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A Novel In Vitro Wound Healing Assay to Evaluate Cell Migration
Published on: March 17, 2018
The anti-angiogenic peptide anginex disrupts the cell membrane
Jan Pilch1, Carla M Franzin, Lynn M Knowles
1Burnham Institute for Medical Research, 10901 N. Torrey Pines Rd., La Jolla, CA 92037, USA.
Abstract:
Anginex is a synthetic beta-sheet peptide with anti-angiogenic and anti-tumor activity. When added to cultured endothelial cells at concentrations ranging from 2.5 microM to 25 microM, anginex induced cell death, which was reflected by a strong increase of subdiploid cells and fragments, loss of cellular ATP, and LDH release. Cytotoxicity remained the same whether cells were treated with anginex at 4 degrees C or at 37 degrees C. At low temperatures, fluorescein-conjugated anginex accumulated on the endothelial surface, but did not reach into the cytoplasm, indicating that the cell membrane is the primary target for the peptide. Within minutes of treatment, anginex caused endothelial cells to take up propidium iodide and undergo depolarization, both parameters characteristic for permeabilization of the cell membrane. This process was amplified when cells were activated with hydrogen peroxide. Red blood cell membranes were essentially unaffected by anginex. Anginex bound lipid bilayers with high affinity and with a clear preference for anionic over zwitterionic phospholipids. Structural studies by circular dichroism and solid-state nuclear magnetic resonance showed that anginex forms a beta-sheet and adopts a unique and highly ordered conformation upon binding to lipid membranes. This is consistent with lipid micellization or the formation of pore-forming beta-barrels. The data suggest that the cytotoxicity of anginex stems from its ability to target and disrupt the endothelial cell membrane, providing a possible explanation for the angiostatic activity of the peptide.
Insights
Anginex, a synthetic peptide, effectively kills endothelial cells by disrupting their cell membranes, offering potential as an anti-cancer agent. This peptide exhibits anti-angiogenic and anti-tumor properties by targeting cell membranes.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Anginex is a synthetic peptide with demonstrated anti-angiogenic and anti-tumor properties.
- Understanding the mechanism of action of anginex is crucial for its therapeutic development.
Purpose of the Study:
- To investigate the cytotoxic effects of anginex on endothelial cells.
- To elucidate the molecular mechanisms underlying anginex-induced cell death and its interaction with cell membranes.
Main Methods:
- Cell viability assays (ATP depletion, LDH release, subdiploid cell analysis).
- Fluorescence microscopy to track anginex localization.
- Propidium iodide uptake and membrane potential measurements.
- Lipid binding studies and biophysical characterization (circular dichroism, NMR).
Main Results:
- Anginex induces endothelial cell death through membrane permeabilization, evidenced by increased subdiploid cells, ATP loss, and LDH release.
- The peptide localizes to the cell surface at low temperatures, indicating the cell membrane as the primary target.
- Anginex binds lipid bilayers with high affinity, preferring anionic phospholipids, and forms ordered beta-sheet structures.
- Cytotoxicity is independent of temperature and can be amplified by hydrogen peroxide.
Conclusions:
- Anginex exerts its cytotoxic effects by directly targeting and disrupting the endothelial cell membrane.
- The peptide's mechanism involves membrane permeabilization and potentially pore formation.
- These findings support anginex's potential as an angiostatic agent for cancer therapy.
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