Related Experiment Video
Updated: Jun 12, 2025

Author Spotlight: Induced Microglia-Like Cell Technology to Shed Light on the Role of Microglial Dysfunction in Neuropsychiatric Disorders
Published on: September 6, 2024
Engineering of Human Blood-Induced Microglia-like Cells for Reverse-Translational Brain Research
Sota Kyuragi1, Shogo Inamine1, Masahiro Ohgidani2
1Department of Neuropsychiatry, Graduate School of Medical Sciences, Kyushu University.
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.
Insights
Researchers developed a new method to create human microglia-like (iMG) cells from blood. These iMG cells help study microglial activation in brain diseases, offering new insights into their dynamic pathophysiology.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are key immune cells in the brain, implicated in various diseases.
- Current methods to study human microglial activation are limited.
- Existing techniques like postmortem analysis and PET scans offer only partial insights.
Purpose of the Study:
- To develop a novel method for generating human microglia-like (iMG) cells from peripheral blood monocytes.
- To enable dynamic, cellular-level analysis of microglial function and activation.
- To establish patient-derived iMG cells as surrogate markers for in vivo microglial states.
Main Methods:
- Directly induced microglia-like (iMG) cells generated from human peripheral blood monocytes.
- Supplementation with granulocyte-macrophage colony-stimulating factor and interleukin 34 for 2 weeks.
- Analysis of iMG cell morphology, molecular profiles, phagocytic capacity, and cytokine release upon stimulation.
- Transcriptome analysis to confirm similarity with primary brain microglia.
Main Results:
- Successfully generated iMG cells from human peripheral blood monocytes.
- Demonstrated dynamic cellular functions including phagocytosis and cytokine release.
- Confirmed high similarity between iMG cells and primary human microglia via transcriptome analysis.
- Utilized iMG cells to reveal novel pathophysiology in Nasu-Hakola disease, fibromyalgia, bipolar disorder, and Moyamoya disease.
Conclusions:
- The iMG cell generation technique is a valuable reverse-translational tool.
- Patient-derived iMG cells serve as effective surrogate markers for microglial activation.
- This method provides novel insights into the dynamic molecular pathophysiology of microglia in diverse diseases.

