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Updated: Oct 25, 2025

Interactions with and Membrane Permeabilization of Brain Mitochondria by Amyloid Fibrils
Published on: September 28, 2019
Mutations in the Amyloid-β Protein Precursor Reduce Mitochondrial Function and Alter Gene Expression Independent of
Chad A Pope1, Heather M Wilkins2,3, Russell H Swerdlow2,3
1Department of Medicinal Chemistry, University of Kansas, Lawrence, KS, USA.
Background:
Dominant missense mutations in the amyloid-β protein precursor (AβPP) cause early-onset familial Alzheimer's disease (FAD) and are associated with changes in the production or properties of the amyloid-β peptide (Aβ), particularly of the 42-residue variant (Aβ42) that deposits in the Alzheimer's disease (AD) brain. Recent findings, however, show that FAD mutations in AβPP also lead to increased production of longer Aβ variants of 45-49 residues in length.
Objective:
We aimed to test neurotoxicity of Aβ42 vis-á-vis longer variants, focusing specifically on mitochondrial function, as dysfunctional mitochondria are implicated in the pathogenesis of AD.
Methods:
We generated SH-SY5Y human neuroblastoma cells stably expressing AβPP mutations that lead to increased production of long Aβ peptides with or without Aβ42. These AβPP-expressing cells were tested for oxygen consumption rates (OCR) under different conditions designed to interrogate mitochondrial function. These cell lines were also examined for expression of genes important for mitochondrial or neuronal structure and function.
Results:
The mutant AβPP-expressing cells showed decreased basal OCRs as well as decreased OCRs associated with mitochondrial ATP production, even more so in the absence of Aβ42 production. Moreover, mutant AβPP-expressing cells producing longer forms of Aβ displayed altered expression of certain mitochondrial- and neuronal-associated genes, whether or not Aβ42 was produced.
Conclusion:
These findings suggest that mutant AβPP can cause mitochondrial dysfunction that is associated with long Aβ but not with Aβ42.
Insights
Familial Alzheimer's disease mutations in amyloid-β protein precursor (AβPP) impact mitochondrial function. Longer Aβ peptides, not Aβ42, are linked to this dysfunction.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Dominant missense mutations in amyloid-β protein precursor (AβPP) cause early-onset familial Alzheimer's disease (FAD).
- FAD mutations alter amyloid-β peptide (Aβ) production, including the aggregation-prone Aβ42 variant.
- Recent findings indicate FAD mutations also increase production of longer Aβ variants (45-49 residues).
Purpose of the Study:
- To investigate the neurotoxicity of Aβ42 compared to longer Aβ variants.
- To specifically assess the impact on mitochondrial function, a known factor in Alzheimer's disease (AD) pathogenesis.
Main Methods:
- Generated human neuroblastoma cells (SH-SY5Y) expressing mutant AβPP with altered long Aβ production.
- Assessed mitochondrial function by measuring oxygen consumption rates (OCR) under various conditions.
- Examined gene expression related to mitochondrial and neuronal structure and function.
Main Results:
- Mutant AβPP-expressing cells exhibited reduced basal OCR and impaired mitochondrial ATP production.
- Mitochondrial dysfunction was more pronounced in cells lacking Aβ42 production.
- Cells producing longer Aβ forms showed altered expression of mitochondrial and neuronal genes, irrespective of Aβ42 presence.
Conclusions:
- Mutant AβPP induces mitochondrial dysfunction.
- This dysfunction is associated with the production of longer Aβ peptides.
- The findings suggest long Aβ variants, rather than Aβ42, are key contributors to mutant AβPP-induced mitochondrial impairment.
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