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Published on: August 15, 2012
Assessment of the Effects of Stretch-Injury on Primary Rat Microglia
Mike Shaughness1, Kimberly Byrnes2,3
1Neuroscience Program, Uniformed Services University of the Health Sciences, 4301 Jones Bridge Rd., Bethesda, MD, 20814, USA. Michael.shaughness.ctr@usuhs.edu.
Abstract:
Mechanical stretch-injury is a prominent force involved in the etiology of traumatic brain injury (TBI). It is known to directly cause damage and dysfunction in neurons, astrocytes, and endothelial cells. However, the deleterious effects of stretch-injury on microglia, the brain's primary immunocompetent cell, are currently unknown. The Cell Injury Controller II (CICII), a validated cellular neurotrauma model, was used to induce a mechanical stretch-injury in primary rat microglia. Statistical analysis utilized Student's t test and one- and two-way ANOVAs with Tukey's and Sidak's multiple comparisons, respectively. Cells exposed to stretch-injury showed no signs of membrane permeability, necrosis, or apoptosis, as measured by media-derived lactate dehydrogenase (LDH) and cleaved-caspase 3 immunocytochemistry, respectively. Interestingly, injured cells displayed a functional deficit in nitric oxide production (NO), identified by media assay and immunocytochemistry, at 6, 12, 18, and 48 h post-injury. Furthermore, gene expression analysis revealed the expression of inflammatory cytokines IL-6 and IL-10, and enzyme arginase-1 was significantly downregulated at 12 h post-injury. Time course evaluation of migration, using a cell exclusion zone assay, showed stretch-injured cells display decreased migration into the exclusion zone at 48- and 72-h post-stretch. Lastly, coinciding with the functional immune deficits was a significant change in morphology, with process length decreasing and cell diameter increasing following an injury at 12 h. Taken together, the data demonstrate that stretch-injury produces significant alterations in microglial function, which may have a marked impact on their response to injury or their interaction with other cells.
Insights
Mechanical stretch-injury impairs microglial function, reducing nitric oxide production and migration without causing cell death. This study reveals significant changes in microglia following mechanical stress, impacting their immune response in traumatic brain injury.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Traumatic brain injury (TBI) involves mechanical stretch-injury affecting brain cells.
- The impact of mechanical stretch-injury on microglia, the brain's immune cells, remains largely unknown.
- Understanding microglial response to mechanical stress is crucial for TBI research.
Purpose of the Study:
- To investigate the effects of mechanical stretch-injury on primary rat microglia.
- To assess functional deficits, gene expression, migration, and morphology in injured microglia.
- To determine the role of microglia in the cellular response to mechanical neurotrauma.
Main Methods:
- Primary rat microglia were subjected to mechanical stretch-injury using the Cell Injury Controller II (CICII) model.
- Assays for membrane permeability (LDH) and apoptosis (cleaved-caspase 3) were performed.
- Nitric oxide (NO) production, cytokine gene expression (IL-6, IL-10), arginase-1 expression, cell migration, and morphology were analyzed.
Main Results:
- Stretch-injured microglia showed no signs of necrosis or apoptosis.
- A significant deficit in nitric oxide production was observed at multiple time points post-injury.
- Downregulation of inflammatory cytokines IL-6 and IL-10, and arginase-1 was noted.
- Injured microglia exhibited decreased migration and altered morphology (shorter processes, increased diameter).
Conclusions:
- Mechanical stretch-injury induces functional deficits in microglia, including impaired NO production and migration.
- These functional changes occur without significant cell death, suggesting sublethal injury mechanisms.
- Altered microglial function and morphology following stretch-injury may impact TBI pathogenesis and cellular interactions.

