4.7 Article

Activation of the amyloid cascade in apolipoprotein E4 transgenic mice induces lysosomal activation and neurodegeneration resulting in marked cognitive deficits

Journal

JOURNAL OF NEUROSCIENCE
Volume 28, Issue 18, Pages 4690-4701

Publisher

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.5633-07.2008

Keywords

apolipoprotein E4; beta amyloid; neprilysin; neurodegeneration; CA1 neurons; entorhinal cortex; septum; lysosomes; learning and memory

Categories

Funding

  1. NIA NIH HHS [P01 AG010435, AG48440, AG10435, AG022074, P01 AG022074] Funding Source: Medline

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The allele E4 of apolipoprotein E (apoE4), the most prevalent genetic risk factor for Alzheimer's disease, is associated histopathologically with elevated levels of brain amyloid. This led to the suggestion that the pathological effects of apoE4 are mediated by cross-talk interactions with amyloid beta peptide (A beta), which accentuate the pathological effects of the amyloid cascade. The mechanisms underlying the A beta-mediated pathological effects of apoE4 are unknown. We have shown recently that inhibition of the A beta-degrading enzyme neprilysin in brains of wild-type apoE3 and apoE4 mice results in rapid and similar elevations in their total brain A beta levels. However, the nucleation and aggregation of A beta in these mice were markedly affected by the apoE genotype and were specifically enhanced in the apoE4 mice. We presently used the neprilysin inhibition paradigm to analyze the neuropathological and cognitive effects that are induced by apoE4 after activation of the amyloid cascade. This revealed that apoE4 stimulates isoform specifically the degeneration of hippocampal CA1 neurons and of entorhinal and septal neurons, which is accompanied by the accumulation of intracellular A beta and apoE and with lysosomal activation. Furthermore, these neuropathological effects are associated isoform specifically with the occurrence of pronounced cognitive deficits in the ApoE4 mice. These findings provide the first in vivo evidence regarding the cellular mechanisms underlying the pathological cross talk between apoE4 and A beta, as well as a novel model system of neurodegeneration in vivo that is uniquely suitable for studying the early stages of the amyloid cascade and the effects thereon of apoE4.

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