Assembling a Coculture System to Prepare Highly Pure Induced Pluripotent Stem Cell-Derived Neurons at Late Maturation Stages.

IF 2.7 3区 医学 Q3 NEUROSCIENCES eNeuro Pub Date : 2024-07-30 Print Date: 2024-07-01 DOI:10.1523/ENEURO.0165-24.2024
Masuma Akter, Masood Sepehrimanesh, Wu Xu, Baojin Ding
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Abstract

Generation of human induced pluripotent stem cell (hiPSC)-derived motor neurons (MNs) offers an unprecedented approach to modeling movement disorders such as dystonia and amyotrophic lateral sclerosis. However, achieving survival poses a significant challenge when culturing induced MNs, especially when aiming to reach late maturation stages. Utilizing hiPSC-derived motor neurons and primary mouse astrocytes, we assembled two types of coculture systems: direct coculturing of neurons with astrocytes and indirect coculture using culture inserts that physically separate neurons and astrocytes. Both systems significantly enhance neuron survival. Compared with these two systems, no significant differences in neurodevelopment, maturation, and survival within 3 weeks, allowing to prepare neurons at maturation stages. Using the indirect coculture system, we obtained highly pure MNs at the late mature stage from hiPSCs. Transcriptomic studies of hiPSC-derived MNs showed a typical neurodevelopmental switch in gene expression from the early immature stage to late maturation stages. Mature genes associated with neurodevelopment and synaptogenesis are highly enriched in MNs at late stages, demonstrating that these neurons achieve maturation. This study introduces a novel tool for the preparation of highly pure hiPSC-derived neurons, enabling the determination of neurological disease pathogenesis in neurons at late disease onset stages through biochemical approaches, which typically necessitate highly pure neurons. This advancement is particularly significant in modeling age-related neurodegeneration.

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组装共培养系统,制备处于成熟晚期的高纯度诱导多能干细胞衍生神经元。
生成人类诱导多能干细胞(hiPSC)衍生的运动神经元(MNs)为肌张力障碍和肌萎缩侧索硬化症等运动障碍的建模提供了前所未有的方法。然而,在培养诱导的运动神经元时,尤其是在达到晚期成熟阶段时,实现存活是一项重大挑战。利用 hiPSC 衍生的运动神经元和原代小鼠星形胶质细胞,我们组装了两种类型的共培养系统:神经元与星形胶质细胞的直接共培养,以及使用培养插片将神经元和星形胶质细胞物理分离的间接共培养。这两种系统都能明显提高神经元的存活率。与这两种系统相比,神经元的发育、成熟和 3 周内的存活率没有明显差异,因此可以在成熟阶段制备神经元。利用间接共培养系统,我们从 hiPSCs 中获得了成熟晚期的高纯度 MNs。对 hiPSC 衍生的 MNs 进行的转录组学研究显示,从早期不成熟阶段到晚期成熟阶段,基因表达发生了典型的神经发育转换。与神经发育和突触发生相关的成熟基因在晚期阶段的 MNs 中高度富集,表明这些神经元实现了成熟。这项研究介绍了一种制备高纯度 hiPSC 衍生神经元的新工具,从而能够通过生化方法(通常需要高纯度神经元)确定疾病晚期神经元的神经疾病发病机制。这一进展对于模拟与年龄相关的神经变性尤为重要。意义声明 实现存活是长期神经细胞培养的重大挑战。我们利用 hiPSC 衍生的运动神经元和原代小鼠星形胶质细胞,建立了一种间接共培养系统,使用培养插片将神经元和星形胶质细胞物理分离,从而促进神经元的成熟。转录组研究揭示了基因表达从早期不成熟阶段到晚期成熟阶段的典型神经发育转换,表明用培养插片制备的神经元质量高、成熟度高。这项研究介绍了一种制备高纯度 hiPSC 衍生神经元的新工具,使人们能够通过生化方法(通常需要高纯度的神经元)确定处于疾病发病晚期的神经元的神经疾病发病机制。这一进展对于年龄相关神经变性建模尤其重要。
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来源期刊
eNeuro
eNeuro Neuroscience-General Neuroscience
CiteScore
5.00
自引率
2.90%
发文量
486
审稿时长
16 weeks
期刊介绍: An open-access journal from the Society for Neuroscience, eNeuro publishes high-quality, broad-based, peer-reviewed research focused solely on the field of neuroscience. eNeuro embodies an emerging scientific vision that offers a new experience for authors and readers, all in support of the Society’s mission to advance understanding of the brain and nervous system.
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