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Updated: Jun 2, 2026

Interactions with and Membrane Permeabilization of Brain Mitochondria by Amyloid Fibrils
Published on: September 28, 2019
Membrane integrity and amyloid cytotoxicity: a model study involving mitochondria and lysozyme fibrillation products
Ali Akbar Meratan1, Atiyeh Ghasemi, Mohsen Nemat-Gorgani
1Institute of Biochemistry and Biophysics, University of Tehran, P.O. Box 13145-1384, 1417614411 Tehran, Iran.
Abstract:
Recent findings implicate that fibrillation products, the protein aggregates formed during the various steps leading to formation of mature fibrils, induce neurotoxicity predominantly in their intermediate oligomeric state. This has been shown to occur by increasing membrane permeability, eventually leading to cell death. Despite accumulating reports describing mechanisms of membrane permeabilization by oligomers in model membranes, studies directly targeted at characterizing the events occurring in biological membranes are rare. In the present report, we describe interaction of the original native structure, prefibrils and fibrils of hen egg white lysozyme (HEWL) with mitochondrial membranes, as an in vitro biological model, with the aim of gaining insight into possible mechanism of cytotoxicity at the membrane level. These structures were first characterized using a range of techniques, including fluorescence, size-exclusion chromatography, dynamic light scattering, transmission electron microscopy, dot blot analysis and circular dichroism. HEWL oligomers were found to be flexible/hydrophobic structures with the capacity to interact with mitochondrial membranes. Possible permeabilization of mitochondria was explored utilizing sensitive fluorometric and luminometric assays. Results presented demonstrate release of mitochondrial enzymes upon exposure to HEWL oligomers, but not native enzyme monomer or mature fibrils, in a concentration-dependent manner. Release of cytochrome c was also observed, as reported earlier, and membrane stabilization promoted by addition of calcium prevented release. Moreover, the oligomer-membrane interaction was influenced by high concentrations of NaCl and spermine. The observed release of proteins from mitochondria is suggested to occur by a nonspecific perturbation mechanism.
Insights
Protein oligomers, not fibrils, damage mitochondria by increasing membrane permeability. This study shows hen egg white lysozyme oligomers release enzymes from mitochondria, indicating a mechanism for neurotoxicity.
Area of Science:
- Biochemistry
- Cell Biology
- Neuroscience
Background:
- Protein misfolding and aggregation into fibrils are implicated in neurodegenerative diseases.
- Oligomeric intermediates are increasingly recognized as the primary toxic species.
- Mechanisms of oligomer-induced membrane damage in biological systems remain poorly understood.
Purpose of the Study:
- To investigate the interaction of hen egg white lysozyme (HEWL) structures (native, prefibrils, fibrils, oligomers) with mitochondrial membranes.
- To elucidate the membrane-level mechanisms underlying HEWL oligomer-induced cytotoxicity.
- To characterize the specific HEWL species responsible for mitochondrial damage.
Main Methods:
- Characterization of HEWL structures using spectroscopy, chromatography, microscopy, and light scattering.
- Assessment of HEWL oligomer interaction with isolated mitochondrial membranes.
- Fluorometric and luminometric assays to detect enzyme release and cytochrome c leakage.
- Evaluation of the effect of calcium, NaCl, and spermine on oligomer-membrane interactions.
Main Results:
- HEWL oligomers, unlike monomers or fibrils, demonstrated flexibility and hydrophobicity, enabling interaction with mitochondrial membranes.
- Exposure to HEWL oligomers caused a concentration-dependent release of mitochondrial enzymes and cytochrome c.
- Calcium-mediated membrane stabilization inhibited the release of mitochondrial proteins.
- Oligomer-membrane interactions were modulated by high salt concentrations and spermine.
Conclusions:
- HEWL oligomers, but not native monomers or mature fibrils, induce mitochondrial membrane permeabilization.
- The observed protein release suggests a nonspecific perturbation mechanism of cytotoxicity.
- These findings highlight the critical role of oligomeric protein species in mediating membrane damage and cellular dysfunction.
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