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Published on: September 11, 2017
Ultrastructure of Diaschisis Lesions after Traumatic Brain Injury
Clayton A Wiley1, Stephanie J Bissel1, Andrew Lesniak1
11 Department of Pathology, University of Pittsburgh , Pittsburgh, Pennslyvania.
Abstract:
We used controlled cortical impact in mice to model human traumatic brain injury (TBI). Local injury was accompanied by distal diaschisis lesions that developed within brain regions anatomically connected to the injured cortex. At 7 days after injury, histochemistry documented broadly distributed lesions, particularly in the contralateral cortex and ipsilateral thalamus and striatum. Reactive astrocytosis and microgliosis were noted in multiple neural pathways that also showed silver-stained cell processes and bodies. Wisteria floribunda agglutinin (WFA) staining, a marker of perineuronal nets, was substantially diminished in the ipsilateral, but less so in the contralateral cortex. Contralateral cortical silver positive diaschisis lesions showed loss of both phosphorylated and unphosphorylated neurofilament staining, but overall preservation of microtubule-associated protein (MAP)-2 staining. Thalamic lesions showed substantial loss of MAP-2 and unphosphorylated neurofilaments in addition to moderate loss of phosphorylated neurofilament. One animal demonstrated contralateral cerebellar degeneration at 7 days post-injury. After 21 days, the gliosis had quelled, however persistent silver staining was noted. Using a novel serial section technique, we were able to perform electron microscopy on regions fully characterized at the light microscopy level. Cell bodies and processes that were silver positive at the light microscopy level showed hydropic disintegration consisting of: loss of nuclear heterochromatin; dilated somal and neuritic processes with a paucity of filaments, tubules, and mitochondria; and increased numbers of electron-dense membranous structures. Importantly the cell membrane itself was still intact 3 weeks after injury. Although the full biochemical nature of these lesions remains to be deciphered, the morphological preservation of damaged neurons and processes raises the question of whether this is a reversible process.
Insights
Traumatic brain injury (TBI) in mice caused widespread brain lesions, including neuronal damage with intact cell membranes. These findings suggest potential reversibility of TBI-induced neuronal damage.
Area of Science:
- Neuroscience
- Pathology
- Traumatic Brain Injury Research
Background:
- Traumatic brain injury (TBI) is a significant cause of neurological disability.
- Understanding the spatiotemporal progression of TBI pathology is crucial for developing effective treatments.
- Controlled cortical impact (CCI) in mice serves as a relevant model for human TBI.
Purpose of the Study:
- To investigate the development and characteristics of distal diaschisis lesions following CCI in a mouse model.
- To characterize the cellular and ultrastructural changes in affected brain regions.
- To explore the potential for reversibility of TBI-induced neuronal damage.
Main Methods:
- Controlled cortical impact (CCI) was used to induce TBI in mice.
- Histochemistry, including silver staining and Wisteria floribunda agglutinin (WFA) staining, was employed to assess neuronal and glial changes.
- Immunohistochemistry for neurofilaments and MAP-2 was performed.
- Serial section electron microscopy was utilized for ultrastructural analysis.
Main Results:
- CCI induced widespread diaschisis lesions in connected brain regions, including the contralateral cortex, thalamus, and striatum.
- Reactive astrocytosis and microgliosis were observed, alongside neuronal damage indicated by silver staining.
- Perineuronal net marker WFA was diminished, particularly in the ipsilateral cortex.
- Ultrastructural analysis revealed hydropic disintegration of damaged neurons and processes, with intact cell membranes up to 3 weeks post-injury.
Conclusions:
- TBI induces distal neuronal damage characterized by specific ultrastructural changes.
- Despite significant cellular alterations, the integrity of the neuronal cell membrane is maintained for an extended period.
- These findings raise the possibility of reversible neuronal damage after TBI, warranting further investigation into the underlying biochemical mechanisms.

