MicroRNA-30b protects myocardial cell function in patients with acute myocardial ischemia by targeting plasminogen activator inhibitor-1

被引:12
作者
Li, Bin [1 ]
Hu, Jie [1 ]
Chen, Xingpeng [1 ]
机构
[1] Zhengzhou Univ, Luoyang Cent Hosp, Dept Cardiac Surg, 288 Zhongzhou Rd, Luoyang 471009, Henan, Peoples R China
关键词
acute myocardial ischemia; plasminogen activator inhibitor-1; microRNA-30b; ARTERY ENDOTHELIAL-CELLS; HEART-DISEASE; FIBRINOLYTIC SYSTEM; REPERFUSION INJURY; RISK-FACTOR; CORONARY; APOPTOSIS; EXPRESSION; MIR-30B; COAGULATION;
D O I
10.3892/etm.2018.6039
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
The aim of the present study was to determine the expression of plasminogen activator inhibitor-1 (PAI-1) and microRNA (miR)-30b in the blood of patients with acute myocardial ischemia (AMI) and in the blood and myocardial tissue of mice with AMI. In addition, the present study aimed to identify the mechanism of action of miR-30b in AMI. A total of 36 patients with AMI were included in the present study and 28 healthy subjects were included as a control. Peripheral blood was collected from all subjects. For animal experiments, mice in the AMI group received an intraperitoneal injection of pituitrin (20 U/kg), whereas mice in the negative control group received an intraperitoneal injection of the same volume of saline. Blood and myocardial tissue was collected from all mice for analysis. Reverse transcription-quantitative polymerase chain reaction was performed to determine the expression of PAI-1 mRNA and miR-30b in the serum and myocardial tissue. An enzyme-linked immunosorbent assay was performed to measure the expression of PAI-1 protein in the serum of humans and mice, whereas western blotting was performed to determine the expression of PAI-1 protein in mouse myocardial tissue. Catalase, glutathione peroxidase and superoxide dismutase activity was measured using an automatic biochemical analyzer. A dual luciferase assay was performed to identify the interactions between PAI-1 mRNA and miR-30b. The results indicated that patients with AMI have higher PAI-1 levels and lower miR-30b expression in the peripheral blood compared with healthy subjects. AMI damaged the myocardium tissue of mice and reduced catalase, glutathione peroxidase and superoxide dismutase activity. Mice that have undergone AMI exhibit increased PAI-1 levels but decreased miR-30b expression in the peripheral blood and myocardial tissues. It was also demonstrated that miR-30b is able to bind to the 3'-untranslated region of PAI-1 mRNA to regulate its expression. The present study demonstrates that patients with AMI exhibit decreased miR-30b expression and elevated PAI-1 expression in the peripheral blood. miR-30b may therefore inhibit the damage to myocardial cells that occurs following AMI and protect myocardial cell function by targeting PAI-1 expression.
引用
收藏
页码:5125 / 5132
页数:8
相关论文
共 52 条
[1]   Assessment of myocardial blood flow and coronary flow reserve with positron emission tomography in ischemic heart disease: current state and future directions [J].
Al Badarin, Firas ;
Aljizeeri, Ahmed ;
Almasoudi, Fatimah ;
Al-Mallah, Mouaz H. .
HEART FAILURE REVIEWS, 2017, 22 (04) :441-453
[2]   Early changes in circulating miRNA 133a are indicative of cardiac remodelling after 3 months in patients presenting with acute ST elevation myocardial infarction [J].
Bardooli, Fawaz ;
McAlindon, Elisa ;
Littlejohns, Ben ;
Suleiman, M. Saada ;
Bucciarelli-Ducci, Chiara ;
Baumbach, Andreas .
JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2016, 68 (18) :B75-B76
[3]   Ischemia-reperfusion injury during experimental heart transplantation.: Evaluation of trimetazidine's cytoprotective effect [J].
Castedo, E ;
Segovia, J ;
Escudero, C ;
Olmedilla, B ;
Granado, F ;
Blas, C ;
Guardiola, JM ;
Millán, I ;
Pulpón, LA ;
Ugarte, J .
REVISTA ESPANOLA DE CARDIOLOGIA, 2005, 58 (08) :941-950
[4]   Dysregulation of endothelial colony-forming cell function by a negative feedback loop of circulating miR-146a and-146b in cardiovascular disease patients [J].
Chang, Ting-Yu ;
Tsai, Wei-Chi ;
Huang, Tse-Shun ;
Su, Shu-Han ;
Chang, Chih-Young ;
Ma, Hsiu-Yen ;
Wu, Chun-Hsien ;
Yang, Chih-Yung ;
Lin, Chi-Hung ;
Huang, Po-Hsun ;
Cheng, Cheng-Chung ;
Cheng, Shu-Meng ;
Wang, Hsei-Wei .
PLOS ONE, 2017, 12 (07)
[5]   Plasminogen activator inhibitor links obesity and thrombotic cerebrovascular diseases: The roles of PAI-1 and obesity on stroke [J].
Chen, Rui ;
Yan, Jinchuan ;
Liu, Peijing ;
Wang, Zhongqun ;
Wang, Cuiping .
METABOLIC BRAIN DISEASE, 2017, 32 (03) :667-673
[6]   Impact of the cardiovascular system-associated adipose tissue on atherosclerotic pathology [J].
Chistiakov, Dimitry A. ;
Grechko, Andrey V. ;
Myasoedova, Veronika A. ;
Melnichenko, Alexandra A. ;
Orekhov, Alexander N. .
ATHEROSCLEROSIS, 2017, 263 :361-368
[7]   The 3Rs in research: a contemporary approach to replacement, reduction and refinement [J].
Clark, Judy MacArthur .
BRITISH JOURNAL OF NUTRITION, 2018, 120 :S1-S7
[8]   Effects of astaxanthin on blood coagulation, fibrinolysis and platelet aggregation in hyperlipidemic rats [J].
Deng, Zu-Yue ;
Shan, Wei-Guang ;
Wang, Shen-Feng ;
Hu, Meng-Mei ;
Chen, Yan .
PHARMACEUTICAL BIOLOGY, 2017, 55 (01) :663-672
[9]   Inhibition of Thrombin-Activatable Fibrinolysis Inhibitor and Plasminogen Activator Inhibitor-1 Reduces Ischemic Brain Damage in Mice [J].
Denorme, Frederik ;
Wyseure, Tine ;
Peeters, Miet ;
Vandeputte, Nele ;
Gils, Ann ;
Deckmyn, Hans ;
Vanhoorelbeke, Karen ;
Declerck, Paul J. ;
De Meyer, Simon F. .
STROKE, 2016, 47 (09) :2419-2422
[10]  
Eitzman DT, 2000, BLOOD, V96, P4212