Method Article

Induction of Diffuse Axonal Brain Injury in Rats Based on Rotational Acceleration

DOI:

10.3791/61198

May 9th, 2020

* These authors contributed equally

In This Article

Summary

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This protocol validates a reliable, easy-to-perform and reproducible rodent model of brain diffuse axonal injury (DAI) that induces widespread white matter damage without skull fractures or contusions.

Abstract

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Traumatic brain injury (TBI) is a major cause of death and disability. Diffuse axonal injury (DAI) is the predominant mechanism of injury in a large percentage of TBI patients requiring hospitalization. DAI involves widespread axonal damage from shaking, rotation or blast injury, leading to rapid axonal stretch injury and secondary axonal changes that are associated with a long-lasting impact on functional recovery. Historically, experimental models of DAI without focal injury have been difficult to design. Here we validate a simple, reproducible and reliable rodent model of DAI that causes widespread white matter damage without skull fractures or contusions.

Introduction

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Traumatic brain injury (TBI) is a major cause of death and disability in the United States. TBIs contribute to about 30% of all injury-related deaths1,2. The leading causes of TBI differ among age groups and include falls, high-speed collisions during sports, intentional self-harm, motor vehicle crashes and assaults1,2,3.

Brain diffuse axonal injury (DAI) is a specific type of TBI induced by rotational acceleration, shaking or blast injury of the brain resulting from unrestricted head movem....

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Protocol

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The experiments were performed following the recommendations of the Declarations of Helsinki and Tokyo and to the Guidelines for the Use of Experimental Animals of the European Community. The experiments were approved by the Animal Care Committee of Ben-Gurion University of the Negev.

1. Preparing rats for the experimental procedure

NOTE: Select adult male Sprague-Dawley rats weighing 300-350 g.

  1. Obtain approval for performing these experiments from the Institutional Animal Care and Use Committee.
  2. Maintain rats at a room temperature of 22 ± 1 °C, with 12 hour light and 12 hour dark cycles. Pr....

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Results

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Table 1 illustrates the protocol timeline. The mortality rate in this model of DAI was 0%. A Mann-Whitney test indicated that neurological deficit was significantly greater for the 15 DAI rats compared to the 15 sham rats at 48 hours following intervention (Mdn = 1 vs. 0), U = 22.5, p < 0.001, r = 0.78 (see Table 2). The data are measured in counts and are presented as median and 25–75 percentile range.

Representative photomicrographs of thalamic sections o.......

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Discussion

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This protocol describes a rodent model of DAI. In DAI, rotational acceleration on the brain causes a shear effect that triggers axonal and biochemical changes that lead to loss of axonal function in a progressive process. Secondary axonal changes are produced by a rapid axonal stretch injury and are variable in their extent and severity4,5,10. Within hours to days after the primary injury, biochemical changes will lead to the lo.......

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Disclosures

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The authors have nothing to disclose.

Acknowledgements

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The authors gratefully acknowledge Dr. Nathan Kleeorin (Department of Mechanical Engineering, Ben-Gurion University of the Negev) for his assistance with the biomechanical measurements. Also, we thank Professor Olena Severynovska, Maryna Kuscheriava, Maksym Kryvonosov, Daryna Yakumenko and Evgenia Goncharyk of the Department of Physiology, Faculty of Biology, Ecology, and Medicine, Oles Honchar Dnipro University, Dnipro, Ukraine for her support and helpful contributions to our discussions.

....

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
0.01 M sodium citrateSIGMA - ALDRICH
2.5% normal horse serumSIGMA - ALDRICHH0146Liquid
4 % buffered formaldehyde solution
Anti-Amyloid Precursor Protein, C - terminal antibodyproduced in rabbitSIGMA - ALDRICHLot 056M4867V
biotinylated secondary antibodyVectorBA-1000-1.510 mM sodium phosphate, pH 7.8, 0.15 M NaCl, 0.08% sodium azide, 3 mg/ml bovine serum albumin
bone-cutting forceps
DAB Peroxidase (HRP) Substrate Kit (with Nickel), 3,3’-diaminobenzidinevector laboratory
embedding cassettes
ethanol 99.9 %ROMICALFlammable Liquid
guillotine
HematoxylinSIGMA - ALDRICHH3136-25G
Hydrogen peroxide solutionMillipore88597-100ML-F
Isofluran, USP 100%Piramamal Critical Care, Inc
Olympus BX 40 microscopeOlympus
paraffineparaplast plus leica biosystemTissue embedding medium
phosphate-buffered saline (PBS)SIGMA - ALDRICHP5368-10PAKContents of one pouch, when dissolved in one liter of distilled or deionized water, will yield 0.01 M phosphate buffered saline (NaCl 0.138 M; KCl - 0.0027 M); pH 7.4, at 25 °C.
Streptavidin HRPABCAMab64269Streptavidin-HRP for use with biotinylated secondary antibodies during IHC / immunohistochemistry.
xylene

References

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  1. Faul, M., Wald, M. M., Xu, L., Coronado, V. G. Traumatic brain injury in the United States; emergency department visits, hospitalizations, and deaths, 2002-2006. US Government. , (2010).
  2. Taylor, C. A., Bell, J. M., Breiding, M. J., Xu, L. Traumatic Brain Injury-Related Emergency Department Visit....

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Tags

Diffuse Axonal InjuryRat ModelNeurological Severity ScoreBeta APP StainingBeam Walking TaskHead FixationParaffin EmbeddingImmunochemical StainingSprague Dawley Rats

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