Sophisticated plasmon-enhanced photo-nanozyme for anti-angiogenic and tumor-microenvironment-responsive combinatorial photodynamic and photothermal cancer therapy

Yu, Subin, Jang, Dohyub, Maji, Swarup Kumar , Chung, Kyungwha, Lee, June Sang, Marques Mota, Filipe, Wang, Jianfang, Kim, Sehoon and Kim, Dong Ha (2021) Sophisticated plasmon-enhanced photo-nanozyme for anti-angiogenic and tumor-microenvironment-responsive combinatorial photodynamic and photothermal cancer therapy. Journal of Industrial and Engineering Chemistry, 104 . pp. 106-116. ISSN 1226-086X

Full content URL: https://doi.org/10.1016/j.jiec.2021.08.011

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Sophisticated plasmon-enhanced photo-nanozyme for anti-angiogenic and tumor-microenvironment-responsive combinatorial photodynamic and photothermal cancer therapy
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Abstract

In the exploitation of nanozymes possessing intrinsic enzyme-like activities for cancer therapy, minor focus has been devoted to plasmonic nanostructures with localized surface plasmon resonance (LSPR)-driven properties. Here, we report the application of unique peroxidase-mimicking plasmonic photo-nanozymes coupling tumor-microenvironment-responsive reactive oxygen species generation with photothermal effect for effective combinatorial therapy. The well-defined anisotropic photo-nanozyme is synthesized by selectively depositing Pd nanoparticles on the tips of gold nanobypyramids. Intrinsic peroxidase-like properties with 1.5-fold-activity enhancement under photoexcitation are ascribed to a Pd-induced hot electrons/holes separation with efficient H2O2 decomposition. The LSPR-induced photocatalytic/photothermal combinatorial effects are remarkably enhanced upon H2O2 addition, critically suppressing the cell survival rate under near-infrared light. An effective decomposition of cell-signaling H2O2 additionally reveals prominent expression hindrance of vascular endothelial growth factor and hypoxia-inducible factor 1α. Our seminal findings uncover an interrelation between LSPR-induced phenomena and biomimetic fingerprints, valuable to overcome the shortcomings of conventional photodynamic therapy.

Keywords:nanozymes, peroxidase-like activity, plasmonics, photodynamic cancer therapy, multimodal therapy
Subjects:F Physical Sciences > F110 Applied Chemistry
C Biological Sciences > C741 Medical Biochemistry
Divisions:College of Science > School of Chemistry
ID Code:53637
Deposited On:21 Mar 2023 11:52

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