Thermosensitive hydrogel as an injectable aggregation-induced emission photosensitizer delivery scaffold for lung cancer therapeutics with long-acting photodynamic therapy
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引用次数: 0
Abstract
Photodynamic therapy (PDT) has been increasingly utilized in the treatment of lung cancer due to its convenience and minimal invasiveness. However, the low therapeutic effect and bioavailability of photosensitizers pose significant challenges. Direct in-situ injection of photosensitizers often results in rapid loss from the tumor site and short retention times, necessitating multiple administrations during the treatment process, which can diminish the overall therapeutic efficiency for solid tumors. To address these limitations and enhance clinical outcomes, we developed an in-situ injectable thermosensitive hydrogel (P-TTPy) loaded with aggregation-induced emission (AIE) photosensitizer named TTPy for long-acting photodynamic therapy of lung cancer. In vitro experiments demonstrated the selective cytotoxicity of reactive oxygen species (ROS) generated by P-TTPy under white light excitation against lung cancer cells. The in vivo experiment involving subcutaneous lung cancer tumors in nude mice demonstrated that the in situ injection of thermosensitive hydrogel significantly extended the release duration of TTPy, resulting in superior growth inhibition of lung cancer tissue compared to the administration of TTPy alone. In summary, this strategy offered a new approach for enhancing photodynamic therapy for lung cancer.
期刊介绍:
Dyes and Pigments covers the scientific and technical aspects of the chemistry and physics of dyes, pigments and their intermediates. Emphasis is placed on the properties of the colouring matters themselves rather than on their applications or the system in which they may be applied.
Thus the journal accepts research and review papers on the synthesis of dyes, pigments and intermediates, their physical or chemical properties, e.g. spectroscopic, surface, solution or solid state characteristics, the physical aspects of their preparation, e.g. precipitation, nucleation and growth, crystal formation, liquid crystalline characteristics, their photochemical, ecological or biological properties and the relationship between colour and chemical constitution. However, papers are considered which deal with the more fundamental aspects of colourant application and of the interactions of colourants with substrates or media.
The journal will interest a wide variety of workers in a range of disciplines whose work involves dyes, pigments and their intermediates, and provides a platform for investigators with common interests but diverse fields of activity such as cosmetics, reprographics, dye and pigment synthesis, medical research, polymers, etc.