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Updated: Jul 15, 2025

Fluorescent Leakage Assay to Investigate Membrane Destabilization by Cell-Penetrating Peptide
Published on: December 19, 2020
Differential membrane binding of α/β-peptide foldamers: implications for cellular delivery and mitochondrial
Tzong-Hsien Lee1, James W Checco2,3,4, Tess Malcolm1,5
1Department of Biochemistry & Molecular Biology, Monash University, Clayton Vic, 3800, Australia.
Abstract:
The intrinsic pathway of apoptosis is regulated by the Bcl-2 family of proteins. Inhibition of the anti-apoptotic members represents a strategy to induce apoptotic cell death in cancer cells. We have measured the membrane binding properties of a series of peptides, including modified α/β-peptides, designed to exhibit enhanced membrane permeability to allow cell entry and improved access for engagement of Bcl-2 family members. The peptide cargo is based on the pro-apoptotic protein Bim, which interacts with all anti-apoptotic proteins to initiate apoptosis. The α/β-peptides contained cyclic β-amino acid residues designed to increase their stability and membrane-permeability. Dual polarisation interferometry was used to study the binding of each peptide to two different model membrane systems designed to mimic either the plasma membrane or the outer mitochondrial membrane. The impact of each peptide on the model membrane structure was also investigated, and the results demonstrated that the modified peptides had increased affinity for the mitochondrial membrane and significantly altered the structure of the bilayer. The results also showed that the presence of an RRR motif significantly enhanced the ability of the peptides to bind to and insert into the mitochondrial membrane mimic, and provide insights into the role of selective membrane targeting of peptides.
Insights
Modified peptides based on the Bim protein show enhanced binding to mitochondrial membranes, offering a new strategy for cancer therapy by targeting apoptosis.
Area of Science:
- Biochemistry
- Molecular Biology
- Biophysics
Background:
- The intrinsic apoptosis pathway is regulated by Bcl-2 proteins.
- Inhibiting anti-apoptotic proteins is a cancer treatment strategy.
- Targeting cancer cells requires peptides with enhanced membrane permeability.
Purpose of the Study:
- To design and evaluate modified peptides for improved cell entry and Bcl-2 family engagement.
- To investigate the membrane binding properties and structural impact of novel α/β-peptides.
- To explore selective targeting of mitochondrial membranes for apoptosis induction.
Main Methods:
- Synthesis of modified α/β-peptides incorporating cyclic β-amino acids and RRR motif.
- Dual polarisation interferometry to assess peptide binding to model plasma and mitochondrial membranes.
- Analysis of peptide-induced alterations in model membrane structure.
Main Results:
- Modified peptides demonstrated increased affinity for mitochondrial membrane mimics.
- Peptides significantly altered the structure and bilayer of model membranes.
- The RRR motif enhanced peptide binding and insertion into mitochondrial membrane mimics.
Conclusions:
- Novel α/β-peptides show promise for selective mitochondrial membrane targeting.
- These peptides offer a potential strategy for inducing apoptosis in cancer cells.
- Understanding peptide-membrane interactions is crucial for developing targeted therapies.
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