4.8 Article

High-Performance Self-Cascade Pyrite Nanozymes for Apoptosis-Ferroptosis Synergistic Tumor Therapy

期刊

ACS NANO
卷 15, 期 3, 页码 5735-5751

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c01248

关键词

pyrite nanozyme; self-cascade; peroxidase-like activity; glutathione oxidase-like activity; apoptosis-ferroptosis synergistic tumor therapy; tumor catalytic therapy

资金

  1. Key Research Program of Frontier Sciences, CAS [QYZDY-SSWSMC013]
  2. National Natural Science Foundation of China [31900981, 21704088]
  3. Strategic Priority Research Program of CAS [XDB29040101]
  4. CAS Interdisciplinary Innovation Team [JCTD-2020-08]
  5. Chinese Academy of Sciences [YJKYYQ20180048]
  6. Youth Innovation Promotion Association of Chinese Academy of Sciences [2019093]
  7. Jiangsu Natural Science Foundation of China [BK20170508]
  8. Sanming Project of Medicine in Shenzhen [SZSM201612031]

向作者/读者索取更多资源

The pyrite peroxidase nanozyme demonstrates ultra-high affinity for H2O2 and possesses intrinsic glutathione oxidase-like activity, resulting in abundant production of (OH)-O-center dot and depletion of reduced glutathione, inducing apoptosis and ferroptosis of tumor cells. It shows potential for effective therapeutic application in tumor catalytic therapy.
As next-generation artificial enzymes, nanozymes have shown great promise for tumor catalytic therapy. In particular, their peroxidase-like activity has been employed to catalyze hydrogen peroxide (H2O2) to produce highly toxic hydroxyl radicals ((OH)-O-center dot) to kill tumor cells. However, limited by the low affinity between nanozymes with H2O2 and the low level of H2O2 in the tumor microenvironment, peroxidase nanozymes usually produced insufficient (OH)-O-center dot to kill tumor cells for therapeutic purposes. Herein, we present a pyrite peroxidase nanozyme with ultrahigh H2O2 affinity, resulting in a 4144- and 3086-fold increase of catalytic activity compared with that of classical Fe3O4 nanozyme and natural horseradish peroxidase, respectively. We found that the pyrite nanozyme also possesses intrinsic glutathione oxidase-like activity, which catalyzes the oxidation of reduced glutathione accompanied by H2O2 generation. Thus, the dual-activity pyrite nanozyme constitutes a self-cascade platform to generate abundant (OH)-O-center dot and deplete reduced glutathione, which induces apoptosis as well as ferroptosis of tumor cells. Consequently, it killed apoptosis-resistant tumor cells harboring KRAS mutation by inducing ferroptosis. The pyrite nanozyme also exhibited favorable tumor-specific cytotoxicity and biodegradability to ensure its biosafety. These results indicate that the high-performance pyrite nanozyme is an effective therapeutic reagent and may aid the development of nanozyme-based tumor catalytic therapy.

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