4.8 Article

Pushpin-like nanozyme for plasmon-enhanced tumor targeted therapy

Journal

ACTA BIOMATERIALIA
Volume 158, Issue -, Pages 673-685

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2022.12.069

Keywords

Nanoceria nanozyme; Pushpin-like; Plasmon-enhanced catalysis; Cancer therapy; Quantitative proteomics

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A unique pushpin-like Au/CeO2 hybrid nanozyme with high catalytic activity was designed by combining site-selective growth and steric restriction strategies. The nanozyme exhibited superior antitumor effects both in vitro and in vivo due to its high catalytic activity and targeting effects. The reactive oxygen species (ROS) generated by the nanozyme caused damage in tumor cells and evoked a response to oxidative stress and innate immunity in vivo.
Relatively low catalytic activity and poor targeting limit the applications of nanoceria (CeO2) nanozymes in the treatment of tumors. Here, we designed a unique pushpin-like Au/CeO2 hybrid nanozyme with high catalytic activity by combining site-selective growth and steric restriction strategies. The enhanced enzyme activity was attributed to plasmon-induced hot electrons. Furthermore, the pushpin-like struc-ture facilitated targeting molecule modification. The nanozyme exhibited superior antitumor effects both in vitro and in vivo due to its high catalytic activity and targeting effects. Importantly, its potential mech-anism of anti-tumor therapy was studied by quantitative proteomics. The reactive oxygen species (ROS) generated by folic acid-PEG thiol-Au/CeO2 (FA-Au/CeO2) caused mitochondrial and proteasomal damage in tumor cells and further evoked a response to oxidative stress and innate immunity in vivo. This study provided a spatiotemporal approach to enhance the antitumor activity of nanozymes by structural design. The designed pushpin-like Au/CeO2 could be utilized as a multifunctional nanoplatform for in vitro and in vivo plasmon-enhanced cancer therapy with active targeting effects. Moreover, this study systemati-cally explored the anti-tumor mechanism of the nanozyme in both cell and mouse models, promoting its translation to the clinic.Statement of significance A strategy combining the principles of site-selective growth and steric restriction was developed to pre-pare a unique pushpin-like Au/CeO2 hybrid nanozyme with high catalytic activity and low steric hin-drance. The hybrid nanozyme showed superior antitumor activity at both the cellular and tissue levels. Furthermore, the antitumor mechanism was investigated in terms of the differential proteins and their pathways using quantitative proteomics, thus promoting the translation of nanozymes to the clinic.(c) 2023 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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