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神经通路仿生多纳米纤维模型系统调控神经分化及其在单细胞分辨率下的转录结构。

Nervous tract-bioinspired multi-nanoyarn model system regulating neural differentiation and its transcriptional architecture at single-cell resolution.

机构信息

Department of Neurosurgery, Qilu Hospital of Shandong University and Institute of Brain and Brain-Inspired Science, Cheeloo College of Medicine, Shandong University, Jinan, Shandong, 250012, China; Jinan Microecological Biomedicine Shandong Laboratory and Shandong Key Laboratory of Brain Function Remodeling, Jinan, 250117, China.

College of Textiles & Clothing, Qingdao University, Qingdao, 266071, China.

出版信息

Biomaterials. 2023 Jul;298:122146. doi: 10.1016/j.biomaterials.2023.122146. Epub 2023 May 5.

DOI:10.1016/j.biomaterials.2023.122146
PMID:37149989
Abstract

Bioinspired by native nervous tracts, a spinal cord-mimicking model system that was composed of multiple nanofibrous yarns (NYs) ensheathed in a nanofibrous tube was constructed by an innovative electrospinning-based fabrication and integration strategy. The infilling NYs exhibited uniaxially aligned nanofibrous architecture that had a great resemblance to spatially-arranged native nervous tracts, while the outer nanofibrous tubes functioned as an artificial dura matter to provide a stable intraluminal microenvironment. The three-dimensional (3D) NYs were demonstrated to induce alignment, facilitate migration, promote neuronal differentiation, and even phenotypic maturation of seeded neural stem and progenitor cells (NSPCs), while inhibiting gliogenesis. Single-cell transcriptome analysis showed that the NSPC-loaded 3D NY model shared many similarities with native spinal cords, with a great increase in excitatory/inhibitory (EI) neuron ratio. Curcumin, as a model drug, was encapsulated into nanofibers of NYs to exert an antioxidant effect and enhanced axon regeneration. Overall, this study provides a new paradigm for the development of a next-generation in vitro neuronal model system via anatomically accurate nervous tract simulation and constructs a blueprint for the research on NSPC diversification in the biomimetic microenvironment.

摘要

受天然神经束启发,通过创新的基于静电纺丝的制造和集成策略,构建了一种由多根纳米纤维纱(NY)包裹在纳米纤维管中的脊髓模拟模型系统。填充的 NY 呈现出单轴取向的纳米纤维结构,与空间排列的天然神经束非常相似,而外部纳米纤维管则作为人工硬脑膜提供稳定的腔内微环境。三维(3D)NY 被证明可以诱导细胞排列、促进迁移、促进神经元分化,甚至促进接种的神经干细胞和祖细胞(NSPC)的表型成熟,同时抑制神经胶质生成。单细胞转录组分析表明,负载 NSPC 的 3D NY 模型与天然脊髓有许多相似之处,兴奋性/抑制性(EI)神经元比例显著增加。姜黄素作为一种模型药物,被包裹在 NY 的纳米纤维中,发挥抗氧化作用并促进轴突再生。总的来说,这项研究通过解剖学上精确的神经束模拟为开发下一代体外神经元模型系统提供了新范例,并为仿生微环境中 NSPC 多样化的研究构建了蓝图。

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