Transcriptional characterization of iPSC-derived microglia as a model for therapeutic development in
Gokul Ramaswami1, Yeliz Yuva-Aydemir2, Brynn Akerberg2
1CAMP4 Therapeutics Corporation, Cambridge, MA, USA. gokul@camp4tx.com.
Abstract:
Microglia are the resident immune cells in the brain that play a key role in driving neuroinflammation, a hallmark of neurodegenerative disorders. Inducible microglia-like cells have been developed as an in vitro platform for molecular and therapeutic hypothesis generation and testing. However, there has been no systematic assessment of similarity of these cells to primary human microglia along with their responsiveness to external cues expected of primary cells in the brain. In this study, we performed transcriptional characterization of commercially available human inducible pluripotent stem cell (iPSC)-derived microglia-like (iMGL) cells by bulk and single cell RNA sequencing to assess their similarity with primary human microglia. To evaluate their stimulation responsiveness, iMGL cells were treated with Liver X Receptor (LXR) pathway agonists and their transcriptional responses characterized by bulk and single cell RNA sequencing. Bulk transcriptome analyses demonstrate that iMGL cells have a similar overall expression profile to freshly isolated human primary microglia and express many key microglial transcription factors and functional and disease-associated genes. Notably, at the single-cell level, iMGL cells exhibit distinct transcriptional subpopulations, representing both homeostatic and activated states present in normal and diseased primary microglia. Treatment of iMGL cells with LXR pathway agonists induces robust transcriptional changes in lipid metabolism and cell cycle at the bulk level. At the single cell level, we observe heterogeneity in responses between cell subpopulations in homeostatic and activated states and deconvolute bulk expression changes into their corresponding single cell states. In summary, our results demonstrate that iMGL cells exhibit a complex transcriptional profile and responsiveness, reminiscent of in vivo microglia, and thus represent a promising model system for therapeutic development in neurodegeneration.
Insights
Human induced pluripotent stem cell-derived microglia-like cells (iMGL) closely mimic primary microglia. These iMGL cells show complex transcriptional profiles and responsiveness, making them a promising model for neurodegenerative disease research.
Area of Science:
- Neuroscience
- Immunology
- Stem Cell Biology
Background:
- Microglia, the brain's immune cells, are crucial in neuroinflammation and neurodegenerative diseases.
- Inducible microglia-like cells (iMGL) offer an in vitro model but require validation against primary human microglia.
- Systematic assessment of iMGL similarity and responsiveness to external stimuli is lacking.
Purpose of the Study:
- To transcriptionally characterize human iPSC-derived microglia-like (iMGL) cells.
- To assess the similarity of iMGL cells to primary human microglia.
- To evaluate iMGL responsiveness to Liver X Receptor (LXR) pathway agonists.
Main Methods:
- Bulk and single-cell RNA sequencing of iMGL cells.
- Transcriptional profiling of iMGL cells before and after LXR agonist treatment.
- Comparison of iMGL transcriptomes with primary human microglia.
Main Results:
- Bulk transcriptome analysis revealed iMGL cells share expression profiles with primary microglia, including key transcription factors and disease-associated genes.
- Single-cell analysis identified distinct iMGL subpopulations mirroring homeostatic and activated states found in primary microglia.
- LXR agonist treatment induced significant transcriptional changes in lipid metabolism and cell cycle in iMGL cells, with heterogeneous responses across subpopulations.
Conclusions:
- Human iMGL cells exhibit complex transcriptional profiles and responsiveness comparable to in vivo microglia.
- These cells represent a valuable in vitro model system for studying neuroinflammation and developing therapeutics for neurodegenerative disorders.
- Single-cell analysis provides crucial insights into the heterogeneity of iMGL responses.
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