Repeated Activation of Pyramidal Neurons in the Prefrontal Cortex Alters Microglial Phenotype in Male Mice

Justin L Bollinger1, Matthew J Horchar1, Eric S Wohleb2

  • 1Department of Pharmacology & Systems Physiology, University of Cincinnati College of Medicine, Cincinnati, Ohio.

Insights

Repeatedly activating neurons in the medial prefrontal cortex (mPFC) alters microglia, the brain's immune cells. This neuronal activation alone is sufficient to change microglia phenotype and function, impacting cognition.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Immunology

Background:

  • Aberrant neuronal activity influences microglia phenotype and function in stress and neurodegenerative diseases.
  • Heightened neuronal activity may prompt microglia to phagocytose synapses, affecting cognition and behavior.

Purpose of the Study:

  • To determine if neuronal activation alone, independent of disease, alters microglia phenotype in the medial prefrontal cortex (mPFC).
  • To investigate the impact of chemogenetically induced neuronal activation on microglial characteristics and cognitive function.

Main Methods:

  • Used adeno-associated virus-mediated and Cre-dependent chemogenetics (designer receptors exclusively activated by designer drugs - DREADD) to activate excitatory pyramidal neurons (CaMKIIa+) in the mPFC.
  • Examined molecular, cytometric, and behavioral endpoints to assess microglial changes and working memory function.

Main Results:

  • Recurrent DREADD-induced neuronal activation caused significant changes in microglial density, clustering, and morphology in the mPFC.
  • Increased microglia-specific transcripts related to synaptic pruning (e.g., Csf1r, Cd11b) were observed.
  • Neuronal activation magnitude correlated with microglial morphology changes, increased lysosome volume, and working memory deficits.

Conclusions:

  • Repeated neuronal activation alone is sufficient to drive changes in microglia phenotype and function in the mPFC.
  • These findings highlight the sensitivity of microglia to neuronal activity and suggest potential indirect effects in circuit manipulation studies.
  • Future research should consider non-neuronal contributions, including microglia, in studies using optogenetic and chemogenetic approaches.

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