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Updated: May 19, 2026

A 3D Organotypic Melanoma Spheroid Skin Model
Published on: May 18, 2018
Phytosomes against melanoma: disrupting molecular pathways with targeted phytochemical delivery
Prerna Uniyal1, Nivedita Bhardwaj2,3, Deepika Raina4
1School of Pharmacy, Graphic Era Hill University, Bell Road, Clement Town, Dehradun, Uttarakhand, 248002, India.
Abstract:
Melanoma is still the most lethal form of skin cancer causing approximately 56,000 fatalities annually. This cancer is primarily caused by molecular variations in the MAPK, PI3K/AKT, Wnt/β-catenin, p53, and immune signalling pathways. Even though immunotherapies and targeted agents have extended survival, resistance to therapy, toxicity, and limited accessibility still hinder progress worldwide. Various phytoconstituents obtained from natural sources, incorporating flavonoids, terpenoids, alkaloids, and polyphenols, have shown potent antiproliferative, pro-apoptotic, anti-inflammatory, and anti-metastatic effects in melanoma. However, their clinical use is limited by rapid metabolism, minimal systemic stability, poor absorption, and lack of tumor targeting despite attractive preclinical data. A significant improvement in phytochemical delivery in the form of nanoliposomes has emerged, introducing phytosome technology. This technology overcomes the drawbacks by producing stable phospholipid complexes with phytochemicals, thereby enhancing their solubility, bioavailability, membrane-permeability, and pharmacokinetic parameters. This comprehensive study covers the cellular mechanisms of melanoma, the drawbacks of existing therapies, the benefits of nanotechnology-based strategies and the increasing importance of phytosomes as a delivery vehicle for anticancer phytochemicals. It explains the progress in preparation methods, therapeutic effects, preclinical investigations, and the challenges in translating phytosome-based drug delivery for cutaneous melanoma.
Insights
Phytosome technology enhances the delivery of natural anticancer compounds for melanoma treatment. This nanotechnology overcomes limitations of phytochemicals, improving their effectiveness against skin cancer.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Melanoma remains a lethal skin cancer with significant annual fatalities.
- Current therapies face challenges like treatment resistance, toxicity, and limited accessibility.
- Natural phytoconstituents show promise but suffer from poor bioavailability and tumor targeting.
Purpose of the Study:
- To explore phytosome technology as an advanced delivery system for anticancer phytochemicals in melanoma.
- To address the limitations of conventional phytochemical delivery methods.
- To review the potential of phytosomes in overcoming melanoma treatment hurdles.
Main Methods:
- Review of cellular mechanisms in melanoma.
- Analysis of current therapeutic drawbacks and nanotechnology-based strategies.
- Investigation into phytosome preparation, therapeutic effects, and preclinical data.
Main Results:
- Phytosome technology forms stable phospholipid complexes, enhancing phytochemical solubility, bioavailability, and membrane permeability.
- This approach improves pharmacokinetic parameters and overcomes limitations of free phytochemicals.
- Preclinical data suggests significant therapeutic potential for phytosome-encapsulated phytochemicals in melanoma.
Conclusions:
- Phytosomes represent a promising nanotechnology for effective delivery of anticancer phytochemicals.
- This delivery system offers a viable strategy to improve melanoma treatment outcomes.
- Further research and clinical translation are needed to fully realize the potential of phytosome-based therapies for cutaneous melanoma.
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