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.

Journal of Neurotrauma
|February 26, 2016
PubMed

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.

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