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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
3D cortical microtissue with innate microglia for studying real-time cell behavior across maturation and inflammatory
Alexander Del Toro1,2, Kaylen Aguilar1, Angelina Clark3
1Department of Neuroscience, Brown University, Providence, RI, USA.
Abstract:
Microglia represent the immune component of the central nervous system (CNS) that displays dynamic responses to injury and disease. Across the developing and mature CNS, microglia emerge as immunocompetent cells that continuously survey their surroundings to maintain tissue homeostasis and respond to threats. There remains a gap in 3D in vitro models that contain microglia and can provide both developmental and mature functional hallmarks. Using a 3D neural multicellular model, cortical microtissues, derived from primary rat cortical cells, we conducted live imaging to monitor microglia dynamics from early, middle, and late stage microtissue maturation. We optimized a within-micromold imaging approach that allows for live microglia imaging without removing microtissues from their culturing environment. We confirm that microglia exhibit baseline surveillance characterized by relatively stationary somas and highly dynamic cell processes that continuously extend and retract. Following proinflammatory challenges, microglia engulf lipopolysaccharide particles, accompanied by dynamic shifts in motility patterns; and rapidly respond to laser-induced tissue damage through process extension, whole-cell displacement, and local recruitment. Lastly, we show that microtissue age in culture strongly influences both baseline and directed motility profiles. Collectively, these studies demonstrate that within a 3D microenvironment, microglia exhibit pronounced changes in morphology, surveillance area, motility, and injury response across microtissue maturation. Microtissues can serve as a valuable in vitro platform for both microglia developmental studies and investigations of brain inflammation related to CNS injuries, infections, and diseases.
Insights
This study introduces a 3D neural model to observe microglia, the central nervous system
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are the immune cells of the central nervous system (CNS).
- They continuously monitor their environment to maintain tissue health and respond to threats.
- Existing 3D in vitro models lack microglia and fail to capture developmental and mature functional aspects.
Purpose of the Study:
- To develop and utilize a 3D neural multicellular model for studying microglia dynamics.
- To investigate microglia behavior during different stages of microtissue maturation.
- To assess microglia responses to inflammatory challenges and tissue injury within a 3D environment.
Main Methods:
- Utilized primary rat cortical cells to create 3D cortical microtissues.
- Employed live imaging within a micromold to monitor microglia dynamics without removing microtissues.
- Assessed microglia surveillance, response to lipopolysaccharide (LPS) challenge, and laser-induced tissue damage.
Main Results:
- Microglia demonstrated baseline surveillance with stationary cell bodies and dynamic processes.
- Microglia engulfed LPS particles and showed altered motility patterns upon proinflammatory challenge.
- Rapid microglia responses, including process extension and recruitment, were observed following laser-induced injury.
- Microtissue age significantly impacted microglia baseline and directed motility.
Conclusions:
- 3D cortical microtissues provide a valuable platform for studying microglia development and function.
- Microglia exhibit dynamic changes in morphology, motility, and injury response within a 3D microenvironment across maturation.
- This model is suitable for investigating brain inflammation in CNS injuries, infections, and diseases.
