Tumor-specific activated photodynamic therapy with an oxidation-regulated strategy for enhancing anti-tumor efficacy
Тумор-специфичная активируемая фотодинамическая терапия с использованием регулируемой окислительно-восстановительной стратегии для повышения противоопухолевой эффективности
2018-01-01
SCID: 54.1/kn5mg8hg
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4T1 breast cancer modelChlorin e6 nanomicellesGambogic acid-grafted hyaluronic acidReactive oxygen speciesTumor-specific photodynamic therapy
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Abstract (AI)
Photodynamic therapy relies on photosensitizers to generate cytotoxic reactive oxygen species (ROS) resulting in the apoptois of tumor cells. However, there is an antioxidant system that impedes the elevation of oxidation levels in tumor cells. Thus, photodynamic therapy may exhibit insufficient curative effects due to ungenerous reactive oxygen species levels. Herein, we describe tumor-specific activated photodynamic therapy using an oxidation-regulating strategy. Methods: We first synthesised a reactive oxygen species-sensitive amphipathic prodrug of gambogic acid-grafted hyaluronic acid (HA-GA). The hydrophobic photosensitizer chlorin e6 (Ce6) was then loaded into HA-GA by hydrophobic interactions between GA and Ce6, forming amphipathic nanomicelles (HA-GA@Ce6). The ROS-responsive behavior, cytotoxicity, cell uptake, tumor cell killing, in vivo biodistribution and in vivo anti-tumor efficacy of HA-GA@Ce6 were investigated. The in vitro and in vivo experiments were performed on 4T1 murine breast cancer cells and 4T1 tumor model.
Key Findings
1
A ROS-sensitive amphiphilic prodrug, gambogic acid-grafted hyaluronic acid (HA-GA), was synthesized for tumor-targeted activation.
2
A tumor-specific oxidation-regulating photodynamic therapy strategy was developed to overcome antioxidant-mediated suppression of reactive oxygen species.
3
HA-GA@Ce6 was evaluated for ROS responsiveness, cytotoxicity, cellular uptake, tumor-cell killing, biodistribution, and antitumor efficacy in 4T1 breast cancer models.
4
Hydrophobic interactions between gambogic acid and chlorin e6 enabled formation of HA-GA@Ce6 amphiphilic nanomicelles.
5
The study investigated whether oxidation regulation by HA-GA@Ce6 enhances photodynamic treatment efficacy both in vitro and in vivo.
Research Object
HA-GA@Ce6 amphipathic nanomicelles in 4T1 murine breast cancer cells and tumors
Research Subject
Tumor-specific ROS-responsive activation, cytotoxicity, cellular uptake, tumor-cell killing, biodistribution, and anti-tumor efficacy of HA-GA@Ce6
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2018-01-01
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