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Intravital Imaging of Axonal Interactions with Microglia and Macrophages in a Mouse Dorsal Column Crush Injury
Published on: November 23, 2014
Stretch-injury promotes microglia activation with enhanced phagocytic and synaptic stripping activities
Anthony Procès1, Yeranddy A Alpizar2, Sophie Halliez3
1Mechanobiology & Biomaterials Group, CIRMAP, Research Institute for Biosciences, University of Mons, B-7000, Mons, Belgium; Neuroscience Laboratory, Neuroscience Department, Research Institute for Biosciences, University of Mons, B-7000, Mons, Belgium.
Abstract:
Microglial cells, as the primary defense line in the central nervous system, play a crucial role in responding to various mechanical signals that can trigger their activation. Despite extensive research on the impact of chemical signaling on brain cells, the understanding of mechanical signaling in microglia remains limited. To bridge this gap, we subjected microglial cells to a singular mechanical stretch and compared their responses with those induced by lipopolysaccharide treatment, a well-established chemical activator. Here we show that stretching microglial cells leads to their activation, highlighting their significant mechanosensitivity. Stretched microglial cells exhibited distinct features, including elevated levels of Iba1 protein, a denser actin cytoskeleton, and increased persistence in migration. Unlike LPS-treated microglial cells, the secretory profile of chemokines and cytokines remained largely unchanged in response to stretching, except for TNF-α. Intriguingly, a single stretch injury resulted in more compacted chromatin and DNA damage, suggesting potential long-term genomic instabilities in stretched microglia. Using compartmentalized microfluidic chambers with neuronal networks, we observed that stretched microglial cells exhibited enhanced phagocytic and synaptic stripping activities. These findings collectively suggest that stretching events can unlock the immune potential of microglial cells, contributing to the maintenance of brain tissue homeostasis following mechanical injury.
Insights
Mechanical stretch activates microglial cells, the brain's immune cells, revealing their mechanosensitivity. This response enhances their immune functions, crucial for brain tissue repair after injury.
Area of Science:
- Neuroimmunology
- Cellular Mechanobiology
Background:
- Microglia are key immune cells in the central nervous system, responding to stimuli.
- Their response to mechanical signals is less understood compared to chemical signals.
Purpose of the Study:
- To investigate microglial cell activation and function in response to mechanical stretching.
- To compare mechanical stretching effects with lipopolysaccharide (LPS) chemical activation.
Main Methods:
- Subjecting microglial cells to mechanical stretch and comparing with LPS treatment.
- Analyzing protein levels (Iba1), cytoskeleton changes, migration, and cytokine/chemokine secretion.
- Assessing chromatin compaction, DNA damage, and phagocytic/synaptic stripping activity in microfluidic chambers with neurons.
Main Results:
- Mechanical stretching activates microglial cells, increasing Iba1 protein and actin density, and enhancing migration persistence.
- Unlike LPS, stretching minimally altered cytokine/chemokine profiles, except for TNF-α, and induced chromatin compaction and DNA damage.
- Stretched microglia showed increased phagocytic and synaptic stripping capabilities in co-culture with neurons.
Conclusions:
- Microglial cells possess significant mechanosensitivity, responding distinctly to mechanical stretch.
- Mechanical stretching can modulate microglial immune functions, potentially aiding brain tissue homeostasis after injury.
- This study highlights the role of mechanical forces in regulating microglial immune responses and brain repair.

