Chitosan-coated cerium oxide nanocubes accelerate cutaneous wound healing by curtailing persistent inflammation

被引:68
作者
Huang, Xue [1 ]
Li, Lin-Dong [2 ]
Lyu, Guang-Ming [2 ]
Shen, Bai-Yu [1 ]
Han, Yan-Fei [1 ]
Shi, Jing-Lin [3 ]
Teng, Jia-Li [3 ]
Feng, Li [3 ]
Si, Shao-Yan [4 ]
Wu, Ji-Hua [5 ]
Liu, Yan-Jun [1 ,3 ]
Sun, Ling-Dong [2 ]
Yan, Chun-Hua [2 ]
机构
[1] Peking Univ, Hosp PLA 306, Dept Endocrinol, Teaching Hosp, Beijing 100101, Peoples R China
[2] Peking Univ, State Key Lab Rare Earth Mat Chem & Applicat, Beijing Natl Lab Mol Sci,Coll Chem & Mol Engn, PKU HKU Joint Lab Rare Earth Mat & Bioinorgan Che, Beijing 100871, Peoples R China
[3] 306 Hosp PLA, Dept Endocrinol, Beijing 100101, Peoples R China
[4] 306 Hosp PLA, Dept Special Med Res, Beijing 100101, Peoples R China
[5] 306 Hosp PLA, Dept Pathol, Beijing 100101, Peoples R China
关键词
OXIDATIVE STRESS; IN-VITRO; NANOPARTICLES; THERAPY; PROTECT; FIBROBLASTS; EXPRESSION; DISEASE; GROWTH; OXYGEN;
D O I
10.1039/c7qi00707h
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Inflammation is the initial phase in the healing of cutaneous wounds; however, persistent inflammation will hamper the healing process by generating excess inflammatory cytokines and reactive oxygen species (ROS). Therefore, preventing persistent inflammation and clearing redundant ROS are important strategies in accelerating wound healing. Owing to their unique redox activity, cerium oxide (CeO2) nanoparticles have shown promising potential as antioxidative and anti-inflammatory agents for the treatment of various diseases resulting from oxidative stress. In the present study, we prepared chitosan-coated CeO2 nanocubes (CCNs) and evaluated their cutaneous wound healing potential when topically applied to open excision wounds on adult Sprague Dawley (SD) rats. CCN application significantly increased the wound healing rates and showed superior wound healing capabilities compared to a clinically applied wound healing agent, recombinant human epidermal growth factor (rhEGF). We attribute this superior wound healing ability to their anti-inflammatory ability by decreasing the expression of the inflammatory cytokine tumor necrosis factor-alpha (TNF-alpha) and increasing the expression of the anti-inflammatory cytokine interleukin-10 (IL-10), as well as to their antioxidative ability by increasing antioxidant enzyme levels. These results suggest that CCNs hold therapeutic potential in treating refractory wounds characterized by persistent inflammation caused by oxidative-stress related diseases such as diabetes.
引用
收藏
页码:386 / 393
页数:8
相关论文
共 39 条
[1]   Insights into the redox properties of ceria-based oxides and their implications in catalysis [J].
Aneggi, E ;
Boaro, M ;
de Leitenburg, C ;
Dolcetti, G ;
Trovarelli, A .
JOURNAL OF ALLOYS AND COMPOUNDS, 2006, 408 :1096-1102
[2]   Chitosan membrane as a wound-healing dressing: Characterization and clinical application [J].
Azad, AK ;
Sermsintham, N ;
Chandrkrachang, S ;
Stevens, WF .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2004, 69B (02) :216-222
[3]   ROS constitute a convergence nexus in the development of IGF1 resistance and impaired wound healing in a rat model of type 2 diabetes [J].
Bitar, Milad S. ;
Al-Mulla, Fahd .
DISEASE MODELS & MECHANISMS, 2012, 5 (03) :375-388
[4]   The pathobiology of diabetic complications - A unifying mechanism [J].
Brownlee, M .
DIABETES, 2005, 54 (06) :1615-1625
[5]   Effects of cerium oxide nanoparticles on the growth of keratinocytes, fibroblasts and vascular endothelial cells in cutaneous wound healing [J].
Chigurupati, Srinivasulu ;
Mughal, Mohamed R. ;
Okun, Eitan ;
Das, Soumen ;
Kumar, Amit ;
McCaffery, Michael ;
Seal, Sudipta ;
Mattson, Mark P. .
BIOMATERIALS, 2013, 34 (09) :2194-2201
[6]   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
[7]  
Dissemond J, 2002, HAUTARZT, V53, P718, DOI 10.1007/s00105-001-0325-5
[8]   Lanthanide Nanoparticles: From Design toward Bioimaging and Therapy [J].
Dong, Hao ;
Du, Shuo-Ren ;
Zheng, Xiao-Yu ;
Lyu, Guang-Ming ;
Sun, Ling-Dong ;
Li, Lin-Dong ;
Zhang, Pei-Zhi ;
Zhang, Chao ;
Yan, Chun-Hua .
CHEMICAL REVIEWS, 2015, 115 (19) :10725-10815
[9]   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
[10]   Antimicrobial and Anti-Inflammatory Activity of Chitosan Alginate Nanoparticles: A Targeted Therapy for Cutaneous Pathogens [J].
Friedman, Adam J. ;
Jenny Phan ;
Schairer, David O. ;
Champer, Jackson ;
Qin, Min ;
Pirouz, Aslan ;
Blecher-Paz, Karin ;
Oren, Ami ;
Liu, Phil T. ;
Modlin, Robert L. ;
Kim, Jenny .
JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2013, 133 (05) :1231-1239