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Iron oxide nanoparticles promote vascular endothelial cells survival from oxidative stress by enhancement of autophagy
Author(s) -
Jimei Duan,
Jiuju Du,
Rongrong Jin,
Wencheng Zhu,
Li Liu,
Li Yang,
Mengye Li,
Qiyong Gong,
Bin Song,
James M. Anderson,
Hua Ai
Publication year - 2019
Publication title -
regenerative biomaterials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.166
H-Index - 25
ISSN - 2056-3426
DOI - 10.1093/rb/rbz024
Subject(s) - autophagy , oxidative stress , umbilical vein , nitric oxide , chemistry , microbiology and biotechnology , reactive oxygen species , endothelial dysfunction , cytotoxicity , cancer research , pharmacology , medicine , apoptosis , biology , biochemistry , in vitro , organic chemistry
Dextran-coated superparamagnetic iron oxide nanoparticles (Dex-SPIONs) are excellent magnetic resonance imaging contrast agents for disease diagnosis and therapy. They can be delivered to target tissues mainly though vascular endothelium cells, which are major targets of oxidative stress. In cardiovascular cells, autophagy serves primarily on a pro-survival approach that protects the cells from oxidative stress even some autophagy inducers have been developed for adjuvant therapy of cardiovascular disorders. Our study demonstrated that the nanoparticles could be taken up by human umbilical vein endothelial cells (HUVECs) without causing obvious cytotoxicity but triggering autophagy. Furthermore, our results revealed that Dex-SPIONs could enhance HUVECs survival and reverse the reduction of nitric oxide secretion under the condition of H 2 O 2 damage. However, these effects could be diminished by the autophagy inhibitor. In particular, we discovered that Dex-SPIONs evoked autophagy in HUVECs by reducing the phosphorylation of PRAS40, an upstream regulator of autophagy initiation. These results suggested that Dex-SPIONs functions as an autophagic-related antioxidant in HUVECs which may be utilized as an adjuvant therapy to cardiovascular disease associated with oxidative stress.

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