Correlation between the secondary structure and surface activity of β-sheet forming cationic amphiphilic peptides and

Roja Hadianamrei1, Mhd Anas Tomeh1, Stephen Brown2

  • 1Department of Chemical and Biological Engineering, University of Sheffield, S1 3JD, UK.

Insights

Researchers designed new anticancer peptides (ACPs) that form beta-sheets, showing selective activity against cancer cells by disrupting mitochondrial membranes. This study guides the development of more effective and less toxic cancer therapies.

Area of Science:

  • Biochemistry and Molecular Biology
  • Medicinal Chemistry
  • Oncology

Background:

  • Cancer remains a leading cause of mortality worldwide, with current treatments often causing significant side effects due to lack of selectivity.
  • Anticancer peptides (ACPs) offer a promising alternative with improved selectivity and reduced drug resistance.
  • Systematic studies on beta-sheet forming ACPs are lacking compared to alpha-helical ACPs.

Purpose of the Study:

  • To design and characterize a new series of short cationic amphiphilic beta-sheet forming ACPs.
  • To investigate the structure-activity relationship of these novel ACPs.
  • To evaluate their selective anticancer activity and mechanism of action.

Main Methods:

  • Rational design of peptides with a general formula (XY1XY2)3 using hydrophobic (I, L) and cationic (R, K) amino acids.
  • Cytotoxicity assessment using MTT assay on colorectal (HCT 116), cervical (HeLa) cancer cells, and human dermal fibroblasts (HDFs).
  • Physicochemical characterization via RP-HPLC, LC-MS, Circular Dichroism (CD) spectroscopy, and Langmuir trough analysis of surface activity and membrane interaction.

Main Results:

  • Peptides containing isoleucine (I) with arginine (R) and lysine (K) exhibited selective anticancer activity.
  • Leucine (L) and arginine (R) combinations reduced anticancer efficacy and increased toxicity to normal cells (HDFs).
  • Anticancer activity correlated with surface activity, amphiphilicity, and secondary structure on hydrophobic surfaces, leading to cancer cell membrane penetration, mitochondrial disruption, and apoptosis.

Conclusions:

  • The designed beta-sheet forming ACPs demonstrate selective anticancer properties.
  • Structure-activity relationships highlight the importance of amino acid composition (I vs. L) and amphiphilicity for efficacy and selectivity.
  • These findings provide a foundation for developing next-generation ACPs with enhanced anticancer potential and reduced host toxicity.