuronal excitability in the hENT, indicating electrical activities in neuronal cells.We applied ES to generate the organised 3D hENTs and identified them in both structural and functional manner.
三维(3D)神经组织工程有望为开发神经疾病模型和功能性替代物提供新的突破,以帮助治疗中枢神经系统损伤。我们之前详细介绍了一种电刺激(ES)系统,用于生成 3D 小鼠工程化神经组织(mENT)。然而,ES 诱导的人 ENT(hENT)以前尚未以结构和功能的方式进行研究或鉴定。在这里,我们应用 ES 作为刺激物来调节 3D Matrigel 中的人神经干细胞,探索 hENT 的组成和功能特性。通过免疫荧光化学染色和电子显微镜成像,我们评估了 ES 对(1)神经元分化和成熟、(2)hENT 中神经突的生长和排列、(3)hENT 中突触和髓鞘形成的影响。我们进一步研究了融合的小鼠和人组织之间突触连接的形成。我们使用钙成像来检测 hENT 培养物中神经元的活动。ES 可以诱导神经元分化、神经突的有序生长和神经元亚型的成熟,从而构建具有突触和髓鞘的发达神经网络。最重要的是,我们发现提高细胞外 K+浓度会导致 hENT 中神经元兴奋性增加,表明神经元细胞中的电活动。我们应用 ES 生成有序的 3D hENT,并以结构和功能的方式对其进行鉴定。