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通过对人SH-SY5Y神经母细胞瘤细胞系进行重编程而开发出的一种新型功能性胆碱能样神经元的先进细胞模型。

A new advanced cellular model of functional cholinergic-like neurons developed by reprogramming the human SH-SY5Y neuroblastoma cell line.

作者信息

D'Aloia Alessia, Pastori Valentina, Blasa Stefania, Campioni Gloria, Peri Francesco, Sacco Elena, Ceriani Michela, Lecchi Marzia, Costa Barbara

机构信息

Department of Biotechnology and Biosciences, University of Milano-Bicocca, Piazza della Scienza 2, 20126, Milano, Italy.

Milan Center for Neuroscience (NeuroMI), University of Milano-Bicocca, Piazza dell'Ateneo Nuovo 1, 20126, Milano, Italy.

出版信息

Cell Death Discov. 2024 Jan 12;10(1):24. doi: 10.1038/s41420-023-01790-7.

Abstract

Modeling human neuronal properties in physiological and pathological conditions is essential to identify novel potential drugs and to explore pathological mechanisms of neurological diseases. For this purpose, we generated a three-dimensional (3D) neuronal culture, by employing the readily available human neuroblastoma SH-SY5Y cell line, and a new differentiation protocol. The entire differentiation process occurred in a matrix and lasted 47 days, with 7 days of pre-differentiation phase and 40 days of differentiation, and allowed the development of a 3D culture in conditions consistent with the physiological environment. Neurons in the culture were electrically active, were able to establish functional networks, and showed features of cholinergic neurons. Hence here we provide an easily accessible, reproducible, and suitable culture method that might empower studies on synaptic function, vesicle trafficking, and metabolism, which sustain neuronal activity and cerebral circuits. Moreover, this novel differentiation protocol could represent a promising cellular tool to study physiological cellular processes, such as migration, differentiation, maturation, and to develop novel therapeutic approaches.

摘要

在生理和病理条件下模拟人类神经元特性对于识别新型潜在药物以及探索神经疾病的病理机制至关重要。为此,我们通过使用易于获得的人类神经母细胞瘤SH-SY5Y细胞系和一种新的分化方案,生成了一种三维(3D)神经元培养物。整个分化过程在一种基质中进行,持续47天,包括7天的预分化阶段和40天的分化阶段,并在与生理环境一致的条件下实现了3D培养物的发育。培养物中的神经元具有电活性,能够建立功能网络,并表现出胆碱能神经元的特征。因此,我们在此提供一种易于获取、可重复且合适的培养方法,该方法可能有助于对维持神经元活动和脑回路的突触功能、囊泡运输及代谢进行研究。此外,这种新型分化方案可能成为一种有前景的细胞工具,用于研究诸如迁移、分化、成熟等生理细胞过程,并开发新的治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81cc/10786877/2a3c1ad13787/41420_2023_1790_Fig1_HTML.jpg

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