Issue 13, 2023

The role of crystallinity of palladium nanocrystals in ROS generation and cytotoxicity induction

Abstract

Palladium (Pd) nanocrystals with different crystalline forms exhibit distinct enzyme-like activities in generating reactive oxygen species (ROS). How such crystallinity-dependent catalytic activity regulates potential cytotoxicity remains to be elucidated. In the present work, Pd nanocrystals with four different crystalline forms were synthesized, and the underlying mechanisms involved in ROS-mediated cytotoxicity were systematically revealed. Pd nanocrystals with the {100} (nanocubes) and {111} (nanooctahedrons and nanotetrahedrons) facets triggered cytotoxicity by generating singlet oxygen (1O2) and hydroxyl radicals (OH˙), respectively. Meanwhile, Pd nanoconcave-tetrahedrons, which had both the {110} and {111} facets, induced ROS-mediated cytotoxicity via activating the superoxide (O2˙) pathway. Consumption of protons and generation of hydroxide during intracellular ROS conversion resulted in pH alkalization, eventually leading to cell death. Our findings emphasize the importance of facet-dependent ROS generation promoted by Pd nanocrystals. Furthermore, alkalization is identified as a new biomarker for analyzing ROS-mediated cytotoxicity.

Graphical abstract: The role of crystallinity of palladium nanocrystals in ROS generation and cytotoxicity induction

Supplementary files

Article information

Article type
Paper
Submitted
21 Dec 2022
Accepted
24 Feb 2023
First published
24 Feb 2023

Nanoscale, 2023,15, 6295-6305

The role of crystallinity of palladium nanocrystals in ROS generation and cytotoxicity induction

Y. Wu, R. Liu, J. Liu, J. Jia, H. Zhou and B. Yan, Nanoscale, 2023, 15, 6295 DOI: 10.1039/D2NR07148G

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