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Interactions with and Membrane Permeabilization of Brain Mitochondria by Amyloid Fibrils
Published on: September 28, 2019
Mitochondria-specific accumulation of amyloid β induces mitochondrial dysfunction leading to apoptotic cell death
Moon-Yong Cha1, Sun-Ho Han, Sung Min Son
1Department of Biochemistry and Biomedical Sciences, College of Medicine, Seoul National University, Seoul, Korea.
Abstract:
Mitochondria are best known as the essential intracellular organelles that host the homeostasis required for cellular survival, but they also have relevance in diverse disease-related conditions, including Alzheimer's disease (AD). Amyloid β (Aβ) peptide is the key molecule in AD pathogenesis, and has been highlighted in the implication of mitochondrial abnormality during the disease progress. Neuronal exposure to Aβ impairs mitochondrial dynamics and function. Furthermore, mitochondrial Aβ accumulation has been detected in the AD brain. However, the underlying mechanism of how Aβ affects mitochondrial function remains uncertain, and it is questionable whether mitochondrial Aβ accumulation followed by mitochondrial dysfunction leads directly to neuronal toxicity. This study demonstrated that an exogenous Aβ(1-42) treatment, when applied to the hippocampal cell line of mice (specifically HT22 cells), caused a deleterious alteration in mitochondria in both morphology and function. A clathrin-mediated endocytosis blocker rescued the exogenous Aβ(1-42)-mediated mitochondrial dysfunction. Furthermore, the mitochondria-targeted accumulation of Aβ(1-42) in HT22 cells using Aβ(1-42) with a mitochondria-targeting sequence induced the identical morphological alteration of mitochondria as that observed in the APP/PS AD mouse model and exogenous Aβ(1-42)-treated HT22 cells. In addition, subsequent mitochondrial dysfunctions were demonstrated in the mitochondria-specific Aβ(1-42) accumulation model, which proved indistinguishable from the mitochondrial impairment induced by exogenous Aβ(1-42)-treated HT22 cells. Finally, cellular toxicity was directly induced by mitochondria-targeted Aβ(1-42) accumulation, which mimics the apoptosis process in exogenous Aβ(1-42)-treated HT22 cells. Taken together, these results indicate that mitochondria-targeted Aβ(1-42) accumulation is the necessary and sufficient condition for Aβ-mediated mitochondria impairments, and leads directly to cellular death rather than along with other Aβ-mediated signaling alterations.
Insights
Amyloid beta (Aβ) accumulation in mitochondria directly causes mitochondrial dysfunction and cellular death in Alzheimer's disease (AD) models. This study confirms Aβ targeting mitochondria is key to AD pathogenesis.
Area of Science:
- Cell Biology
- Neuroscience
- Mitochondrial Biology
Background:
- Mitochondria are vital for cellular homeostasis and implicated in Alzheimer's disease (AD).
- Amyloid beta (Aβ) peptide, central to AD, is linked to mitochondrial dysfunction.
- The precise mechanism of Aβ-induced mitochondrial damage and neuronal toxicity remains unclear.
Purpose of the Study:
- To investigate the direct impact of amyloid beta (Aβ) on mitochondrial morphology and function.
- To determine if mitochondrial Aβ accumulation is sufficient to cause neuronal toxicity and apoptosis.
- To elucidate the role of mitochondria-targeted Aβ in Alzheimer's disease pathogenesis.
Main Methods:
- Treatment of mouse hippocampal HT22 cells with exogenous Aβ(1-42).
- Utilizing a clathrin-mediated endocytosis blocker to assess Aβ uptake.
- Employing mitochondria-targeted Aβ(1-42) to specifically induce mitochondrial accumulation.
Main Results:
- Exogenous Aβ(1-42) treatment altered mitochondrial morphology and function in HT22 cells.
- Mitochondria-targeted Aβ(1-42) replicated AD-like mitochondrial alterations and dysfunction.
- Mitochondria-specific Aβ(1-42) accumulation directly induced cellular toxicity and apoptosis.
Conclusions:
- Mitochondria-targeted Aβ(1-42) accumulation is both necessary and sufficient for Aβ-induced mitochondrial impairment.
- Direct mitochondrial Aβ accumulation, not other signaling pathways, leads to cellular death in AD.
- This finding highlights a critical mechanism in Alzheimer's disease progression.
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