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  4. Redox Activity and Nano–Bio Interactions Determine the Skin Injury Potential of Co3O4-Based Metal Oxide Nanoparticles toward Zebrafish
 
Zitierlink DOI
10.26092/elib/3703
Verlagslink DOI
10.1021/acsnano.9b08938

Redox Activity and Nano–Bio Interactions Determine the Skin Injury Potential of Co3O4-Based Metal Oxide Nanoparticles toward Zebrafish

Veröffentlichungsdatum
2020-03-19
Autoren
Peng, Guotao  
He, Yuan  
Wang, Xiaoxiao  
Cheng, Yan  
Zhang, Haiyuan  
Savolainen, Kai  
Mädler, Lutz  
Pokhrel, Suman  
Lin, Sijie  
Zusammenfassung
Redox-active metal oxide nanoparticles show varying oxidizing capacities and injury potentials toward biological systems. Here, two metal oxide libraries including transition-metal-doped Co3O4 and PdO-Co3O4 with strong chemical contacts were design-synthesized and used to investigate their biological injury potential and mechanisms using zebrafish as a model organism. Among different dopants, Cu significantly increased the oxidizing capacity of Co3O4. An increased amount of PdO resulted in higher density of heterojunctions, which also led to higher oxidizing capacity. The oxidizing capacity of these nanoparticles was positively correlated with higher mortality of dechorionated embryos and severe larval skin injury upon exposure. Using transgenic zebrafish Tg(LysC:eGFP), we show in real time that the redox-active nanoparticles induced skin injury and activated the infiltration of immune cells. Such inflammatory response was confirmed by the increased mRNA expression level of Nrf2a, HO-1, IL-1β, and IL-6 genes. Although the exposure to the nanoparticles alone was not lethal, the skin injury did lower the tolerance level against other environmental contaminants. More importantly, after withdrawing from the nanoparticle exposure, larvae with skin injury could recover within 24 h in uncontaminated medium, indicating such injury was transient and recoverable.
Schlagwörter
redox activity

; 

oxidative stress

; 

metal oxide

; 

nano−bio interactions

; 

zebrafish
Verlag
American chemical society
Institution
Universität Bremen  
Fachbereich
Fachbereich 04: Produktionstechnik, Maschinenbau & Verfahrenstechnik (FB 04)  
Zentrale Wissenschaftliche Einrichtungen und Kooperationen  
Institute
Institut für Werkstofftechnik (IWT)  
MAPEX Center for Materials and Processes  
Dokumenttyp
Wissenschaftlicher Artikel
Zeitschrift/Sammelwerk
ACS Nano  
Band
14
Heft
4
Startseite
4166
Endseite
4177
Zweitveröffentlichung
Ja
Dokumentversion
Postprint
Lizenz
Alle Rechte vorbehalten
Sprache
Englisch
Dateien
Lade...
Vorschaubild
Name

Peng_Pokhrel et al_Redox Activity and Nano-Bio Interactions Determine_2020_accepted-version.pdf

Size

2.93 MB

Format

Adobe PDF

Checksum

(MD5):d9cf481f9facaa12754adb3d6fbea016

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