脑器官模型的电生理学见解:简要回顾。

IF 2.9 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY BMB Reports Pub Date : 2024-07-01
Rian Kang, Soomin Park, Saewoon Shin, Gyusoo Bak, Jong-Chan Park
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引用次数: 0

摘要

类脑器官是一种三维(3D)组织,由诱导多能干细胞(iPSCs)胚胎干细胞(ESCs)等干细胞衍生而成,能反映真实的人类大脑结构。它复制了人脑的复杂性和发育过程,使体外人脑研究成为可能。随着新兴技术的发展,它的应用也多种多样,包括疾病建模和药物筛选。已有多种实验方法用于研究脑器官组织的结构和分子特征。然而,要了解它们的功能特点和复杂性,还需要进行电生理分析。虽然单层细胞的电生理方法发展迅速,但由于缺乏三维特征,在研究电生理和神经网络特征方面存在一些局限性。本文综述了与脑器官组织神经复杂性和三维特征相关的电生理测量和分析方法。总之,对脑器官组织的电生理学认识使我们能够克服单层体外细胞培养模型的局限性,深入了解真实人脑的神经网络复杂性,为疾病建模提供新的途径。
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Electrophysiological insights with brain organoid models: a brief review.

Brain organoid is a three-dimensional (3D) tissue derived from stem cells such as induced pluripotent stem cells (iPSCs) embryonic stem cells (ESCs) that reflect real human brain structure. It replicates the complexity and development of the human brain, enabling studies of the human brain in vitro. With emerging technologies, its application is various, including disease modeling and drug screening. A variety of experimental methods have been used to study structural and molecular characteristics of brain organoids. However, electrophysiological analysis is necessary to understand their functional characteristics and complexity. Although electrophysiological approaches have rapidly advanced for monolayered cells, there are some limitations in studying electrophysiological and neural network characteristics due to the lack of 3D characteristics. Herein, electrophysiological measurement and analytical methods related to neural complexity and 3D characteristics of brain organoids are reviewed. Overall, electrophysiological understanding of brain organoids allows us to overcome limitations of monolayer in vitro cell culture models, providing deep insights into the neural network complex of the real human brain and new ways of disease modeling. [BMB Reports 2024; 57(7): 311-317].

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来源期刊
BMB Reports
BMB Reports 生物-生化与分子生物学
CiteScore
5.10
自引率
7.90%
发文量
141
审稿时长
1 months
期刊介绍: The BMB Reports (BMB Rep, established in 1968) is published at the end of every month by Korean Society for Biochemistry and Molecular Biology. Copyright is reserved by the Society. The journal publishes short articles and mini reviews. We expect that the BMB Reports will deliver the new scientific findings and knowledge to our readers in fast and timely manner.
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