Culture shock: microglial heterogeneity, activation, and disrupted single-cell microglial networks in vitro

Mika P Cadiz1,2, Tanner D Jensen1, Jonathon P Sens1,2

  • 1Department of Neuroscience, Mayo Clinic, Scottsdale, AZ, 85259, USA.

Abstract

Insights

Cultured microglia exhibit significant "culture shock," altering their gene expression and deviating from in vivo states. Identifying key drivers may help restore homeostatic signatures in vitro for more accurate research.

Area of Science:

  • Neuroscience
  • Immunology
  • Genetics

Background:

  • Microglia are crucial brain immune cells involved in disease.
  • Genetic manipulation of microglia in vivo is challenging.
  • Primary microglial cultures offer controlled study but may alter cell states.

Purpose of the Study:

  • To compare transcriptional signatures of in vivo microglia with primary microglial cultures.
  • To identify key drivers regulating microglial phenotype changes in culture.
  • To assess the potential for restoring homeostatic microglial states in vitro.

Main Methods:

  • Single-cell RNA sequencing (scRNAseq) to compare fresh and cultured microglia.
  • Differential gene expression and co-expression module analysis.
  • Construction of causal predictive network models to identify key transcriptional regulators.
  • Validation via knockdown of identified key drivers (C1qc, Prdx1) in cultured microglia.

Main Results:

  • Cultured microglia are heterogeneous, with subpopulations resembling macrophages/monocytes.
  • In vitro microglia display "culture shock" gene signatures, upregulating disease-associated genes (e.g., Apoe, Lyz2) and downregulating homeostatic markers (e.g., Cx3cr1, P2ry12).
  • Key drivers modulate the shift from homeostatic to activated phenotypes; C1qc knockdown reduced activation markers.

Conclusions:

  • Microglia undergo significant transcriptional changes in culture, termed "culture shock," deviating from in vivo homeostatic signatures.
  • Cultured microglia do not recapitulate in vivo states accurately.
  • Predictive network models identified potential drivers to restore homeostatic states in vitro, with C1qc knockdown partially attenuating activation.

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