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Superior Drug Delivery Performance of Multifunctional Bilosomes: Innovative Strategy to Kill Skin Cancer Cells for
Ewelina Waglewska1, Julita Kulbacka2,3, Urszula Bazylinska1
1Department of Physical and Quantum Chemistry, Faculty of Chemistry, Wroclaw University of Science and Technology, Wroclaw, Poland.
Purpose:
Numerous failures in melanoma treatment as a highly aggressive form of skin cancer with an unfavorable prognosis and excessive resistance to conventional therapies are prompting an urgent search for more effective therapeutic tools. Consequently, to increase the treatment efficiency and to reduce the side effects of traditional administration ways, herein, it has become crucial to combine photodynamic therapy as a promising therapeutic approach with the selectivity and biocompatibility of a novel colloidal transdermal nanoplatform for effective delivery of hybrid cargo with synergistic effects on melanoma cells.
Methods:
The self-assembled bilosomes, co-stabilized with L-α-phosphatidylcholine, sodium cholate, Pluronic® P123, and cholesterol, were designated, and the stability of colloidal vesicles was studied using dynamic and electrophoretic light scattering, also provided in cell culture medium (Dulbecco's Modified Eagle's Medium). The hybrid compounds - a classical photosensitizer (Methylene Blue) along with a complementary natural polyphenolic agent (curcumin), were successfully co-loaded, as confirmed by UV-Vis, ATR-FTIR, and fluorescent spectroscopies. The biocompatibility and usefulness of the polymer functionalized bilosome with loaded double cargo were demonstrated in vitro cyto- and phototoxicity experiments using normal keratinocytes and melanoma cancer cells.
Results:
The in vitro bioimaging and immunofluorescence study upon human skin epithelial (A375) and malignant (Me45) melanoma cell lines established the protective effect of the PEGylated bilosome surface. This effect was confirmed in cytotoxicity experiments, also determined on human cutaneous (HaCaT) keratinocytes. The flow cytometry experiments indicated the enhanced uptake of the encapsulated hybrid cargo compared to the non-loaded MB and CUR molecules, as well as a selectivity of the obtained nanocarriers upon tumor cell lines. The phyto-photodynamic action provided 24h-post irradiation revealed a more significant influence of the nanoplatform on Me45 cells in contrast to the A375 cell line, causing the cell viability rate below 20% of the control.
Conclusion:
As a result, we established an innovative and effective strategy for potential metastatic melanoma treatment through the synergism of phyto-photodynamic therapy and novel bilosomal-origin nanophotosensitizers.
Insights
This study developed a novel nanoplatform for melanoma treatment, combining photodynamic therapy with curcumin and methylene blue. The bilosome nanocarrier demonstrated enhanced delivery and selectivity, showing significant potential for treating aggressive skin cancer.
Area of Science:
- * Nanomedicine and Drug Delivery
- * Photodynamic Therapy
- * Cancer Therapeutics
Background:
- * Melanoma is an aggressive skin cancer with poor prognosis and high resistance to conventional treatments.
- * Novel therapeutic strategies are urgently needed to improve treatment efficiency and reduce side effects.
- * Combining photodynamic therapy with advanced nanodelivery systems offers a promising approach.
Purpose of the Study:
- * To develop a novel colloidal transdermal nanoplatform for synergistic melanoma treatment.
- * To co-load a photosensitizer (Methylene Blue) and a natural polyphenol (curcumin) into bilosomes.
- * To evaluate the efficacy and selectivity of the developed nanoplatform in vitro.
Main Methods:
- * Self-assembled bilosomes were formulated and characterized for stability.
- * Hybrid cargo (Methylene Blue and curcumin) loading was confirmed using spectroscopic techniques.
- * In vitro cyto- and phototoxicity assays were performed on melanoma and keratinocyte cell lines.
- * Flow cytometry and bioimaging were used to assess cellular uptake and selectivity.
Main Results:
- * The PEGylated bilosome surface provided a protective effect.
- * Enhanced cellular uptake of co-loaded cargo was observed compared to individual components.
- * The nanoplatform exhibited selectivity towards melanoma cells, with significant cell death (<20% viability) in Me45 cells post-irradiation.
- * In vitro studies confirmed the biocompatibility and effectiveness of the nanoplatform.
Conclusions:
- * An innovative phyto-photodynamic therapy strategy was established for potential metastatic melanoma treatment.
- * Novel bilosomal-origin nanophotosensitizers demonstrate synergistic effects on melanoma cells.
- * This approach holds promise for overcoming melanoma treatment resistance and improving therapeutic outcomes.
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