Third-Generation Anticancer Photodynamic Therapy Systems Based on Star-like Anionic Polyacrylamide Polymer, Gold Nanoparticles, and Temoporfin Photosensitizer.
Gold
/ chemistry
Photochemotherapy
/ methods
Metal Nanoparticles
/ chemistry
Photosensitizing Agents
/ chemistry
Humans
Acrylic Resins
/ chemistry
Cell Line, Tumor
Singlet Oxygen
/ chemistry
Reactive Oxygen Species
/ metabolism
Porphyrins
/ chemistry
Cell Survival
/ drug effects
Polymers
/ chemistry
Antineoplastic Agents
/ pharmacology
Au nanoparticles
nanosystem
photodynamic therapy
polymer nanocarrier
temoporfin
Journal
Molecules (Basel, Switzerland)
ISSN: 1420-3049
Titre abrégé: Molecules
Pays: Switzerland
ID NLM: 100964009
Informations de publication
Date de publication:
09 May 2024
09 May 2024
Historique:
received:
07
03
2024
revised:
01
05
2024
accepted:
06
05
2024
medline:
25
5
2024
pubmed:
25
5
2024
entrez:
25
5
2024
Statut:
epublish
Résumé
Photodynamic therapy (PDT) is a non-invasive anticancer treatment that uses special photosensitizer molecules (PS) to generate singlet oxygen and other reactive oxygen species (ROS) in a tissue under excitation with red or infrared light. Though the method has been known for decades, it has become more popular recently with the development of new efficient organic dyes and LED light sources. Here we introduce a ternary nanocomposite: water-soluble star-like polymer/gold nanoparticles (AuNP)/temoporfin PS, which can be considered as a third-generation PDT system. AuNPs were synthesized in situ inside the polymer molecules, and the latter were then loaded with PS molecules in an aqueous solution. The applied method of synthesis allows precise control of the size and architecture of polymer nanoparticles as well as the concentration of the components. Dynamic light scattering confirmed the formation of isolated particles (120 nm diameter) with AuNPs and PS molecules incorporated inside the polymer shell. Absorption and photoluminescence spectroscopies revealed optimal concentrations of the components that can simultaneously reduce the side effects of dark toxicity and enhance singlet oxygen generation to increase cancer cell mortality. Here, we report on the optical properties of the system and detailed mechanisms of the observed enhancement of the phototherapeutic effect. Combinations of organic dyes with gold nanoparticles allow significant enhancement of the effect of ROS generation due to surface plasmonic resonance in the latter, while the application of a biocompatible star-like polymer vehicle with a dextran core and anionic polyacrylamide arms allows better local integration of the components and targeted delivery of the PS molecules to cancer cells. In this study, we demonstrate, as proof of concept, a successful application of the developed PDT system for in vitro treatment of triple-negative breast cancer cells under irradiation with a low-power LED lamp (660 nm). We consider the developed nanocomposite to be a promising PDT system for application to other types of cancer.
Identifiants
pubmed: 38792086
pii: molecules29102224
doi: 10.3390/molecules29102224
pii:
doi:
Substances chimiques
Gold
7440-57-5
Photosensitizing Agents
0
polyacrylamide
9003-05-8
Acrylic Resins
0
Singlet Oxygen
17778-80-2
Reactive Oxygen Species
0
Porphyrins
0
Polymers
0
Antineoplastic Agents
0
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Subventions
Organisme : National Research Foundation of Ukraine
ID : 2020.02/0022
Organisme : Ministry of the Education and Science of Ukraine
ID : 0122U00181