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.

Scientific Reports
|January 25, 2024
PubMed

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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