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Controlled Cortical Impact Model for Traumatic Brain Injury
Published on: August 5, 2014
Neuronal apoptosis inhibitory protein expression after traumatic brain injury in the mouse
J S Hutchison1, R E Derrane, D L Johnston
1Department of Pediatrics, Faculty of Medicine, University of Ottawa, Ontario, Canada. hutchison@cheo.on.ca
Abstract:
Apoptosis of brain cells is triggered by traumatic brain injury (TBI) and is blocked by caspase inhibitors. The neuronal apoptosis inhibitor protein (NAIP), which has been shown to inhibit apoptosis by both caspase-dependant and caspase-independent mechanisms, is neuroprotective in rat models of cerebral ischemia and axotomy. In order to gain a better appreciation of CNS apoptosis following head injury in general and the possible involvement of NAIP specifically, we have configured a mouse model of TBI. In addition to demonstrating apoptosis, the spatiotemporal expression or levels of a number of proteins with apoptosis modulating effects have been determined. Apoptosis of neurons and oligodendrocytes following TBI was observed in brain sections which were triple-stained with in situ end labeling, bisbenzimide and immunofluorescent stain for neuron specific nuclear protein and myelin-associated glycoprotein, respectively. Further evidence for apoptosis following TBI in this model was obtained in brain samples using ligation-mediated PCR amplification of DNA fragments and gel electrophoresis. The temporal profile of apoptosis was similar to the temporal profile of microglial activation determined by CD11b staining and TNFa expression induced by TBI. NAIP staining in sections of cerebral cortex and subcortical white matter increased at 6 h and decreased towards control levels at 24 h post-TBI. Temporal changes in the expression of NAIP were also observed using Western blot analysis of brain samples removed from injured cortex and sub-cortical white matter. At the time that NAIP expression decreased markedly (24 h post-TBI), procaspase-3 levels also decreased, PARP cleavage increased, and the highest levels of apoptosis were observed. These findings have implications in our understanding of traumatically induced programmed cell death and may be useful in the configuration of therapies for this common injury state.
Insights
Traumatic brain injury (TBI) induces brain cell apoptosis, but neuronal apoptosis inhibitor protein (NAIP) expression changes over time. NAIP levels initially rise then fall, correlating with cell death markers and microglial activation post-TBI.
Area of Science:
- Neuroscience
- Cell Biology
- Pathology
Background:
- Traumatic brain injury (TBI) causes brain cell apoptosis, a process targeted by caspase inhibitors.
- Neuronal apoptosis inhibitor protein (NAIP) exhibits neuroprotective effects via caspase-dependent and -independent pathways.
Purpose of the Study:
- To investigate central nervous system (CNS) apoptosis following TBI in a mouse model.
- To specifically examine the role and expression patterns of NAIP in TBI-induced apoptosis.
Main Methods:
- Established a mouse model of TBI.
- Utilized triple-staining (in situ end labeling, bisbenzimide, immunofluorescence) to detect apoptosis in neurons and oligodendrocytes.
- Employed ligation-mediated PCR and Western blot to analyze DNA fragmentation and protein expression levels, including NAIP, procaspase-3, and PARP.
Main Results:
- Confirmed apoptosis of neurons and oligodendrocytes post-TBI.
- Observed temporal correlation between apoptosis, microglial activation (CD11b, TNFa), and NAIP expression.
- Noted peak apoptosis and PARP cleavage at 24 h post-TBI, coinciding with decreased NAIP and procaspase-3 levels.
Conclusions:
- TBI triggers programmed cell death in the brain, involving complex temporal changes in apoptosis-related proteins.
- NAIP expression dynamics following TBI provide insights into neuroprotective mechanisms and potential therapeutic targets for head injuries.

