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.

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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