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Eccentric Nanozymes with Maximally Exposed Fe3O4 Core for Optimal MR Imaging and Mesoporous Shell That Delivers
Hao Wang1, Haoyang Du1, Wei Gao1
1Department of Pharmaceutics, College of Pharmacy, and Department of Pharmacy at the Second Affiliated Hospital, Harbin Medical University, Harbin, 150081, China.
Abstract:
Combing magnetic resonance imaging (MRI) and cancer therapy modalities within one nanoplatform holds great potential for imaging-guided cancer theranostics. However, simultaneously achieving optimal MRI performance and satisfactory anti-cancer effects is still a challenge. Here, by manipulating the position of a Fe3O4 core that has MRI capability within a porous shell, this work synthesizes a series of core-shell structured Fe3O4@carbon/copper oxide nanoparticles (Fe3O4@C/CuOx NPs) in which the Fe3O4 core has different degrees of exposure. This work demonstrates that in an eccentric structure with maximally exposed Fe3O4 core, the NPs exhibits optimal MRI capability. Additionally, using polymer as scaffold blended with carbon-doped copper oxide, the shell of the NPs can integrate chemotherapy, photothermal therapy (PTT) and cuproptosis to exert synergistic anti-cancer effect in a pH/NIR dual responsive manner. The porous shell allows efficient DOX loading for chemotherapy, the copper oxide component serves as photothermal agents for PTT and triggers for cuproptosis. Last, the Fe3O4 core is also a nanozyme that possesses peroxidase (POD)-like properties, which enhances the efficacy of above-mentioned anti-cancer effects via promoting reactive oxygen species (ROS) generation. This work evaluates the MRI-guided anti-cancer efficacy of the NPs both in vitro and in vivo, and demonstrates NPs' superior performance in imaging-guided cancer theranostics.
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