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Published on: June 30, 2023
Impaired mitochondrial biogenesis contributes to mitochondrial dysfunction in Alzheimer's disease
Baiyang Sheng1, Xinglong Wang, Bo Su
1Department of Pathology, Case Western Reserve University, Cleveland, Ohio 44106, USA.
Abstract:
Mitochondrial dysfunction is a prominent feature of Alzheimer's disease (AD) brain. Our prior studies demonstrated reduced mitochondrial number in susceptible hippocampal neurons in the brain from AD patients and in M17 cells over-expressing familial AD-causing amyloid precursor protein (APP) mutant (APPswe). In the current study, we investigated whether alterations in mitochondrial biogenesis contribute to mitochondrial abnormalities in AD. Mitochondrial biogenesis is regulated by the peroxisome proliferator activator receptor gamma-coactivator 1α (PGC-1α)-nuclear respiratory factor (NRF)-mitochondrial transcription factor A pathway. Expression levels of PGC-1α, NRF 1, NRF 2, and mitochondrial transcription factor A were significantly decreased in both AD hippocampal tissues and APPswe M17 cells, suggesting a reduced mitochondrial biogenesis. Indeed, APPswe M17 cells demonstrated decreased mitochondrial DNA/nuclear DNA ratio, correlated with reduced ATP content, and decreased cytochrome C oxidase activity. Importantly, over-expression of PGC-1α could completely rescue while knockdown of PGC-1α could exacerbate impaired mitochondrial biogenesis and mitochondrial deficits in APPswe M17 cells, suggesting reduced mitochondrial biogenesis is likely involved in APPswe-induced mitochondrial deficits. We further demonstrated that reduced expression of p-CREB and PGC-1α in APPswe M17 cells could be rescued by cAMP in a dose-dependent manner, which could be inhibited by PKA inhibitor H89, suggesting that the PKA/CREB pathway plays a critical role in the regulation of PGC-1α expression in APPswe M17 cells. Overall, this study demonstrated that impaired mitochondrial biogenesis likely contributes to mitochondrial dysfunction in AD.
Insights
Impaired mitochondrial biogenesis, regulated by PGC-1α, contributes to Alzheimer
Area of Science:
- Neuroscience
- Mitochondrial Biology
- Alzheimer's Disease Research
Background:
- Mitochondrial dysfunction is a key characteristic of Alzheimer's disease (AD) brains.
- Previous studies showed reduced mitochondrial numbers in AD hippocampal neurons and cell models.
- The current study investigates the role of mitochondrial biogenesis in AD-related mitochondrial abnormalities.
Purpose of the Study:
- To determine if impaired mitochondrial biogenesis contributes to mitochondrial dysfunction in Alzheimer's disease.
- To investigate the role of the PGC-1α pathway in regulating mitochondrial biogenesis in AD models.
Main Methods:
- Examined expression levels of key mitochondrial biogenesis regulators (PGC-1α, NRFs, TFAM) in AD hippocampal tissues and APPswe M17 cells.
- Assessed mitochondrial DNA/nuclear DNA ratio, ATP content, and cytochrome C oxidase activity in APPswe M17 cells.
- Utilized PGC-1α overexpression and knockdown, and manipulated the PKA/CREB pathway (cAMP, H89) to study regulatory mechanisms.
Main Results:
- Significantly decreased expression of PGC-1α, NRFs, and TFAM was observed in AD tissues and APPswe M17 cells, indicating reduced mitochondrial biogenesis.
- APPswe M17 cells exhibited lower mitochondrial DNA/nuclear DNA ratio, ATP levels, and cytochrome C oxidase activity.
- PGC-1α modulation directly impacted mitochondrial deficits, and the PKA/CREB pathway was identified as crucial for PGC-1α regulation in APPswe M17 cells.
Conclusions:
- Impaired mitochondrial biogenesis, driven by reduced PGC-1α expression, is a significant contributor to mitochondrial dysfunction in Alzheimer's disease.
- The PKA/CREB signaling pathway plays a critical role in regulating PGC-1α expression and mitigating mitochondrial deficits in AD models.
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