Changes in Neurofilament and Microtubule Distribution following Focal Axon Compression

PLoS One. 2015 Jun 25;10(6):e0131617. doi: 10.1371/journal.pone.0131617. eCollection 2015.

Abstract

Although a number of cytoskeletal derangements have been described in the setting of traumatic axonal injury (TAI), little is known of early structural changes that may serve to initiate a cascade of further axonal degeneration. Recent work by the authors has examined conformational changes in cytoskeletal constituents of neuronal axons undergoing traumatic axonal injury (TAI) following focal compression through confocal imaging data taken in vitro and in situ. The present study uses electron microscopy to understand and quantify in vitro alterations in the ultrastructural composition of microtubules and neurofilaments within neuronal axons of rats following focal compression. Standard transmission electron microscopy processing methods are used to identify microtubules, while neurofilament identification is performed using antibody labeling through gold nanoparticles. The number, density, and spacing of microtubules and neurofilaments are quantified for specimens in sham Control and Crushed groups with fixation at <1 min following load. Our results indicate that the axon caliber dependency known to exist for microtubule and neurofilament metrics extends to axons undergoing TAI, with the exception of neurofilament spacing, which appears to remain constant across all Crushed axon diameters. Confidence interval comparisons between Control and Crushed cytoskeletal measures suggests early changes in the neurofilament spatial distributions within axons undergoing TAI may precede microtubule changes in response to applied loads. This may serve as a trigger for further secondary damage to the axon, representing a key insight into the temporal aspects of cytoskeletal degeneration at the component level, and suggests the rapid removal of neurofilament sidearms as one possible mechanism.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, U.S. Gov't, Non-P.H.S.

MeSH terms

  • Animals
  • Axons / physiology
  • Cells, Cultured
  • Cytoskeleton / physiology
  • Diffuse Axonal Injury / pathology*
  • Hippocampus / cytology*
  • Intermediate Filaments / pathology*
  • Intermediate Filaments / ultrastructure
  • Microscopy, Electron
  • Microtubules / pathology*
  • Microtubules / ultrastructure
  • Nerve Degeneration / pathology
  • Primary Cell Culture
  • Rats
  • Rats, Sprague-Dawley
  • Spinal Cord Injuries / pathology*
  • Stress, Physiological

Grants and funding

Funding for this work came from the Hopkins Extreme Materials Institute and the US Army. The funders had no role in study design, data collection and analysis, decision to publish or preparation of the manuscript.