Isolation of primary microglia from the human post-mortem brain: effects of ante- and post-mortem variables

Mark R Mizee1,2, Suzanne S M Miedema3, Marlijn van der Poel3

  • 1Netherlands Brain Bank, Netherlands Institute for Neuroscience, Amsterdam, The Netherlands. m.mizee@nin.knaw.nl.

Insights

Researchers developed a fast method to isolate pure human microglia from autopsy brain tissue. This technique enables immediate analysis of microglia in neurological and psychiatric disorders, unaffected by donor age or post-mortem time.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglia are crucial immune cells in the central nervous system, vital for understanding neurological and psychiatric disorders.
  • Current research often relies on animal models, limiting direct insights into human microglial function in disease.

Purpose of the Study:

  • To establish a rapid and efficient protocol for isolating pure primary human microglia from post-mortem brain tissue.
  • To enable immediate phenotyping of microglia in relation to donor clinical and neuropathological variables.

Main Methods:

  • Isolation of human microglia using density gradient centrifugation and CD11b-specific cell selection from autopsy brain tissue.
  • Protocol completion within 4 hours, yielding substantial numbers of viable microglia.
  • Application to over 100 brain donor samples for robust data analysis.

Main Results:

  • The protocol yields an average of 450,000 (white matter) and 145,000 (grey matter) viable cells per gram of tissue.
  • Microglial yield positively correlates with cerebrospinal fluid pH; donor age and post-mortem delay do not significantly impact yield.
  • Microglia phenotype changes are linked to neurological diagnosis, not pre- or post-mortem factors. Cryogenic storage impacts recovery and RNA quality.

Conclusions:

  • A rapid, effective protocol for isolating primary human microglia from post-mortem tissue is established.
  • This method facilitates immediate phenotyping, crucial for studying microglial roles in neurological diseases.
  • The findings support direct investigation of human microglia in relation to neuropathology.

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