Validation of Induced Microglia-Like Cells (iMG Cells) for Future Studies of Brain Diseases
Atoshi Banerjee1, Yimei Lu1, Kenny Do1
1Nevada Institute of Personalized Medicine, University of Nevada, Las Vegas, NV, United States.
Abstract:
Microglia are the primary resident immune cells of the central nervous system that maintain physiological homeostasis in the brain and contribute to the pathogenesis of many psychiatric disorders and neurodegenerative diseases. Due to the lack of appropriate human cellular models, it is difficult to study the basic pathophysiological processes linking microglia to brain diseases. In this study, we adopted a microglia-like cellular model derived from peripheral blood monocytes with granulocyte-macrophage colony-stimulating factor (GM-CSF) and interleukin-34 (IL-34). We characterized and validated this in vitro cellular model by morphology, immunocytochemistry, gene expression profiles, and functional study. Our results indicated that the iMG cells developed typical microglial ramified morphology, expressed microglial specific surface markers (P2RY12 and TMEM119), and possessed phagocytic activity. Principal component analyses and multidimensional scaling analyses of RNA-seq data showed that iMG cells were distinct from monocytes and induced macrophages (iMacs) but clustered closer to human microglia and hiPSC-induced microglia. Heatmap analyses also found that iMG cells, but not monocytes, were closely clustered with human primary microglia. Further pathway and relative expression analysis indicated that unique genes from iMG cells were involved in the regulation of the complement system, especially in the synapse and ion transport. Overall, our data demonstrated that the iMG model mimicked many features of the brain resident microglia, highlighting its utility in the study of microglial function in many brain diseases, such as schizophrenia and Alzheimer's disease (AD).
Insights
Researchers developed a new human microglia-like cell model from blood monocytes. This model effectively mimics brain microglia, aiding research into neurodegenerative diseases like Alzheimer's and schizophrenia.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are crucial for brain homeostasis and implicated in neurodegenerative and psychiatric disorders.
- Studying microglia is challenging due to the lack of suitable human cellular models.
- Existing models often fail to fully recapitulate the complexity of resident microglia.
Purpose of the Study:
- To develop and validate a novel human microglia-like cell (iMG) model derived from peripheral blood monocytes.
- To characterize the iMG model for its resemblance to primary human microglia.
- To assess the utility of the iMG model for studying microglial roles in brain diseases.
Main Methods:
- Generation of iMG cells from peripheral blood monocytes using GM-CSF and IL-34.
- Comprehensive characterization including morphology, immunocytochemistry, and gene expression profiling (RNA-seq).
- Functional assays assessing phagocytic activity and comparative analyses with monocytes, induced macrophages, and primary microglia.
Main Results:
- iMG cells exhibited typical microglial morphology, expressed key markers (P2RY12, TMEM119), and demonstrated phagocytic activity.
- RNA-seq analysis showed iMG cells clustered closely with human microglia, distinct from monocytes and induced macrophages.
- Pathway analysis revealed unique iMG genes involved in complement system regulation, synapse function, and ion transport.
Conclusions:
- The developed iMG model accurately mimics key features of human brain-resident microglia.
- This validated iMG model serves as a valuable tool for investigating microglial pathophysiology in neurological and psychiatric conditions.
- The model's utility is highlighted for studying diseases such as Alzheimer's disease and schizophrenia.
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