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A Tripeptide-Stabilized Nanoemulsion of Oleic Acid
Published on: February 27, 2019
Derivation of a novel antimicrobial peptide from the Red Sea Brine Pools modified to enhance its anticancer activity
Mona Elradi1, Ahmed I Ahmed2, Ahmed M Saleh2
1Biotechnology Program, American University in Cairo, New Cairo, Egypt.
Abstract:
Cancer associated drug resistance is a major cause for cancer aggravation, particularly as conventional therapies have presented limited efficiency, low specificity, resulting in long term deleterious side effects. Peptide based drugs have emerged as potential alternative cancer treatment tools due to their selectivity, ease of design and synthesis, safety profile, and low cost of manufacturing. In this study, we utilized the Red Sea metagenomics database, generated during AUC/KAUST Red Sea microbiome project, to derive a viable anticancer peptide (ACP). We generated a set of peptide hits from our library that shared similar composition to ACPs. A peptide with a homeodomain was selected, modified to improve its anticancer properties, verified to maintain high anticancer properties, and processed for further in-silico prediction of structure and function. The peptide's anticancer properties were then assessed in vitro on osteosarcoma U2OS cells, through cytotoxicity assay (MTT assay), scratch-wound healing assay, apoptosis/necrosis detection assay (Annexin/PI assay), RNA expression analysis of Caspase 3, KI67 and Survivin, and protein expression of PARP1. L929 mouse fibroblasts were also assessed for cytotoxicity treatment. In addition, the antimicrobial activity of the peptide was also examined on E coli and S. aureus, as sample representative species of the human bacterial microbiome, by examining viability, disk diffusion, morphological assessment, and hemolytic analysis. We observed a dose dependent cytotoxic response from peptide treatment of U2OS, with a higher tolerance in L929s. Wound closure was debilitated in cells exposed to the peptide, while annexin fluorescent imaging suggested peptide treatment caused apoptosis as a major mode of cell death. Caspase 3 gene expression was not altered, while KI67 and Survivin were both downregulated in peptide treated cells. Additionally, PARP-1 protein analysis showed a decrease in expression with peptide exposure. The peptide exhibited minimal antimicrobial activity on critical human microbiome species E. coli and S. aureus, with a low inhibition rate, maintenance of structural morphology and minimal hemolytic impact. These findings suggest our novel peptide displayed preliminary ACP properties against U2OS cells, through limited specificity, while triggering apoptosis as a primary mode of cell death and while having minimal impact on the microbiological species E. coli and S. aureus.
Insights
This study identifies a novel anticancer peptide (ACP) derived from Red Sea metagenomics. The peptide shows promising in vitro anticancer activity against osteosarcoma cells by inducing apoptosis, with minimal impact on beneficial bacteria.
Area of Science:
- Biotechnology
- Drug Discovery
- Genomics
Background:
- Cancer drug resistance necessitates novel therapeutic strategies.
- Peptide-based drugs offer advantages in selectivity, safety, and manufacturing cost.
- Metagenomics provides a rich source for identifying novel bioactive compounds.
Purpose of the Study:
- To discover and characterize a novel anticancer peptide (ACP) from the Red Sea metagenomics database.
- To evaluate the in vitro anticancer efficacy and specificity of the derived peptide.
- To assess the peptide's impact on human microbiome bacterial species.
Main Methods:
- Metagenomic data mining to identify potential ACPs.
- In silico prediction of peptide structure and function.
- In vitro assays including cytotoxicity (MTT), wound healing, apoptosis (Annexin/PI), gene expression (Caspase 3, KI67, Survivin), and protein expression (PARP1).
- Antimicrobial activity testing against E. coli and S. aureus.
Main Results:
- A modified homeodomain-containing peptide demonstrated dose-dependent cytotoxicity against osteosarcoma U2OS cells.
- The peptide induced apoptosis as the primary cell death mechanism, downregulating KI67 and Survivin expression and decreasing PARP-1 protein levels.
- The peptide exhibited higher tolerance in L929 mouse fibroblasts, indicating some specificity.
- Minimal antimicrobial activity and hemolytic effects were observed against E. coli and S. aureus.
Conclusions:
- The novel peptide possesses preliminary anticancer properties against osteosarcoma cells.
- Apoptosis induction is the main mechanism of action.
- The peptide shows potential for further development as an anticancer therapeutic with a favorable safety profile regarding microbiome impact.

