Silencing of PTGS2 exerts promoting effects on angiogenesis endothelial progenitor cells in mice with ischemic stroke via repression of the NF-κB signaling pathway

被引:55
作者
Zhou, Zheyi [1 ,2 ]
Lu, Changjun [2 ]
Meng, Shuhui [1 ]
Dun, Linglu [2 ]
Yin, Nannan [3 ]
An, Hongwei [2 ]
Xu, Hong [2 ]
Liu, Guocheng [2 ]
Cai, Yefeng [1 ,4 ]
机构
[1] Guangzhou Univ Chinese Med, Dept Neurol, Clin Med Coll 2, Guangzhou, Guangdong, Peoples R China
[2] Liuzhou Tradit Chinese Med Hosp, Dept Neurol, Liuzhou, Peoples R China
[3] Guangxi Univ Chinese Med, Nanning, Peoples R China
[4] Guangdong Prov Hosp Chinese Med, Dept Neurol, 111 Dade Rd, Guangzhou 510120, Guangdong, Peoples R China
基金
中国国家自然科学基金;
关键词
angiogenesis; endothelial progenitor cells; ischemic stroke; migration; NF-kappa B signaling pathway; proliferation; PTGS2; CYCLOOXYGENASE-2; EXPRESSION; ACTIVATION; POLYMORPHISMS;
D O I
10.1002/jcp.28914
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The objective of the current study is to investigate the effect of PTGS2 on proliferation, migration, angiogenesis and apoptosis of endothelial progenitor cells (EPCs) in mice with ischemic stroke through the NF-kappa B signaling pathway. Middle cerebral artery occlusion (MCAO) model was established in mice. EPCs were identified, in which ectopic expression and depletion experiments were conducted. The mRNA and protein expression of related factors in tissues and cells were measured. Besides, proliferation, migration, angiogenesis, and apoptosis, as well as cell cycle distribution, of cells were determined. MCAO mice showed overexpression of interleukin-6 (IL-6), IL-17, and IL-23, and increased positive protein expression of PTGS2, as well as expression of PTGS2, nuclear factor-kappa B (NF-kappa B), tumor suppressor region 1 (TSP-1) and Bcl-2-associated X protein (Bax), but underexpression of vascular endothelial growth factor (VEGF), S-phase kinase associated protein 2 (Skp2), and B-cell lymphoma 2 (Bcl-2). Moreover, ectopic expression of tumor necrosis factor-alpha significantly elevated the expression of PTGS2, NF-kappa B, TSP-1, and Bax, as well as cell apoptosis and cell cycle arrest, but decreased the expression of VEGF, Skp2, and Bcl-2, as well as proliferation, migration and angiogenesis of EPCs, and the PTGS2-siRNA group showed an opposite trend. Taken together, we conclude that the specific knockdown of PTGS2 expression could repress the NF-kappa B signaling pathway, thereby inhibits apoptosis and promotes proliferation, migration and angiogenesis of EPCs, providing protective effect on mice with ischemic stroke.
引用
收藏
页码:23448 / 23460
页数:13
相关论文
共 34 条
[1]   Cyclooxygenase-2 selective nonsteroidal anti-inflammatory drugs and the risk of ischemic stroke - A nested case-control study [J].
Andersohn, Frank ;
Schade, Rene ;
Suissa, Samy ;
Garbe, Edeltraut .
STROKE, 2006, 37 (07) :1725-1730
[2]   The role of angiogenesis in damage and recovery from ischemic stroke [J].
Arenillas J.F. ;
Sobrino T. ;
Castillo J. ;
Dávalos A. .
Current Treatment Options in Cardiovascular Medicine, 2007, 9 (3) :205-212
[3]   Synergistic Effects of Transplanted Endothelial Progenitor Cells and RWJ 67657 in Diabetic Ischemic Stroke Models [J].
Bai, Ying-Ying ;
Wang, Lishan ;
Chang, Di ;
Zhao, Zhen ;
Lu, Chun-Qiang ;
Wang, Guozheng ;
Ju, Shenghong .
STROKE, 2015, 46 (07) :1938-1946
[4]   Inhibitors of the anti-apoptotic Bcl-2 proteins: a patent review [J].
Bajwa, Naval ;
Liao, Chenzhong ;
Nikolovska-Coleska, Zaneta .
EXPERT OPINION ON THERAPEUTIC PATENTS, 2012, 22 (01) :37-55
[5]   How to Organize a Fellowship Program: Lessons Learned and How to Include Accreditation Council for Graduate Medical Education Competencies in the Curriculum [J].
Collichio, Frances A. ;
Kosty, Michael P. ;
Moynihan, Timothy J. ;
Davis, Thomas H. ;
Stewart, James A. .
JOURNAL OF CLINICAL ONCOLOGY, 2010, 28 (22) :3659-3667
[6]   Randomized Assessment of Rapid Endovascular Treatment of Ischemic Stroke [J].
Goyal, M. ;
Demchuk, A. M. ;
Menon, B. K. ;
Eesa, M. ;
Rempel, J. L. ;
Thornton, J. ;
Roy, D. ;
Jovin, T. G. ;
Willinsky, R. A. ;
Sapkota, B. L. ;
Dowlatshahi, D. ;
Frei, D. F. ;
Kamal, N. R. ;
Montanera, W. J. ;
Poppe, A. Y. ;
Ryckborst, K. J. ;
Silver, F. L. ;
Shuaib, A. ;
Tampieri, D. ;
Williams, D. ;
Bang, O. Y. ;
Baxter, B. W. ;
Burns, P. A. ;
Choe, H. ;
Heo, J. -H. ;
Holmstedt, C. A. ;
Jankowitz, B. ;
Kelly, M. ;
Linares, G. ;
Mandzia, J. L. ;
Shankar, J. ;
Sohn, S. -I. ;
Swartz, R. H. ;
Barber, P. A. ;
Coutts, S. B. ;
Smith, E. E. ;
Morrish, W. F. ;
Weill, A. ;
Subramaniam, S. ;
Mitha, A. P. ;
Wong, J. H. ;
Lowerison, M. W. ;
Sajobi, T. T. ;
Hill, M. D. .
NEW ENGLAND JOURNAL OF MEDICINE, 2015, 372 (11) :1019-1030
[7]   Stem Cell-Based Therapies for Ischemic Stroke [J].
Hao, Lei ;
Zou, Zhongmin ;
Tian, Hong ;
Zhang, Yubo ;
Zhou, Huchuan ;
Liu, Lei .
BIOMED RESEARCH INTERNATIONAL, 2014, 2014
[8]   Genetic Overlap Between Diagnostic Subtypes of Ischemic Stroke [J].
Holliday, Elizabeth G. ;
Traylor, Matthew ;
Malik, Rainer ;
Bevan, Steve ;
Falcone, Guido ;
Hopewell, Jemma C. ;
Cheng, Yu-Ching ;
Cotlarciuc, Ioana ;
Bis, Joshua C. ;
Boerwinkle, Eric ;
Boncoraglio, Giorgio B. ;
Clarke, Robert ;
Cole, John W. ;
Fornage, Myriam ;
Furie, Karen L. ;
Ikram, M. Arfan ;
Jannes, Jim ;
Kittner, Steven J. ;
Lincz, Lisa F. ;
Maguire, Jane M. ;
Meschia, James F. ;
Mosley, Thomas H. ;
Nalls, Mike A. ;
Oldmeadow, Christopher ;
Parati, Eugenio A. ;
Psaty, Bruce M. ;
Rothwell, Peter M. ;
Seshadri, Sudha ;
Scott, Rodney J. ;
Sharma, Pankaj ;
Sudlow, Cathie ;
Wiggins, Kerri L. ;
Worrall, Bradford B. ;
Rosand, Jonathan ;
Mitchell, Braxton D. ;
Dichgans, Martin ;
Markus, Hugh S. ;
Levi, Christopher ;
Attia, John ;
Wray, Naomi R. .
STROKE, 2015, 46 (03) :615-+
[9]  
Jiang SY, 2012, MOL VIS, V18, P2096
[10]   Which NADPH Oxidase Isoform Is Relevant for Ischemic Stroke? The Case for Nox 2 [J].
Kahles, Timo ;
Brandes, Ralf P. .
ANTIOXIDANTS & REDOX SIGNALING, 2013, 18 (12) :1400-1417