Submitted:
20 September 2025
Posted:
22 September 2025
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Abstract

Keywords:
1. Introduction
2. Mechanisms of Antimicrobial Resistance in MRSA
3. Antimicrobial Peptides as Emerging Therapeutics
4. Peptide Engineering, Formulation, and Translational Challenges
4. Emergence of Resistance to Antimicrobial Peptides (Figure 4)

5. Clinical Potential and Future Perspectives
6. Conclusion
Author Contributions
Funding Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Ethics Statement
Use of Artificial Intelligence (AI)
References
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| AMP Name | Source Organism | Mechanism of Action | MIC Range (µM) | References |
|---|---|---|---|---|
| WR12 | Synthetic (Arginine-Tryptophan) | Membrane disruption, DNA/RNA/protein synthesis inhibition | 2–8 | Mohamed et al., 2016 |
| D-IK8 | Synthetic (Isoleucine-Lysine) | Membrane disruption, DNA/RNA/protein synthesis inhibition | 8–16 | Mohamed et al., 2016 |
| Pexiganan | African clawed frog (Xenopus) | Membrane disruption | 4–8 | Mohamed et al., 2016 |
| GW18 | Synthetic (Cathelicidin-BF) | Membrane disruption, low hemolysis and cytotoxicity | Not specified | Jin et al., 2016 |
| Lariocidin | Soil bacterium (Paenibacillus) | Inhibition of bacterial translation via ribosome interaction | Not specified | Lariocidin - Wikipedia. |
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