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New lytic peptides based on the D,L-amphipathic helix motif preferentially kill tumor cells compared to normal cells
1Department of Biological Chemistry, The Weizmann Institute of Science, Rehovot, 76100 Israel.
Abstract:
Despite significant advances in cancer therapy, there is an urgent need for drugs with a new mode of action that will preferentially kill cancer cells. Several cationic antimicrobial peptides, which bind strongly to negatively charged membranes, were shown to kill cancer cells slightly better than normal cells. This was explained by a slight increase (3-9%) in the level of the negatively charged membrane phosphatidylserine (PS) in many cancer cells compared to their normal counterparts. Unfortunately, however, these peptides are inactivated by serum components. Here we synthesized and investigated the anticancer activity and the role of peptide charge, peptide structure, and phospholipid headgroup charge on the activity of a new group of diastereomeric lytic peptides (containing D- and L-forms of leucine and lysine; 15-17 amino acids long). The peptides are highly toxic to cancer cells, to a degree similar to or larger than that of mitomycin C. However, compared with mitomycin C and many native antimicrobial peptides, they are more selective for cancer cells. The peptides were investigated for (i) their binding to mono- and bilayer membranes by using the surface plasmon resonance (SPR) technique, (ii) their ability to permeate membranes by using fluorescence spectroscopy, (iii) their structure and their effect on the lipid order by using ATR-FTIR spectroscopy, and (iv) their ability to bind to cancer versus normal cells by using confocal microscopy. The data suggest that the peptides disintegrate the cell membrane in a detergent-like manner. However, in contrast to native antimicrobial peptides, the diastereomers bind and permeate similarly zwitterionic and PS-containing model membranes. Therefore, cell selectivity is probably determined mainly by improved electrostatic attraction of the peptides to acidic components on the surface of cancer cells (e.g., O-glycosylation of mucines). The simple composition of the diastereomeric peptides and their stability regarding enzymatic degradation by serum components make them excellent candidates for new chemotherapeutic drugs.
Insights
New diastereomeric peptides show high toxicity and selectivity against cancer cells, offering a promising new avenue for cancer therapy due to their stability and novel mechanism of action.
Area of Science:
- Biochemistry
- Biophysics
- Medicinal Chemistry
Background:
- Cancer therapy urgently needs novel drugs with improved cancer cell selectivity.
- Cationic antimicrobial peptides show some anticancer activity but are inactivated by serum.
- Cancer cells exhibit slightly higher levels of negatively charged phosphatidylserine (PS) on their membranes.
Purpose of the Study:
- To synthesize and investigate the anticancer activity of novel diastereomeric lytic peptides.
- To elucidate the role of peptide charge, structure, and phospholipid headgroup charge in anticancer efficacy.
- To evaluate the selectivity and mechanism of action of these peptides against cancer cells.
Main Methods:
- Surface Plasmon Resonance (SPR) for membrane binding.
- Fluorescence spectroscopy for membrane permeation.
- ATR-FTIR spectroscopy for structure and lipid order effects.
- Confocal microscopy for cell binding studies.
Main Results:
- Diastereomeric peptides exhibit high toxicity to cancer cells, comparable to or exceeding mitomycin C.
- These peptides demonstrate enhanced selectivity for cancer cells over normal cells.
- Mechanism involves detergent-like disintegration of cell membranes.
- Selectivity is attributed to electrostatic attraction to acidic components on cancer cell surfaces.
Conclusions:
- Diastereomeric lytic peptides are potent and selective anticancer agents.
- Their stability against serum degradation and novel mechanism make them promising chemotherapeutic candidates.
- Further development could lead to new cancer treatment strategies.
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