Mechanisms
Specific lysophospholipid micelles reverse the beta-sheet, amyloid-fibril-forming conformation of a CETP C-terminus D470N mutant peptide back to alpha-helix (Biochem Biophys Res Commun 2013)
Original title: Amyloid fibril formation of peptides derived from the C-terminus of CETP modulated by lipids
Cholesteryl-ester transfer protein (CETP) is a plasma protein mediating neutral lipid transfer between lipoproteins. The authors previously showed that the D470N mutation in the last 12 C-terminus residues promotes a conformational change to a beta-sheet structure, forming oligomers and fibrils with cytotoxic effects resembling amyloid peptides. Using thioflavin T fluorescence, peptide bond absorbance, circular dichroism and electron microscopy, they tested how specific lipid arrangements affect this D470N peptide (helix-Z). Micelles formed with lysophosphatidylcholine and lysophosphatidic acid (LPA) at neutral pH induced a conformational transition from beta-sheet back to native alpha-helix, preventing amyloid fibril formation, whereas phosphatidic acid did not change the beta-sheet profile. Mixtures with a positive net surface charge reduced beta-structure and amyloid content, indicating lipid solvation properties modulate CETP C-terminus structure and amyloid formation.
Original abstract
Cholesteryl-ester transfer protein (CETP) is a plasmatic protein involved in neutral lipid transfer between lipoproteins. Focusing on the last 12 C-terminus residues we have previously shown that mutation D470N promotes a conformational change towards a β-secondary structure. In turn, this modification leads to the formation of oligomers and fibrillar structures, which cause cytotoxic effects similar to the ones provoked by amyloid peptides. In this study, we evaluated the role of specific lipid arrangements on the structure of peptide helix-Z (D470N) through the use of thioflavin T fluorescence, peptide bond absorbance, circular dichroism and electron microscopy. The results indicate that the use of micelles formed with lysophosphatidylcholine and lysophosphatidic acid (LPA) under neutral pH induce a conformational transition of peptide helix-Z containing a β-sheet conformation to a native α-helix structure, therefore avoiding the formation of amyloid fibrils. In contrast, incubation with phosphatidic acid does not change the profile for the β-sheet conformation. When the electrostatic charge at the surface of micelles or vesicles is regulated through the use of lipids such as phospholipid and LPA, minimal changes and the presence of β-structures were recorded. Mixtures with a positive net charge diminished the percentage of β-structure and the amount of amyloid fibrils. Our results suggest that the degree of solvation determined by the presence of a free hydroxyl group on lipids such as LPA is a key condition that can modulate the secondary structure and the consequent formation of amyloid fibrils in the highly flexible C-terminus domain of CETP.
Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 19 August 2026. Methods.