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Updated: Jan 11, 2026

Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
Cation-π Interaction-Mediated Copper-Based Nanoplatforms for Synergistic Chemodynamic-Chemotherapy with Enhanced
Yinwei Qiu1, Fangxiao Li2, Shuai Zhang1
1Shanghai Key Laboratory of Atomic Control and Application of Inorganic 2D Supermaterials, State Key Laboratory of Materials for Advanced Nuclear Energy, Shanghai Applied Radiation Institute, Shanghai University, Shanghai 200444, China.
Abstract:
Chemodynamic therapy (CDT) is an emerging cancer treatment approach by generating hydroxyl radicals (·OH) that are toxic to tumor cells. However, it is limited by the instability of active metal catalysts and insufficient intracellular H2O2 levels. Here, we utilized and designed a system where cation-π interactions could address the former limitation by enriching, transforming, and stabilizing Cu+ on graphene oxide quantum dot (GOQD) surfaces, thereby promoting efficient Cu+-mediated Fenton-like reactions. To complement the latter, doxorubicin (DOX) was co-delivered: beyond its chemotherapeutic action, DOX elevated intracellular H2O2, supplying additional substrates for CDT. These mechanisms were integrated in a rod-shaped multifunctional nanoplatform(RMSN-NH2-GOQD@DOX-Cu), which also afforded pH-temperature-responsive DOX release and enhanced cellular uptake. In vitro results demonstrated markedly improved anticancer efficacy (71.4%), substantially exceeding the additive effects of CDT (21.9%) and chemotherapy (37.3%) alone. This work highlighted cation-π interaction engineering as a practical route to stabilize active metal species within drug delivery systems and to potentiate CDT efficacy when combined with chemotherapeutic reagents, providing a generalizable strategy for synergistic cancer therapy.
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