Exercise Training-Induced Changes in MicroRNAs: Beneficial Regulatory Effects in Hypertension, Type 2 Diabetes, and Obesity

被引:92
作者
Improta Caria, Alex Cleber [1 ,2 ]
Vasques Nonaka, Carolina Kymie [2 ,3 ]
Pereira, Ciro Silveira [2 ]
Pereira Soares, Milena Botelho [2 ,3 ,4 ]
Macambira, Simone Garcia [1 ,2 ,4 ,5 ]
de Freitas Souza, Bruno Solano [2 ,3 ,4 ]
机构
[1] Univ Fed Bahia, Multicentr Program Postgrad Biochem & Mol Biol, BR-40231300 Salvador, BA, Brazil
[2] Sao Rafael Hosp, Ctr Biotechnol & Cell Therapy, BR-41253190 Salvador, BA, Brazil
[3] Oswaldo Cruz Fdn FIOCRUZ, Goncalo Moniz Inst, BR-40296710 Salvador, BA, Brazil
[4] Natl Inst Sci & Technol Regenerat Med, BR-21941590 Rio De Janeiro, Brazil
[5] Univ Fed Bahia, Hlth Sci Inst, Dept Biochem & Biophys, BR-40231300 Salvador, BA, Brazil
关键词
microRNAs; systemic arterial hypertension; type 2 diabetes mellitus; obesity; exercise training; microRNA; SMOOTH-MUSCLE-CELLS; LEFT-VENTRICULAR HYPERTROPHY; BLOOD MONONUCLEAR-CELLS; ACAA-INSERTION/DELETION POLYMORPHISM; SINGLE-NUCLEOTIDE POLYMORPHISMS; HUMAN ADIPOCYTE DIFFERENTIATION; DISTINCT CIRCULATING MICRORNAS; ENDOTHELIAL PROGENITOR CELLS; ACUTE EXHAUSTIVE EXERCISE; RENIN-ANGIOTENSIN SYSTEM;
D O I
10.3390/ijms19113608
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
MicroRNAs are small non-coding RNAs that regulate gene expression post-transcriptionally. They are involved in the regulation of physiological processes, such as adaptation to physical exercise, and also in disease settings, such as systemic arterial hypertension (SAH), type 2 diabetes mellitus (T2D), and obesity. In SAH, microRNAs play a significant role in the regulation of key signaling pathways that lead to the hyperactivation of the renin-angiotensin-aldosterone system, endothelial dysfunction, inflammation, proliferation, and phenotypic change in smooth muscle cells, and the hyperactivation of the sympathetic nervous system. MicroRNAs are also involved in the regulation of insulin signaling and blood glucose levels in T2D, and participate in lipid metabolism, adipogenesis, and adipocyte differentiation in obesity, with specific microRNA signatures involved in the pathogenesis of each disease. Many studies report the benefits promoted by exercise training in cardiovascular diseases by reducing blood pressure, glucose levels, and improving insulin signaling and lipid metabolism. The molecular mechanisms involved, however, remain poorly understood, especially regarding the participation of microRNAs in these processes. This review aimed to highlight microRNAs already known to be associated with SAH, T2D, and obesity, as well as their possible regulation by exercise training.
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共 289 条
[31]   Swimming Training in Rats Increases Cardiac MicroRNA-126 Expression and Angiogenesis [J].
Da Silva, Natan D., Jr. ;
Fernandes, Tiago ;
Soci, Ursula P. R. ;
Monteiro, Alex Willian A. ;
Phillips, M. Ian ;
de Oliveira, Edilamar Menezes .
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2012, 44 (08) :1453-1462
[32]   Exercise training in hypertension: Role of microRNAs [J].
das Neves, Vander Jose ;
Fernandes, Tiago ;
Roque, Fernanda Roberta ;
Reno Soci, Ursula Paula ;
Soares Melo, Stephano Freitas ;
de Oliveira, Edilamar Menezes .
WORLD JOURNAL OF CARDIOLOGY, 2014, 6 (08) :713-727
[33]   High responders to resistance exercise training demonstrate differential regulation of skeletal muscle microRNA expression [J].
Davidsen, Peter K. ;
Gallagher, Iain J. ;
Hartman, Joseph W. ;
Tarnopolsky, Mark A. ;
Dela, Flemming ;
Helge, Jorn W. ;
Timmons, James A. ;
Phillips, Stuart M. .
JOURNAL OF APPLIED PHYSIOLOGY, 2011, 110 (02) :309-317
[34]   The Inflammasome NLRs in Immunity, Inflammation, and Associated Diseases [J].
Davis, Beckley K. ;
Wen, Haitao ;
Ting, Jenny P. -Y. .
ANNUAL REVIEW OF IMMUNOLOGY, VOL 29, 2011, 29 :707-735
[35]   Induction of MicroRNA-221 by Platelet-derived Growth Factor Signaling Is Critical for Modulation of Vascular Smooth Muscle Phenotype [J].
Davis, Brandi N. ;
Hilyard, Aaron C. ;
Nguyen, Peter H. ;
Lagna, Giorgio ;
Hata, Akiko .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (06) :3728-3738
[36]   Circulating inflammatory miRNA signature in response to different doses of aerobic exercise [J].
de Gonzalo-Calvo, David ;
Davalos, Alberto ;
Montero, Ana ;
Garcia-Gonzalez, Angela ;
Tyshkovska, Iryna ;
Gonzalez-Medina, Antonio ;
Soares, Sara M. A. ;
Martinez-Camblor, Pablo ;
Casas-Agustench, Patricia ;
Rabadan, Manuel ;
Diaz-Martinez, Angel E. ;
Ubeda, Natalia ;
Iglesias-Gutierrez, Eduardo .
JOURNAL OF APPLIED PHYSIOLOGY, 2015, 119 (02) :124-134
[37]   MicroRNA network changes in the brain stem underlie the development of hypertension [J].
DeCicco, Danielle ;
Zhu, Haisun ;
Brureau, Anthony ;
Schwaber, James S. ;
Vadigepalli, Rajanikanth .
PHYSIOLOGICAL GENOMICS, 2015, 47 (09) :388-399
[38]   Visceral Adipose MicroRNA 223 Is Upregulated in Human and Murine Obesity and Modulates the Inflammatory Phenotype of Macrophages [J].
Deiuliis, Jeffrey A. ;
Syed, Rafay ;
Duggineni, Dheeraj ;
Rutsky, Jessica ;
Rengasamy, Palanivel ;
Zhang, Jie ;
Huang, Kun ;
Needleman, Bradley ;
Mikami, Dean ;
Perry, Kyle ;
Hazey, Jeffrey ;
Rajagopalan, Sanjay .
PLOS ONE, 2016, 11 (11)
[39]   Irisin Alleviates Advanced Glycation End Products-Induced Inflammation and Endothelial Dysfunction via Inhibiting ROS-NLRP3 Inflammasome Signaling [J].
Deng, Xian ;
Huang, Wei ;
Peng, Juan ;
Zhu, Ting-Ting ;
Sun, Xiao-Lei ;
Zhou, Xiang-Yu ;
Yang, Hui ;
Xiong, Jian-Feng ;
He, Hu-Qiang ;
Xu, You-Hua ;
He, Yan-Zheng .
INFLAMMATION, 2018, 41 (01) :260-275
[40]   PBMCs express a transcriptome signature predictor of oxygen uptake responsiveness to endurance exercise training in men [J].
Dias, Rodrigo Goncalves ;
Moreira Silva, Michelle Sabrina ;
Duarte, Nubia Esteban ;
Bolani, Wladimir ;
Alves, Cleber Rene ;
Lemos Junior, Jose Ribeiro ;
da Silva, Jeferson Luis ;
de Oliveira, Patricia Alves ;
Alves, Guilherme Barreto ;
de Oliveira, Edilamar Menezes ;
Rocha, Cristiane Souza ;
Carneiro Marsiglia, Julia Daher ;
Negrao, Carlos Eduardo ;
Krieger, Eduardo Moacyr ;
Krieger, Jose Eduardo ;
Pereira, Alexandre Costa .
PHYSIOLOGICAL GENOMICS, 2015, 47 (02) :13-23