A yeast toxic mutant of HET-s amyloid disrupts membrane integrity

Ha Phuong Ta1, Karine Berthelot, Bénédicte Coulary-Salin

  • 1Université Bordeaux 1, Allée Geoffroy de Saint Hilaire, Pessac, France.

Insights

The toxic amyloid mutant M8 disrupts lipid membranes, causing leakage and microdomain formation. In contrast, the non-toxic wild-type protein only binds membranes, suggesting M8

Area of Science:

  • Biochemistry
  • Biophysics
  • Structural Biology

Background:

  • Amyloid interactions with membranes are implicated in toxicity.
  • A toxic amyloid mutant (M8) of HET-s protein was previously generated.
  • Distinct behaviors of wild-type (WT) and M8 amyloid proteins were established.

Purpose of the Study:

  • To compare the interaction of WT and M8 amyloid proteins with membrane models.
  • To investigate the impact of these interactions on membrane integrity and amyloid aggregation.

Main Methods:

  • Liposome and supported bilayer membrane models were used.
  • Leakage assays, microdomain analysis, and spectroscopic methods (FTIR) were employed.
  • Cryo-transmission electron microscopy (Cryo-TEM) was utilized to visualize amyloid-membrane structures.

Main Results:

  • Toxic M8 induced significant liposome leakage and lipid microdomain formation.
  • Non-toxic WT protein only bound to membranes without causing disruption.
  • Membrane models catalyzed amyloidogenesis for both proteins.
  • M8 aggregation promoted membrane disruption, unlike WT.

Conclusions:

  • The toxicity of M8 is likely linked to its ability to interact with and disrupt lipid membranes.
  • Amyloid-membrane interactions are crucial in understanding amyloid-associated toxicity.
  • Membrane environments can influence amyloid aggregation pathways.

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