New MoS 2 /Tegafur-Containing Pharmaceutical Formulations for Selective LED-Based Skin Cancer Photo-Chemotherapy.
Miguel T CamposFilipa A L S SilvaJosé Ramiro FernandesSusana G SantosFernão D MagalhãesMaria J OliveiraArtur M PintoPublished in: Pharmaceutics (2024)
Non-melanoma skin cancer (NMSC) is one of the most common types of cancer worldwide. Despite the low mortality rate, rising incidence and recurrence rates are a burden on healthcare systems. Standard treatments such as chemotherapy, radiotherapy, and surgery are either invasive or toxic to healthy tissues; therefore, new, alternative, selective treatments are needed. In this work, a combined photothermal and chemotherapeutic approach is proposed. MoS 2 was used as photothermal agent. It was prepared by a liquid-phase exfoliation and intercalation method using polyvinylpyrrolidone (PVP), followed by recirculation through a custom-built high-power ultrasonication probe. After 6 h of ultrasonication treatment, the average particle size was 165 ± 170 nm. Near-infrared (NIR) irradiation assays (810 nm, 0.1 W/cm 2 , 30 min, 180 J/cm 2 ) confirmed that MoS 2 nanosheets can efficiently convert NIR light into heat and reach 52 °C. The therapeutic doses of MoS 2 (125 µg/mL) and Tegafur (50 µg/mL) were optimized and both were simultaneously incorporated into a Carbopol hydrogel. The cells were brought into contact with the hydrogel and irradiated with a custom-built NIR LED system. In HFF-1 cells (normal human fibroblasts), the metabolic activity was 78% (above the 70% toxicity limit-ISO 10993-5:2009(E)), while in A-431 skin cancer cells, it was 28%. In addition, the MoS 2 + Tegafur hydrogels led to a 1.9-fold decrease in A-431 cancer cell metabolic activity, 72 h after irradiation, in comparison to MoS 2 hydrogels, indicating a combined effect of photothermal and chemotherapy.
Keyphrases
- quantum dots
- photodynamic therapy
- skin cancer
- drug release
- drug delivery
- reduced graphene oxide
- room temperature
- induced apoptosis
- transition metal
- locally advanced
- visible light
- healthcare
- fluorescence imaging
- wound healing
- hyaluronic acid
- highly efficient
- cancer therapy
- risk factors
- cell cycle arrest
- early stage
- tissue engineering
- endothelial cells
- minimally invasive
- oxidative stress
- radiation therapy
- squamous cell carcinoma
- endoplasmic reticulum stress
- cardiovascular events
- rectal cancer
- radiation induced
- ionic liquid
- papillary thyroid
- light emitting
- cardiovascular disease
- extracellular matrix
- gold nanoparticles
- gene expression
- heat stress
- coronary artery bypass
- cell death
- signaling pathway
- young adults
- cell proliferation
- free survival
- health information
- health insurance