Baochan YangLingzhi CaoKun GeChaofan LvZunling ZhaoTianyu ZhengShutao GaoJinchao ZhangTianyu WangJianzhuang JiangYan Qin
Published in: Small (Weinheim an der Bergstrasse, Germany) (2024)
For cancer metastasis inhibition, the combining of nanozymes with immune checkpoint blockade (ICB) therapy remains the major challenge in controllable reactive oxygen species (ROS) generation for creating effective immunogenicity. Herein, new nanozymes with light-controlled ROS production in terms of quantity and variety are developed by conjugating supramolecular-wrapped Fe single atom on iridium metallene with lattice-strained nanoislands (FeSA-Ir@PF NSs). The Fenton-like catalysis of FeSA-Ir@PF NSs effectively produced •OH radicals in dark, which induced ferroptosis and apoptosis of cancer cells. While under second near-infrared (NIR-II) light irradiation, FeSA-Ir@PF NSs showed ultrahigh photothermal conversion efficiency (𝜂, 75.29%), cooperative robust •OH generation, photocatalytic O 2 and 1 O 2 generation, and caused significant pyroptosis of cancer cells. The controllable ROS generation, sequential cancer cells ferroptosis and pyroptosis, led 99.1% primary tumor inhibition and multi-immunogenic responses in vivo. Most importantly, the inhibition of cancer lung metastasis is completely achieved by FeSA-Ir@PF NSs with immune checkpoint inhibitors, as demonstrated in different mice lung metastasis models, including circulating tumor cells (CTCs) model. This work provided new inspiration for developing nanozymes for cancer treatments and metastasis inhibition.
Keyphrases
- cell death
- reactive oxygen species
- circulating tumor cells
- papillary thyroid
- squamous cell
- dna damage
- oxidative stress
- cell cycle arrest
- drug delivery
- photodynamic therapy
- stem cells
- metabolic syndrome
- diabetic rats
- childhood cancer
- type diabetes
- nitric oxide
- drug release
- cell proliferation
- drug induced
- wastewater treatment
- bone marrow
- fluorescent probe
- highly efficient
- high glucose
- cell therapy
- circulating tumor
- reduced graphene oxide