| Literature DB >> 27884214 |
James A Goodrich1, Jung H Kim2, Robert Situ3, Wesley Taylor4, Ted Westmoreland4, Fu Du5, Steven Parks6, Geoffrey Ling7, Jung Y Hwang2, Amedeo Rapuano3, Faris A Bandak7,8, Nihal C de Lanerolle9.
Abstract
Mild traumatic brain injury (mTBI) is the signature injury in warfighters exposed to explosive blasts. The pathology underlying mTBI is poorly understood, as this condition is rarely fatal and thus postmortem brains are difficult to obtain for neuropathological studies. Here we report on studies of an experimental model with a gyrencephalic brain that is exposed to single and multiple explosive blast pressure waves. To determine injuries to the brain resulting from the primary blast, experimental conditions were controlled to eliminate any secondary or tertiary injury from blasts. We found small but significant levels of neuronal loss in the hippocampus, a brain area that is important for cognitive functions. Furthermore, neuronal loss increased with multiple blasts and the degree of neuronal injury worsened with time post-blast. This is consistent with our findings in the blast-exposed human brain based on magnetic resonance spectroscopic imaging. The studies on this experimental model thus confirm what has been presumed to be the case with the warfighter, namely that exposure to multiple blasts causes increased brain injury. Additionally, as in other studies of both explosive blast as well as closed head mTBI, we found astrocyte activation. Activated microglia were also prominent in white matter tracts, particularly in animals exposed to multiple blasts and at long post-blast intervals, even though injured axons (i.e. β-APP positive) were not found in these areas. Microglial activation appears to be a delayed response, though whether they may contribute to inflammation related injury mechanism at even longer post-blast times than we tested here, remains to be explored. Petechial hemorrhages or other gross signs of vascular injury were not observed in our study. These findings confirm the development of neuropathological changes due to blast exposure. The activation of astrocytes and microglia, cell types potentially involved in inflammatory processes, suggest an important area for future study.Entities:
Mesh:
Year: 2016 PMID: 27884214 PMCID: PMC5123270 DOI: 10.1186/s40478-016-0395-3
Source DB: PubMed Journal: Acta Neuropathol Commun ISSN: 2051-5960 Impact factor: 7.801
Fig. 1Coronal sections through the hippocampus of a Yucatan Minipigs, Top Control. Bottom Blast exposed. They are stained with Haematoxylin and Eosin to illustrate hippocampal subregions in which neurons were quantified. CA1, CA2 and CA3 are subregions of the Cornu Ammonis (Ammon’s horn) with arrows that indicate their boundaries. GC, dentate granule cell layer. H, dentate hilus. ML, dentate molecular layer. Scale bar = 500 μm
Neuron densities number per mm3
| Group | CA1 | CA2-3 | CA4 | Dentate | |
|---|---|---|---|---|---|
| Control | Mean | 192.08 | 180.14 | 78.74 | 1535.7 |
|
| ± SD | 27.32 | 39.26 | 12.47 | 134.05 |
| Single blast | Mean | 181.08 | 174.97 | 76.44 | 1461.82 |
|
| ± SD | 26.53 | 36.46 | 14.47 | 98.03 |
| Double blast | Mean | 167.43 | 176.91 | 69.97 | 1467.26 |
|
| ± SD | 24.25 | 43.71 | 9.3 | 158.38 |
| Triple blast | Mean | 149.15 | 153.59 | 67.32 | 1560.9 |
|
| ± SD | 10.08 | 34.07 | 12.3 | 124.31 |
| All blast | Mean | 171.98 | 174.72 | 72.61 | 1473.48 |
| ± SD | 26.08 | 39.62 | 12.45 | 132.57 | |
| Control vs single |
| ns | ns | ns | 0.0092 |
| Control vs Double |
| 0.0005 | ns | 0.0126 | 0.0266 |
| Control vs Triple |
| 0.0013 | ns | 0.0802 | ns |
| Control vs All |
| 0.0004 | ns | 0.0385 | ns |
| single vs Double |
| 0.018 | ns | 0.07 | ns |
| Single vs Triple |
| 0.002 | ns | 0.13 | ns |
| Double vs Triple |
| 0.032 | ns | ns | ns |
The intergroup significance values are derived from the Mann-Whitney U-test, two tail. CA = neurons in the pyramidal layer of Cornu Ammonis (Ammon’s Horn) areas 1 to 4 of the hippocampus. Dentate = neuron densities in the dentate granule cell layer
Fig. 2Photomicrographs of hippocampal sections immunostained for GFAP an astrocyte marker. a An image through the polymorphic layer, granule cell layer and the molecular layer of the dentate gyrus, showing increased immunoreactivity the blast exposed animal compared to a control. b A portion of area CA1 showing increased immunoreactivity and proliferation of astrocytes throughout the layers
Astrocyte density, (number per mm2) ± SD in the dentate area
| Treatment | Hilus per mm2 | ML per mm2 |
|---|---|---|
| Controls | 7.588 | 5.857 |
|
| ±0.863 | ±1.093 |
| Single | 10.118 | 8.469 |
|
| ±0.538 | ±1.240 |
| Double | 12.691 | 11.035 |
|
| ±1.282 | ±1.716 |
| Triple | 12.350 | 9.777 |
|
| ±0.571 | ±0.554 |
| Control vs. Single |
|
|
| Single vs. Double |
|
|
| Single vs. Triple |
|
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| Double vs. Triple | NS | NS |
The intergroup significance values are derived with the Mann-Whitney U, two tail test. ML = dentate molecular layer. Treatment = number of blast exposures
Fig. 3Photomicrographs of the deep central white matter area immunostained for GFAP showing astrocyte proliferation and activation, astrocytes often appearing swollen and intensely reactive for GFAP (gemistocytic astrocytes) in an animal exposed to triple blasts (b) compared to the same area in a non-blast exposed sham control (a)
Fig. 4Photomicrographs of the corpus callosum area in (a) a sham control, (b) animal exposed to a single blast, (c) animal exposed to double blast and (d) animal exposed to triple blasts and immunostained for Iba1 a marker for microglia. Activated microglia, which have elongated processes, swollen and somewhat elongated cell bodies and increased immunoreactivity are especially seen with (c) double and (d) triple blast animals