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Culturing Microglia from the Neonatal and Adult Central Nervous System
Published on: August 9, 2013
Physiology of Cultured Human Microglia Maintained in a Defined Culture Medium
Manju Tewari1,2, Maheen Khan3, Megha Verma1
1Department of Pharmacology and Physiology, Saint Louis University School of Medicine, St. Louis, MO.
Abstract:
Microglia are the primary immune cell of the CNS, comprising 5-20% of the ∼60 billion neuroglia in the human brain. In the developing and adult CNS, they preferentially target active neurons to guide synapse maturation and remodeling. At the same time, they are the first line of defense against bacterial, fungal, and viral CNS infections. Although an extensive literature details their roles in rodents, less is known about how they function in humans because of the difficulty in obtaining tissue samples and the understandable inability to extensively study human microglia in situ. In this study, we use recent advances in the study of brain microenvironments to establish cultures of primary human microglia in a serum-free medium. Postsurgical samples of human brain were enzymatically and mechanically dissociated into single cells, and microglia were isolated at high purity by positive selection using CD11b Ab-coated microbeads. The CD11b+ cells were plated on poly-l-lysine-coated surfaces and bathed in serum-free DMEM/F12 supplemented with three essential components (TGF-β, IL-34, and cholesterol). Under these conditions, microglia assumed a ramified morphology, showed limited proliferation, actively surveyed their surroundings, and phagocytosed bacterial microparticles. In the presence of LPS, they assumed a more compact shape and began production of proinflammatory cytokines and reactive oxygen species. LPS on its own triggered release of TNF-α, whereas release of IL-1β required costimulation by ATP. Thus, human microglia maintained in a defined medium replicate many of the characteristics expected of native cells in the brain and provide an accessible preparation for investigations of human microglial physiology, pharmacology, and pathophysiology.
Insights
Researchers developed a serum-free method to culture primary human microglia, enabling detailed study of these crucial central nervous system (CNS) immune cells and their functions in health and disease.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are the primary immune cells of the human central nervous system (CNS).
- Understanding human microglia function is limited due to challenges in obtaining and studying tissue samples.
- Existing research primarily relies on rodent models, with less known about human microglial behavior in situ.
Purpose of the Study:
- To establish a reliable method for culturing primary human microglia in a defined, serum-free medium.
- To characterize the behavior and functions of human microglia in vitro.
- To provide an accessible model for investigating human microglial physiology, pharmacology, and pathophysiology.
Main Methods:
- Utilized postsurgical human brain samples for cell isolation.
- Employed enzymatic and mechanical dissociation followed by CD11b antibody-based magnetic bead selection for high-purity microglia isolation.
- Cultured isolated microglia in a serum-free DMEM/F12 medium supplemented with TGF-β, IL-34, and cholesterol.
Main Results:
- Established primary human microglia cultures exhibiting ramified morphology, limited proliferation, active surveying, and phagocytosis.
- Demonstrated that lipopolysaccharide (LPS) stimulation induced a more compact shape and production of proinflammatory cytokines and reactive oxygen species.
- Showed that TNF-α release was triggered by LPS alone, while IL-1β release required co-stimulation with ATP.
Conclusions:
- The developed serum-free culture system effectively replicates key characteristics of native human microglia.
- This method provides a valuable and accessible preparation for studying human microglial responses.
- Facilitates future research into human microglial roles in CNS health, disease, and therapeutic interventions.

