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Synthesis of Immunotargeted Magneto-plasmonic Nanoclusters
Published on: August 22, 2014
A coordination-assembled ferric nanoenzyme enables spatiotemporal radical storm for amplifying chemodynamic
Ting Li1, Xuehua Lin1, Zhenduo Zhao1
1Biomedical Basic Research Center (BBRC) of Jiangsu, Department of Pharmacy, The First Affiliated Hospital, and College of Pharmaceutical Sciences, Suzhou Medical College, Soochow University, Suzhou 215123, China.
Abstract:
Artificial enzymes show great promise in cancer therapy, yet inadequate in vivo catalytic selectivity and robustness restrict their therapeutic potencies. Here, we report a coordination-driven nanoassembly of ferric-indocyanine green complex in albumin nanocages as an activatable antitumor nanoenzyme for tumor-selective chemodynamic immunotherapy against aggressive cancers. The nanoenzyme undergoes the reduction of ferric ions into ferrous ions in lysosomes in response to pH and glutathione stimuli, followed by photooxidation-mediated lysosomal escape of ferrous ions into cytosol. The abundant ferrous ions catalyze cytosolic H2O2 to yield highly cytotoxic hydroxyl radicals (·OH) in cytosol via Fenton reaction, which is further amplified to elevate the yield efficiency of ·OH by increasing the Fenton reaction rate under the photoirradiated tumor hyperthermia. Meanwhile, the frequently overexpressed metabolic NAD(P)H:quinone oxidoreductase 1 (NQO1) in tumor cells catalyzes its substrate (e.g. molecularly targeted compound β-lapachone) to continuously produce excessive hydrogen peroxide (H2O2) for yielding a reactive oxygen species (ROS) storm under abundant ferrous ions. The photoamplified and metabolism-dependent ROS storm effectively disrupts the redox homeostasis, thus inhibiting aggressive triple-negative breast cancers. The ROS surge further induces immunogenic cell death and promotes dendritic cell maturation, thus synergizing with immune checkpoint inhibitors to elicit both robust innate and adaptive immunities against primary, distant, and rechallenged tumors. This study provides insights into rational design of robust and activatable nanoenzymes for precise cancer therapy.

