Drug Carrier for Photodynamic Cancer Therapy
Abstract
:1. Introduction
1.1. Principle and Mechanism of Photodynamic Therapy
1.2. Anti-Tumor Activity of PDT
1.2.1. Direct Tumor Cell Kill
1.2.2. Vascular Damage
1.2.3. Inflammatory and Immune Response
1.3. Photosensitizer
Photosensitizer | Approved Application |
---|---|
Porfimer sodium (Photofrin) | Used in the treatment of early and late-stage lung cancers, esophageal cancer, bladder cancer, early stage cervical cancer, and malignant and nonmalignant skin diseases. It is also being considered as potential therapy against Kaposi’s sarcoma, Barrett’s esophagus with high-grade dysplasia, psoriasis, and cancers of the head, brain, neck and breast [45,46] |
5-Aminolevulinic acid or ALA (Levulan) | US FDA approved for non-oncological PDT treatment of actinic keratosis in 1999. Its potential PDT applications extend to Bowen’s disease, basal cell carcinoma, and other diseases. ALA can also be used to detect tumors in bladder, skin, lung, and gastrointestinal tract [47,48,49,50] |
Methyl aminolevulinate (Metvixia) | Approved by the US FDA in 2004 for treatment of actinic keratosis [51,52] |
Meta tetra(hydroxyphenyl) chlorin (Foscan) | Treatment of neck and scalp cancer with m-THPC was approved in Europe, and the drug was used successfully for the treatment of breast, prostate, and pancreatic cancers [53,54,55] |
N-aspartyl chlorin e6 (NPe6, Laserphyrin) | Approved for the treatment of fibrosarcoma, liver cancer, brain cancer, and oral cancer. Approved in Japan in 2003 to treat lung cancer [46] |
Benzoporphyrin derivative monoacid ring A (Visudyne) | In 1999, US FDA approved Visudyne for age-related macular degeneration in ophthalmology [41] |
n-Hexyl ester of ALA (Cysview) | Approved in 2010 by the US FDA for the diagnosis of bladder cancer [56] |
Photosensitizers | Potential indication |
---|---|
Hypocrellin A | White lesions of vulva and keloid cases, antiviral activity against human immunodeficiency virus type 1 and age-related macular degeneration [57,58] |
Pheophorbide-a | Early stage lung cancer, superficial head and neck cancer and human uterine cancer [59,60] |
Chlorin e6 | Superficial squamous cell carcinoma of the lung, human nasopharyngeal and bladder carcinomas [61,62,63] |
Methylene blue | Basal cell carcinoma, Kaposi’s sarcoma and Melanoma [64,65] |
Hypericin | Bladder cancer, nasopharyngeal carcinoma cells [66,67] |
Phthalocyanine | Cutaneous/subcutaneous lesions from diverse solid tumor origins [68] |
Rose Bengal | Metastatic melanoma [69] |
HPPH: 2-(1-Hexyl-oxyethyl)-2-devinyl pyropheophorbide-alpha | Equine periocular squamous cell carcinoma, rodent colon carcinoma and xenografts of human glioma [70,71] |
1.4. Light Source in PDT
2. Photosensitizer Delivery
2.1. Nanoparticles-Based PSs Delivery in PDT
3. Organic Nanoparticles
3.1. Liposomes
3.2. Polymeric Nanoparticles
3.2.1. Natural Polymeric Nanoparticles
Albumin
Chitosan
Hyaluronic Acid
3.2.2. Synthetic Polymer
PS loading of Polymeric Micelle
Mechanisms of PS Release from Polymers
- (i)
- Enzymatic reaction that results in cleavage or degradation of the polymer at the site of delivery, thereby releasing PSs from the core.
- (ii)
- Swelling of polymeric nanoparticles due to hydration, pH and temperature, followed by release through diffusion.
- (iii)
- Dissociation and de-adsorption of the drug from the polymer through a concentration gradient.
Homopolymers
Block Copolymer
Graft Copolymer
Dendrimers and Hyperbranched Polymer
Hydrogel
4. Inorganic Nanocarriers
4.1. Drug Loading and Release from Inorganic Nanocarriers
4.2. Quantum dots
4.3. Ceramic-Based Nanoparticles
4.4. Metallic Nanoparticles
4.5. Carbon Materials
5. Side Effects of PDT
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Debele, T.A.; Peng, S.; Tsai, H.-C. Drug Carrier for Photodynamic Cancer Therapy. Int. J. Mol. Sci. 2015, 16, 22094-22136. https://doi.org/10.3390/ijms160922094
Debele TA, Peng S, Tsai H-C. Drug Carrier for Photodynamic Cancer Therapy. International Journal of Molecular Sciences. 2015; 16(9):22094-22136. https://doi.org/10.3390/ijms160922094
Chicago/Turabian StyleDebele, Tilahun Ayane, Sydney Peng, and Hsieh-Chih Tsai. 2015. "Drug Carrier for Photodynamic Cancer Therapy" International Journal of Molecular Sciences 16, no. 9: 22094-22136. https://doi.org/10.3390/ijms160922094
APA StyleDebele, T. A., Peng, S., & Tsai, H. -C. (2015). Drug Carrier for Photodynamic Cancer Therapy. International Journal of Molecular Sciences, 16(9), 22094-22136. https://doi.org/10.3390/ijms160922094