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The zebrafish embryo as a tool for screening and characterizing pleurocidin host-defense peptides as anti-cancer
Michael G Morash1, Susan E Douglas, Anna Robotham
1Institute for Marine Biosciences, National Research Council, 1411 Oxford Street, Halifax, NS B3H 3Z1, Canada.
Abstract:
The emergence of multidrug-resistant cancers and the lack of targeted therapies for many cancers underscore an unmet need for new therapeutics with novel modes of action towards cancer cells. Host-defense peptides often exhibit selective cytotoxicity towards cancer cells and show potential as anti-cancer therapeutics. Here, we screen 26 naturally occurring variants of the peptide pleurocidin for cytotoxic and anti-cancer activities, and investigate the underlying mechanism of action. Cytotoxicities were assessed in vitro using cell-based assays and in vivo using zebrafish embryos. Morphological changes were assessed by both transmission and scanning electron microscopy, and functional assays were performed on zebrafish embryos to investigate the mechanism of cell death. A total of 14 peptides were virtually inactive against HL60 human leukemia cells, whereas 12 caused >50% death at ≤32 μg/ml. Morphological changes characteristic of oncosis were evident by electron microscopy after only 1 minute of treatment with 32 μg/ml of variant NRC-03. Only two peptides were hemolytic. Four peptides showed no toxicity towards zebrafish embryos at the highest concentration tested (25 μM; ∼64 μg/ml) and one peptide was highly toxic, killing 4-hour-post-fertilization (hpf) embryos immediately after exposure to 1 μM peptide. Four other peptides killed embryos after 24 hours of exposure at 1 μM. Most peptides caused mortality at one or more developmental stages only after continuous exposure (24 hours) with higher lethal doses (≥5 μM). Pleurocidin NRC-03 bound to embryos and induced the release of superoxide, caused an increase in the number of TUNEL-positive nuclei, and caused membrane damage and the loss of embryonic epithelial integrity, marked by the exclusion of cells from the outer epithelium and the appearance of F-actin within the circumferential cells of the repair site. Our results indicate that specific pleurocidin variants are attractive cancer-selective agents that selectively induce cell death in target cells but leave non-target cells such as erythrocytes and non-transformed cells unaffected.
Insights
Researchers screened pleurocidin variants, identifying 12 with potent anti-cancer activity. One variant, NRC-03, selectively induced cell death in cancer cells via oncosis, offering a promising new therapeutic avenue.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Multidrug-resistant cancers and lack of targeted therapies necessitate novel anti-cancer agents.
- Host-defense peptides show selective cytotoxicity towards cancer cells, indicating therapeutic potential.
Purpose of the Study:
- To screen pleurocidin variants for cytotoxic and anti-cancer activities.
- To investigate the mechanism of action of potent pleurocidin variants.
Main Methods:
- In vitro cell-based assays and in vivo zebrafish embryo models were used to assess cytotoxicity.
- Transmission and scanning electron microscopy evaluated morphological changes.
- Functional assays in zebrafish embryos elucidated the cell death mechanism.
Main Results:
- Twelve of 26 pleurocidin variants exhibited significant cytotoxicity against HL60 leukemia cells.
- Pleurocidin NRC-03 induced oncosis-like cell death within minutes and demonstrated cancer-selective toxicity.
- Pleurocidin NRC-03 induced superoxide release, DNA damage, and membrane integrity loss in zebrafish embryos.
Conclusions:
- Specific pleurocidin variants, particularly NRC-03, are promising cancer-selective therapeutic agents.
- These variants induce cancer cell death through novel mechanisms, distinct from non-transformed cells.
- Pleurocidin peptides offer a potential new strategy for combating drug-resistant cancers.

