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Updated: Jun 5, 2026

Using Scaffold Liposomes to Reconstitute Lipid-proximal Protein-protein Interactions In Vitro
Published on: January 11, 2017
Electrostatic control of membrane disruption and amorphous coaggregation by dynorphin A variants
Mohsen Habibnia1, Eric Catalina-Hernandez1, Ramon Barnadas-Rodríguez1
1Unit of Biophysics, Department of Biochemistry and Molecular Biology, Facultat de Medicina, Universitat Autònoma de Barcelona, Av. Can Domènech s/n, Cerdanyola del Vallès, Catalonia, 08193, Spain; Institute of Neurosciences, Universitat Autònoma de Barcelona, Cerdanyola del Vallès, Catalonia, 08193, Spain.
Abstract:
Dynorphin A is a highly cationic neuropeptide that exhibits membrane activity beyond its canonical opioid receptor signaling. Here, we investigate how sequence variants of Dynorphin A associated with spinocerebellar ataxia type 23 modulate membrane disruption and aggregation behavior. Using computational electrophysiology simulations combined with liposome leakage and fluorescence-based aggregation assays, we show that Dynorphin A variants interact with lipid bilayers primarily via electrostatic recruitment, followed by mutation-dependent insertion and transient pore formation. Anionic lipids promote bilayer disruption, while cholesterol attenuates peptide activity in a variant-specific manner. Although Dynorphin A variants do not spontaneously form ordered aggregates, they markedly alter amyloid-β co-assembly by enhancing hydrophobic surface exposure without proportionally increasing fibrillization. These results demonstrate that subtle sequence changes fine-tune the balance between membrane perturbation and amorphous co-aggregation, and highlight electrostatic membrane recruitment as a key determinant of DynA bioactivity.
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