体外研究人类小胶质细胞的新兴模型

Q3 Neuroscience Advances in neurobiology Pub Date : 2024-01-01 DOI:10.1007/978-3-031-55529-9_30
Henna Jäntti, Lois Kistemaker, Alice Buonfiglioli, Lot D De Witte, Tarja Malm, Elly M Hol
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引用次数: 0

摘要

新的体外模型为研究活体人类小胶质细胞提供了一个令人兴奋的机会。以前,了解人类小胶质细胞在健康和疾病中的作用的一个主要限制因素是其可用性有限。在这里,我们概述了获得人类干细胞或血液单核细胞衍生的小胶质细胞样细胞的方法,这些细胞为研究提供了几乎无限的活人类小胶质细胞来源。我们探讨了了解小胶质细胞本体如何有助于在培养皿中更准确地模拟小胶质细胞的特征和功能。此外,我们将干细胞衍生分化方法分为基于胚状体、生长因子驱动和共培养驱动的方法,并回顾了将干细胞直接重编程为小胶质细胞样细胞的新型病毒方法。此外,我们还回顾了该领域用于验证小胶质细胞身份和表征功能性小胶质细胞表型的典型读数。我们概述了在更接近人类中枢神经系统(发育中)的环境中研究小胶质细胞的方法,如含有整合或先天发育的小胶质细胞的共培养和类脑器官系统。我们将重点介绍如何利用类小胶质细胞揭示人类疾病的分子和功能机制,重点是阿尔茨海默病和其他神经退行性疾病以及神经发育疾病。最后,我们对在培养皿中更精确地模拟人类小胶质细胞所面临的挑战和未来的机遇进行了重要概述,并得出结论:新型体外小胶质细胞样细胞具有令人兴奋的潜力,可将小胶质细胞的临床前研究带入一个新时代。
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Emerging Models to Study Human Microglia In vitro.

New in vitro models provide an exciting opportunity to study live human microglia. Previously, a major limitation in understanding human microglia in health and disease has been their limited availability. Here, we provide an overview of methods to obtain human stem cell or blood monocyte-derived microglia-like cells that provide a nearly unlimited source of live human microglia for research. We address how understanding microglial ontogeny can help modeling microglial identity and function in a dish with increased accuracy. Moreover, we categorize stem cell-derived differentiation methods into embryoid body based, growth factor driven, and coculture-driven approaches, and review novel viral approaches to reprogram stem cells directly into microglia-like cells. Furthermore, we review typical readouts used in the field to verify microglial identity and characterize functional microglial phenotypes. We provide an overview of methods used to study microglia in environments more closely resembling the (developing) human CNS, such as cocultures and brain organoid systems with incorporated or innately developing microglia. We highlight how microglia-like cells can be utilized to reveal molecular and functional mechanisms in human disease context, focusing on Alzheimer's disease and other neurodegenerative diseases as well as neurodevelopmental diseases. Finally, we provide a critical overview of challenges and future opportunities to more accurately model human microglia in a dish and conclude that novel in vitro microglia-like cells provide an exciting potential to bring preclinical research of microglia to a new era.

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来源期刊
Advances in neurobiology
Advances in neurobiology Neuroscience-Neurology
CiteScore
2.80
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0.00%
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0
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