Metronidazole-functionalized iron oxide nanoparticles for molecular detection of hypoxic tissues.
Animals
Anthracenes
/ chemistry
Cell Culture Techniques
Cell Hypoxia
Cell Proliferation
/ drug effects
Cell Survival
/ drug effects
Erythrocytes
/ cytology
Ferric Compounds
/ chemistry
Hemolysis
/ drug effects
Human Umbilical Vein Endothelial Cells
Humans
Magnetite Nanoparticles
/ chemistry
Metronidazole
/ chemistry
Mice
Microscopy, Fluorescence
RAW 264.7 Cells
Journal
Nanoscale
ISSN: 2040-3372
Titre abrégé: Nanoscale
Pays: England
ID NLM: 101525249
Informations de publication
Date de publication:
28 Nov 2019
28 Nov 2019
Historique:
pubmed:
21
11
2019
medline:
16
4
2020
entrez:
21
11
2019
Statut:
ppublish
Résumé
Being crucial under several pathological conditions, tumors, and tissue engineering, the MRI tracing of hypoxia within cells and tissues would be improved by the use of nanosystems allowing for direct recognition of low oxygenation and further treatment-oriented development. In the present study, we functionalized dendron-coated iron oxide nanoparticles (dendronized IONPs) with a bioreductive compound, a metronidazole-based ligand, to specifically detect the hypoxic tissues. Spherical IONPs with an average size of 10 nm were obtained and then decorated with the new metronidazole-conjugated dendron. The resulting nanoparticles (metro-NPs) displayed negligible effects on cell viability, proliferation, and metabolism, in both monolayer and 3D cell culture models, and a good colloidal stability in bio-mimicking media, as shown by DLS. Overtime quantitative monitoring of the IONP cell content revealed an enhanced intracellular retention of metro-NPs under anoxic conditions, confirmed by the in vitro MRI of cell pellets where a stronger negative contrast generation was observed in hypoxic primary stem cells and tumor cells after labeling with metro-NPs. Overall, these results suggest desirable properties in terms of interactions with the biological environment and capability of selective accumulation into the hypoxic tissue, and indicate that metro-NPs have considerable potential for the development of new nano-platforms especially in the field of anoxia-related diseases and tissue engineered models.
Substances chimiques
Anthracenes
0
Ferric Compounds
0
Magnetite Nanoparticles
0
dendron
0
Metronidazole
140QMO216E
ferric oxide
1K09F3G675
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM