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Solubility of Hydrophobic Compounds in Aqueous Solution Using Combinations of Self-assembling Peptide and Amino Acid
Published on: September 20, 2017
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.
Abstract:
Cancer is one of the main causes of death worldwide. The current cancer treatment strategies often lack selectivity for cancer cells resulting in dose-limiting adverse effects and reduced quality of life. Recently, anticancer peptides (ACPs) have emerged as an alternative treatment with higher selectivity, less adverse effects, and lower propensity for drug resistance. However, most of the current studies on the ACPs are focused on α-helical ACPs and there is lack of systematic studies on β-sheet forming ACPs. Herein we report the development of a new series of rationally designed short cationic amphiphilic β-sheet forming ACPs and their structure activity relationship. The peptides had the general formula (XY1XY2)3, with X representing hydrophobic amino acids (isoleucine (I) or leucine (L)), Y1 and Y2 representing cationic amino acids (arginine (R) or lysine (K)). The cytotoxicity of the designed ACPs in HCT 116 colorectal cancer, HeLa cervical cancer and human dermal fibroblast (HDF) cells was assessed by MTT test. The physicochemical properties of the peptides were characterized by various techniques including RP-HPLC, LC-MS, and Circular Dichroism (CD) spectroscopy. The surface activity of the peptides at the air-water interface and their interaction with the lipid monolayers as models for cell membranes were studied by Langmuir trough. The peptides consisting of I with R and K had selective anticancer activity while the combination of L and R diminished the anticancer activity of the peptides but rendered them more toxic to HDFs. The anticancer activity of the peptides was directed by their surface activity (amphiphilicity) and their secondary structure in hydrophobic surfaces including cancer cell membranes. The selectivity of the peptides for cancer cells was a result of their higher penetration into cancer cell membranes compared to normal cell membranes. The peptides exerted their anticancer activity by disrupting the mitochondrial membranes and eventually apoptosis. The results presented in this study provide an insight into the structure-activity relationship of this class of ACPs which can be employed as guidance to design new ACPs with improved anticancer activity and lower toxicity against normal cells.
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.
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