4.7 Article

APOE4 is Associated with Differential Regional Vulnerability to Bioenergetic Deficits in Aged APOE Mice

期刊

SCIENTIFIC REPORTS
卷 10, 期 1, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41598-020-61142-8

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资金

  1. NIA [AG048408, NS071836, AG045335, AG056387, AG057331, NS089076, AG047797, AG061264]
  2. NINDS [AG048408, NS071836, AG057331, NS089076]
  3. NICHD [HD67244, HL87062]
  4. NHLBI [HD67244, HL87062]
  5. NCRR [1S10RR023534-01]
  6. U.S. Dept. of Defense [W911NF-12-1-9159, W911F-15-1-0169]
  7. Cure Alzheimer's Fund
  8. NDSEG fellowship from the US. Dept of Defense [FA9550-11-C-0028]
  9. Brightfocus Foundation
  10. Intramural Research Program of the NIH, National Institute on Aging
  11. UK Dementia Research Institute from DRI Ltd
  12. UK Medical Research Council
  13. Alzheimer's Society
  14. Alzheimer's Research UK

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The e4 allele of apolipoprotein E (APOE) is the dominant genetic risk factor for late-onset Alzheimer's disease (AD). However, the reason for the association between APOE4 and AD remains unclear. While much of the research has focused on the ability of the apoE4 protein to increase the aggregation and decrease the clearance of A ss, there is also an abundance of data showing that APOE4 negatively impacts many additional processes in the brain, including bioenergetics. In order to gain a more comprehensive understanding of APOE4's role in AD pathogenesis, we performed a transcriptomics analysis of APOE4 vs. APOE3 expression in the entorhinal cortex (EC) and primary visual cortex (PVC) of aged APOE mice. This study revealed EC-specific upregulation of genes related to oxidative phosphorylation (OxPhos). Follow-up analysis utilizing the Seahorse platform showed decreased mitochondrial respiration with age in the hippocampus and cortex of APOE4 vs. APOE3 mice, but not in the EC of these mice. Additional studies, as well as the original transcriptomics data, suggest that multiple bioenergetic pathways are differentially regulated by APOE4 expression in the EC of aged APOE mice in order to increase the mitochondrial coupling efficiency in this region. Given the importance of the EC as one of the first regions to be affected by AD pathology in humans, the observation that the EC is susceptible to differential bioenergetic regulation in response to a metabolic stressor such as APOE4 may point to a causative factor in the pathogenesis of AD.

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