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Published on: June 7, 2024
Exploring Endolysin-Loaded Alginate-Chitosan Nanoparticles as Future Remedy for Staphylococcal Infections
Jasjeet Kaur1, Avneet Kour2, Jiban Jyoti Panda2
1Department of Microbiology, Panjab University, Chandigarh, India.
Abstract:
Endolysins are a novel class of antibacterials with proven efficacy in combating various bacterial infections, in vitro and in vivo. LysMR-5, an endolysin derived from phage MR-5, demonstrated high lytic activity in our laboratory against multidrug-resistant S. aureus (MRSA) and S. epidermidis strains. However, endolysin and proteins in general are associated with instability and short in vivo half-life, consequently limiting their usage as pharmaceutical preparation to treat bacterial infections. Nanoencapsulation of endolysins could help to achieve better therapeutic outcome, by protecting the proteins from degradation, providing sustained release, thus could increase their stability, shelf life, and therapeutic efficacy. Hence, in this study, the feasibility of alginate-chitosan nanoparticles (Alg-Chi NPs) to serve as drug delivery platform for LysMR-5 was evaluated. LysMR-5-loaded nanoparticles were prepared by calcium ion-induced pre-gelation of alginate core and its complexation with chitosan. The formation of nanoparticles was confirmed on the basis of DLS, zeta potential, and electron microscopy imaging. The LysMR-5-loaded nanoparticles presented a hydrodynamic diameter of 276.5 ± 42, a PDI of 0.342 ± 0.02, a zeta potential - 25 mV, and an entrapment efficiency of 62 ± 3.1%. The potential ionic interaction between alginate, chitosan, and LysMR-5 was investigated by FT-IR and SEM-EDX analysis. Using scanning electron microscopy (SEM) and transmission electron microscopy (TEM), nano-sized particles with characteristic morphology were seen. Different antibacterial assays and SDS-PAGE analysis showed no change in endolysin's structural integrity and bioactivity after entrapment. A direct antibacterial effect of blank Alg-Chi Nps, showing enhanced bactericidal activity upon LysMR-5 loading, was observed against S. aureus. At physiological pH (7.2), the release profile of LysMR-5 from Alg-Chi NPs showed a biphasic release and followed a non-Fickian release mechanism. The biocompatible nature as revealed by cytocompatibility and hemocompatibility studies endorsed their use as drug delivery system for in vivo studies. Collectively, these results demonstrate the potential of Alg-Chi NPs as nano-delivery vehicle for endolysin LysMR-5 and other therapeutic proteins for their use in various biomedical applications.
Insights
Alginate-chitosan nanoparticles effectively encapsulate the antibacterial endolysin LysMR-5, enhancing its stability and efficacy against resistant bacteria. This nanoencapsulation strategy shows promise for developing novel protein-based therapeutics for infections.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Microbiology
Background:
- Endolysins, like LysMR-5, are potent antibacterials against multidrug-resistant bacteria.
- Protein instability and short half-life limit the therapeutic application of endolysins.
- Nanoencapsulation offers a strategy to improve protein stability and delivery.
Purpose of the Study:
- To evaluate alginate-chitosan nanoparticles (Alg-Chi NPs) as a drug delivery platform for the endolysin LysMR-5.
- To assess the stability, bioactivity, and release profile of LysMR-5 loaded within Alg-Chi NPs.
- To determine the potential of this nanoformulation for biomedical applications.
Main Methods:
- LysMR-5 loaded Alg-Chi NPs were prepared using ion-induced gelation and complexation.
- Nanoparticle characterization involved DLS, zeta potential, SEM, and TEM.
- Protein integrity and bioactivity were assessed via SDS-PAGE and antibacterial assays.
- In vitro release studies and biocompatibility tests (cytocompatibility, hemocompatibility) were performed.
Main Results:
- Successful formation of LysMR-5-loaded Alg-Chi NPs with a hydrodynamic diameter of 276.5 ± 42 nm and entrapment efficiency of 62 ± 3.1%.
- Nanoencapsulation preserved LysMR-5's structural integrity and antibacterial activity against S. aureus.
- A biphasic, non-Fickian release of LysMR-5 from NPs was observed at physiological pH.
- Studies confirmed the biocompatibility of the nanoparticles.
Conclusions:
- Alginate-chitosan nanoparticles are a feasible and effective nano-delivery vehicle for endolysin LysMR-5.
- This nanoencapsulation approach enhances endolysin stability and therapeutic potential.
- The developed system holds promise for treating bacterial infections and other biomedical applications.

