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The Effects of APOE4 on Mitochondrial Dynamics and Proteins in vivo
Shira Simonovitch1, Eran Schmukler1, Eliezer Masliah2,3,4
1Department of Neurobiology, Sagol School of Neuroscience, George S. Wise Faculty of Life Sciences, Tel-Aviv University, Tel-Aviv, Israel.
Abstract:
This study examined the effects of apolipoprotein E4 (APOE4), the most prevalent genetic risk factor for Alzheimer's disease (AD), on proteins involved in mitochondrial dynamics and autophagy, in the hippocampus of targeted replacement mice. Immunohistochemical measurements revealed that the levels of the mitochondrial fusion-mediating protein, MFN1, were higher, whereas those of corresponding fission-regulating protein, DRP-1, were lower in the hippocampus of ApoE4 mice than in the corresponding ApoE3 mice, indicating that APOE4 is associated with increased mitochondrial fusion and decreased fission. A similar ApoE4-driven decrease in DRP-1 was also observed in AD brains. The levels of the mitochondrial proteins COX1 and Tom40, were higher in the ApoE4 mice, which is consistent with the increased fusion. Measurements of the levels of cleaved PINK1 and parkin, which mark and target mitochondria for mitophagic degradation, revealed lower levels of cleaved PINK1, suggesting reduced mitochondrial membrane potential, and higher levels of parkin in the hippocampus of ApoE4 compared with the ApoE3 mice, indicating altered mitophagy. The levels of the ubiquitin-binding scaffold protein, p62/SQSTM1, which directs selected cargo to the autophagosomes, were also higher in the ApoE4 mice. These findings suggest that APOE4 is associated with enhanced mitochondrial fusion and decreased fission. Additionally, the results indicate that mitophagy/autophagy is reduced in ApoE4 mice, resulting in higher levels of proteins such as parkin and p62, which are normally degraded during this process. Taken together, these results suggest a novel mechanism that may underlie the pathological effects of APOE4 and indicate that use of APOE4 genotyping could pave the way for identification of novel APOE4-related therapeutic targets.
Insights
The apolipoprotein E4 (APOE4) gene variant impairs mitochondrial dynamics and reduces mitophagy, potentially contributing to Alzheimer's disease pathogenesis. APOE4 affects mitochondrial fusion and fission, impacting cellular waste removal processes.
Area of Science:
- Neuroscience
- Genetics
- Cell Biology
Background:
- Apolipoprotein E4 (APOE4) is the primary genetic risk factor for Alzheimer's disease (AD).
- Mitochondrial dynamics and autophagy are crucial for neuronal health and are implicated in AD.
- Understanding APOE4's impact on these cellular processes is vital for AD research.
Purpose of the Study:
- To investigate the effects of APOE4 on mitochondrial dynamics and autophagy in the hippocampus.
- To compare these effects in APOE4 targeted replacement mice with APOE3 mice and human AD brains.
Main Methods:
- Immunohistochemical analysis of hippocampal tissue from APOE4 and APOE3 mice.
- Quantification of proteins involved in mitochondrial fusion (MFN1), fission (DRP-1), mitochondrial components (COX1, Tom40), mitophagy (PINK1, parkin), and autophagy (p62/SQSTM1).
- Comparison of protein levels in mouse models with those found in human AD brains.
Main Results:
- APOE4 mice exhibited increased mitochondrial fusion (higher MFN1) and decreased fission (lower DRP-1) compared to APOE3 mice.
- ApoE4-driven decrease in DRP-1 was also observed in AD brains.
- Reduced levels of cleaved PINK1 and increased parkin and p62/SQSTM1 suggest impaired mitophagy and autophagy in APOE4 mice.
- Elevated levels of mitochondrial proteins COX1 and Tom40 are consistent with increased fusion.
Conclusions:
- APOE4 significantly alters mitochondrial dynamics, promoting fusion and inhibiting fission.
- Mitophagy and autophagy are impaired in the presence of APOE4, leading to the accumulation of specific proteins.
- These findings suggest a novel mechanism for APOE4's role in AD pathology and highlight APOE4 genotyping for identifying therapeutic targets.
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