Engineering of Human Blood-Induced Microglia-like Cells for Reverse-Translational Brain Research.

IF 1.2 4区 综合性期刊 Q3 MULTIDISCIPLINARY SCIENCES Jove-Journal of Visualized Experiments Pub Date : 2024-09-06 DOI:10.3791/66819
Sota Kyuragi, Shogo Inamine, Masahiro Ohgidani, Takahiro A Kato
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Abstract

Recent investigations employing animal models have highlighted the significance of microglia as crucial immunological modulators in various neuropsychiatric and physical diseases. Postmortem brain analysis and positron emission tomography imaging are representative research methods that evaluate microglial activation in human patients; the findings have revealed the activation of microglia in the brains of patients presenting with various neuropsychiatric disorders and chronic pain. Nonetheless, the aforementioned technique merely facilitates the assessment of limited aspects of microglial activation. In lieu of brain biopsy and the induced pluripotent stem cell technique, we initially devised a technique to generate directly induced microglia-like (iMG) cells from freshly derived human peripheral blood monocytes by supplementing them with granulocyte-macrophage colony-stimulating factor and interleukin 34 for 2 weeks. These iMG cells can be employed to perform dynamic morphological and molecular-level analyses concerning phagocytic capacity and cytokine releases following cellular-level stress stimulation. Recently, comprehensive transcriptome analysis has been used to verify the similarity between human iMG cells and brain primary microglia. The patient-derived iMG cells may serve as key surrogate markers for predicting microglial activation in human brains and have aided in the unveiling of previously unknown dynamic pathophysiology of microglia in patients with Nasu-Hakola disease, fibromyalgia, bipolar disorder, and Moyamoya disease. Therefore, the iMG-based technique serves as a valuable reverse-translational tool and provides novel insights into elucidating dynamic the molecular pathophysiology of microglia in a variety of mental and physical diseases.

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人体血液诱导的小胶质细胞工程,用于逆转录脑研究。
最近采用动物模型进行的研究突出表明,小胶质细胞是各种神经精神疾病和身体疾病的重要免疫调节因子。死后脑分析和正电子发射断层扫描成像是评估人类患者小胶质细胞激活情况的代表性研究方法;研究结果显示,在患有各种神经精神疾病和慢性疼痛的患者大脑中,小胶质细胞被激活。尽管如此,上述技术只能对小胶质细胞活化的有限方面进行评估。为了取代脑活检和诱导多能干细胞技术,我们最初设计了一种技术,通过补充粒细胞-巨噬细胞集落刺激因子和白细胞介素34 2周,从新鲜的人类外周血单核细胞中直接生成诱导小胶质细胞样(iMG)细胞。这些 iMG 细胞可用于进行动态形态学和分子水平分析,了解细胞水平应激刺激后的吞噬能力和细胞因子释放情况。最近,综合转录组分析被用来验证人类 iMG 细胞与脑原代小胶质细胞之间的相似性。源自患者的 iMG 细胞可作为预测人脑小胶质细胞活化的关键替代标记物,并有助于揭示纳苏-哈科拉病、纤维肌痛、双相情感障碍和莫亚莫亚病患者小胶质细胞之前未知的动态病理生理学。因此,基于 iMG 的技术是一种宝贵的反向翻译工具,为阐明各种精神和身体疾病中小胶质细胞的动态分子病理生理学提供了新的见解。
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来源期刊
Jove-Journal of Visualized Experiments
Jove-Journal of Visualized Experiments MULTIDISCIPLINARY SCIENCES-
CiteScore
2.10
自引率
0.00%
发文量
992
期刊介绍: JoVE, the Journal of Visualized Experiments, is the world''s first peer reviewed scientific video journal. Established in 2006, JoVE is devoted to publishing scientific research in a visual format to help researchers overcome two of the biggest challenges facing the scientific research community today; poor reproducibility and the time and labor intensive nature of learning new experimental techniques.
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A Porcine Model of Acute Autologous Pulmonary Embolism. Agarose-Based Model Ecosystem for Cultivating Methanotrophs in a Methane-Oxygen Counter Gradient. Behavioral Training Procedures for Head-fixed Virtual Reality in Mice. Development and Application of Rapamycin-regulated Tyrosine Phosphatases. Engineering of Human Blood-Induced Microglia-like Cells for Reverse-Translational Brain Research.
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