Abstract
Although brain trauma is a risk factor for Alzheimer's disease, no experimental model has been generated to explore this relationship. We developed a model of brain trauma in transgenic mice that overexpress mutant human amyloid precursor protein (PDAPP) leading to the appearance of Alzheimer's disease-like beta-amyloid (Abeta) plaques beginning at 6 months of age. We induced cortical impact brain injury in the PDAPP animals and their wild-type littermates at 4 months of age, ie, before Abeta plaque formation, and evaluated changes in posttraumatic memory function, histopathology, and regional tissue levels of the Abeta peptides Abeta1-40 and Abeta1-42. We found that noninjured PDAPP mice had impaired memory function compared to noninjured wild-type littermates (P < 0.01) and that brain-injured PDAPP mice had more profound memory dysfunction than brain-injured wild-type littermates (P < 0.001). Although no augmentation of Abeta plaque formation was observed in brain-injured PDAPP mice, a substantial exacerbation of neuron death was found in the hippocampus (P < 0.001) in association with an acute threefold increase in Abeta1-40 and sevenfold increase in Abeta1-42 levels selectively in the hippocampus (P < 0.01). These data suggest a mechanistic link between brain trauma and Abeta levels and the death of neurons.
MeSH Terms
Amyloid beta-Peptides/metabolism
Amyloid beta-Protein Precursor/genetics,metabolism
Animals
Brain Injuries/metabolism,pathology,physiopathology
Cell Death
Disease Models, Animal
Female
Hippocampus/metabolism,pathology,physiopathology
Maze Learning
Mice
Mice, Transgenic
Neurons/metabolism,pathology
Ovariectomy
Chemicals
Amyloid beta-Peptides
Amyloid beta-Protein Precursor
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Smith D H
Department of Neurosurgery, University of Pennsylvania, Philadelphia 19104-6316, USA. smithdou@mail.med.upenn.edu
Nakamura M
McIntosh T K
Wang J
Rodríguez A
Chen X H
Raghupathi R
Saatman K E
Clemens J
Schmidt M L
Lee V M
Trojanowski J Q
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