Cerium oxide nanoparticles protect rodent lungs from hypobaric hypoxia-induced oxidative stress and inflammation

被引:111
作者
Arya, Aditya [1 ]
Sethy, Niroj Kumar [1 ]
Singh, Sushil Kumar [2 ]
Das, Mainak [3 ]
Bhargava, Kalpana [1 ]
机构
[1] Def Res & Dev Org, Peptide & Prote Div, Def Inst Physiol & Allied Sci, Delhi, India
[2] Def Res & Dev Org, Funct Mat Div, Solid State Phys Lab, Delhi, India
[3] Indian Inst Technol, Kanpur 208016, Uttar Pradesh, India
来源
INTERNATIONAL JOURNAL OF NANOMEDICINE | 2013年 / 8卷
关键词
nanoceria; high altitude; nanomedicine; HIGH-ALTITUDE; TUBBY MICE; OXYGEN; NANOCERIA; ANTIOXIDANT; BIOPERSISTENCE; DEGENERATION; MODULATION; PEROXIDES; DAMAGE;
D O I
10.2147/IJN.S53032
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Background: Cerium oxide nanoparticles (nanoceria) are effective at quenching reactive oxygen species (ROS) in cell culture and animal models. Although nanoceria reportedly deposit in lungs, their efficacy in conferring lung protection during oxidative stress remains unexplored. Thus, the study evaluated the protective efficacy of nanoceria in rat lung tissue during hypobaric hypoxia. Methods: A total of 48 animals were randomly divided into four equal groups (control [C], nanoceria treated [T], hypoxia [H], and nanoceria treated plus hypoxia [T+H]). Animals were injected intraperitoneally with either a dose of 0.5 mu g/kg body weight/week of nanoceria (T and T+H groups) or vehicle (C and H groups) for 5 weeks. After the final dose, H and T+H animals were challenged with hypobaric hypoxia, while C and T animals were maintained at normoxia. Lungs were isolated and homogenate was obtained for analysis of ROS, lipid peroxidation, glutathione, protein carbonylation, and 4-hydroxynonenal-adduct formation. Plasma was used for estimating major inflammatory cytokines using enzyme-linked immunosorbent assay. Intact lung tissues were fixed and both transmission electron microscopy and histopathological examinations were carried out separately for detecting internalization of nanoparticles as well as altered lung morphology. Results: Spherical nanoceria of 7-10 nm diameter were synthesized using a microemulsion method, and the lung protective efficacy of the nanoceria evaluated during hypobaric hypoxia. With repeated intraperitoneal injections of low micromole concentration, we successfully localized the nanoceria in rodent lung without any inflammatory response. The lung-deposited nanoceria limited ROS formation, lipid peroxidation, and glutathione oxidation, and prevented oxidative protein modifications like nitration and carbonyl formation during hypobaric hypoxia. We also observed reduced lung inflammation in the nanoceria-injected lungs, supporting the anti-inflammatory properties of nanoceria. Conclusion: Cumulatively, these results suggest nanoceria deposit in lungs, confer protection by quenching noxious free radicals during hypobaric hypoxia, and do not evoke any inflammatory response.
引用
收藏
页码:4507 / 4519
页数:13
相关论文
共 40 条
[11]   The induction of angiogenesis by cerium oxide nanoparticles through the modulation of oxygen in intracellular environments [J].
Das, Soumen ;
Singh, Sanjay ;
Dowding, Janet M. ;
Oommen, Saji ;
Kumar, Amit ;
Sayle, Thi X. T. ;
Saraf, Shashank ;
Patra, Chitta R. ;
Vlahakis, Nicholas E. ;
Sayle, Dean C. ;
Self, William T. ;
Seal, Sudipta .
BIOMATERIALS, 2012, 33 (31) :7746-7755
[12]   High altitude and oxidative stress [J].
Dosek, Agoston ;
Ohno, Hideko ;
Acs, Zoltan ;
Taylor, Albert W. ;
Radak, Zsolt .
RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2007, 158 (2-3) :128-131
[13]   Neuroprotective mechanisms of cerium oxide nanoparticles in a mouse hippocampal brain slice model of ischemia [J].
Estevez, A. Y. ;
Pritchard, S. ;
Harper, K. ;
Aston, J. W. ;
Lynch, A. ;
Lucky, J. J. ;
Ludington, J. S. ;
Chatani, P. ;
Mosenthal, W. P. ;
Leiter, J. C. ;
Andreescu, S. ;
Erlichman, J. S. .
FREE RADICAL BIOLOGY AND MEDICINE, 2011, 51 (06) :1155-1163
[14]   Ventilation, Oxidative Stress, and Nitric Oxide in Hypobaric versus Normobaric Hypoxia [J].
Faiss, Raphael ;
Pialoux, Vincent ;
Sartori, Claudio ;
Faes, Camille ;
Deriaz, Olivier ;
Millet, Gregoire P. .
MEDICINE & SCIENCE IN SPORTS & EXERCISE, 2013, 45 (02) :253-260
[15]   Plasma antioxidants - Health benefits of eating chocolate? [J].
Halliwell, B .
NATURE, 2003, 426 (6968) :787-787
[16]   Free radicals and antioxidants: updating a personal view [J].
Halliwell, Barry .
NUTRITION REVIEWS, 2012, 70 (05) :257-265
[17]   Brain Distribution and Toxicological Evaluation of a Systemically Delivered Engineered Nanoscale Ceria [J].
Hardas, Sarita S. ;
Butterfield, David Allan ;
Sultana, Rukhsana ;
Tseng, Michael T. ;
Dan, Mo ;
Florence, Rebecca L. ;
Unrine, Jason M. ;
Graham, Uschi M. ;
Wu, Peng ;
Grulke, Eric A. ;
Yokel, Robert A. .
TOXICOLOGICAL SCIENCES, 2010, 116 (02) :562-576
[18]   The role of cerium redox state in the SOD mimetic activity of nanoceria [J].
Heckert, Eric G. ;
Karakoti, Ajay S. ;
Seal, Sudipta ;
Self, William T. .
BIOMATERIALS, 2008, 29 (18) :2705-2709
[19]   Anti-inflammatory Properties of Cerium Oxide Nanoparticles [J].
Hirst, Suzanne M. ;
Karakoti, Ajay S. ;
Tyler, Ron D. ;
Sriranganathan, Nammalwar ;
Seal, Sudipta ;
Reilly, Christopher M. .
SMALL, 2009, 5 (24) :2848-2856
[20]   Bio-distribution and in vivo antioxidant effects of cerium oxide nanoparticles in mice [J].
Hirst, Suzanne Marie ;
Karakoti, Ajay ;
Singh, Sanjay ;
Self, William ;
Tyler, Ron ;
Seal, Sudipta ;
Reilly, Christopher M. .
ENVIRONMENTAL TOXICOLOGY, 2013, 28 (02) :107-118