Examining the effects of coronary artery disease- and mitochondrial biogenesis-related genes' and microRNAs' expression levels on metabolic disorders in epicardial adipose tissue

被引:2
作者
Dogan, Nazli [1 ,2 ]
Ozuynuk-Ertugrul, Aybike S. [1 ,2 ]
Balkanay, Ozan O. [3 ]
Yildiz, Cenk E. [4 ]
Guclu-Geyik, Filiz [1 ]
Kirsan, Cemre B. [1 ,2 ]
Coban, Neslihan [1 ,5 ]
机构
[1] Istanbul Univ, Aziz Sancar Inst Expt Med, Dept Genet, Istanbul, Turkiye
[2] Istanbul Univ, Inst Grad Studies Hlth Sci, Istanbul, Turkiye
[3] Istanbul Univ Cerrahpasa, Cerrahpasa Fac Med, Dept Cardiovasc Surg, Istanbul, Turkiye
[4] Istanbul Univ Cerrahpasa, Inst Cardiol, Dept Cardiovasc Surg, Istanbul, Turkiye
[5] Istanbul Univ, Aziz Sancar Inst Expt Med, Dept Genet, TR-34080 Istanbul, Turkiye
关键词
Coronary artery disease; Epicardial adipose tissue; Mitochondria; Diabetes; Obesity; microRNA; NF-KAPPA-B; TNF-ALPHA; SIRT1; AMPK; INFLAMMATION; CYTOKINES; VOLUME; PGC-1;
D O I
10.1016/j.gene.2023.147988
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background and aims: Epicardial adipose tissue (EAT) surrounds the heart and coronary arteries and is important for comprehending the pathogenesis of coronary artery disease (CAD). We aimed to evaluate the expressions of mitochondrial biogenesis- and CAD-related genes and miRNAs in EAT by comparing them to visceral adipose tissue (VAT) in CAD, diabetes, and obesity subgroups.Methods: In this study, a total of 93 individuals were recruited, and EAT samples (63 CAD; 30 non-CAD) and VAT samples from 65 individuals (46 CAD; 19 non-CAD) were collected. For further analysis, the study population was divided according to obesity and diabetes status. PRKAA1, PPARGC1A, SIRT1, RELA, TNFA, and miR-155-5p, let-7g-5p, miR-1247-5p, miR-326 expression levels were examined.Results: PRKAA1 and let-7g-5p were differentially expressed in EAT compared to VAT. TNFA expression was upregulated significantly in both tissues of CAD patients. In EAT, PRKAA1, PPARGC1A, and SIRT1 were downregulated with diabetes. Moreover, PPARGC1A expression is decreased under the condition of obesity in both tissues. EAT expressions of miR-1247-5p and miR-326 were downregulated with obesity, while miR-155-5p is decreased only in the VAT of obese. Also, miRNAs and genes were correlated with biochemical parameters and each other in EAT and VAT (p < 0.050).Conclusions: The findings demonstrating distinct let-7g-5p and AMPK alpha 1 mRNA expression between EAT and VAT underscores the importance of tissue-specific regulation in different clinical outcomes. In addition, the differential expressions of investigated genes and miRNAs highlight their responsiveness to obesity, DM, and CAD in adipose tissues.
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页数:10
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共 42 条
[1]   TNF-alpha induced NFκB signaling and p65 (RelA) overexpression repress Cldn5 promoter in mouse brain endothelial cells [J].
Aslam, Muhammad ;
Ahmad, Nafees ;
Srivastava, Rajneesh ;
Hemmer, Bernhard .
CYTOKINE, 2012, 57 (02) :269-275
[2]   Potential role of epicardial adipose tissue in coronary artery endothelial cell dysfunction in type 2 diabetes [J].
Ballasy, Noura N. ;
Jadli, Anshul S. ;
Edalat, Pariya ;
Kang, Sean ;
Hassanabad, Ali Fatehi ;
Gomes, Karina P. ;
Fedak, Paul W. M. ;
Patel, Vaibhav B. .
FASEB JOURNAL, 2021, 35 (10)
[3]   Obesity and Roux-en-Y gastric bypass drive changes in miR-31 and miR-215 expression in the human rectal mucosa [J].
Breininger, Stella Panagio ;
Sabater, Laura ;
Malcomson, Fiona Caroline ;
Afshar, Sorena ;
Mann, Jelena ;
Mathers, John Cummings .
INTERNATIONAL JOURNAL OF OBESITY, 2022, 46 (02) :333-341
[4]   Peripheral Blood Monocyte Sirt1 Expression Is Reduced in Patients with Coronary Artery Disease [J].
Breitenstein, Alexander ;
Wyss, Christophe A. ;
Spescha, Remo D. ;
Franzeck, Fabian C. ;
Hof, Danielle ;
Riwanto, Meliana ;
Hasun, Matthias ;
Akhmedov, Alexander ;
von Eckardstein, Arnold ;
Maier, Willibald ;
Landmesser, Ulf ;
Luescher, Thomas F. ;
Camici, Giovanni G. .
PLOS ONE, 2013, 8 (01)
[5]   Circulating microRNAs predict future fatal myocardial infarction in healthy individuals - The HUNT study [J].
Bye, Anja ;
Rosjo, Helge ;
Nauman, Javaid ;
Silva, Gustavo J. J. ;
Follestad, Turid ;
Omland, Torbjorn ;
Wisloff, Ulrik .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2016, 97 :162-168
[6]   AMPK regulates energy expenditure by modulating NAD+ metabolism and SIRT1 activity [J].
Canto, Carles ;
Gerhart-Hines, Zachary ;
Feige, Jerome N. ;
Lagouge, Marie ;
Noriega, Lilia ;
Milne, Jill C. ;
Elliott, Peter J. ;
Puigserver, Pere ;
Auwerx, Johan .
NATURE, 2009, 458 (7241) :1056-U140
[7]   AMPK activation: a therapeutic target for type 2 diabetes? [J].
Coughlan, Kimberly A. ;
Valentine, Rudy J. ;
Ruderman, Neil B. ;
Saha, Asish K. .
DIABETES METABOLIC SYNDROME AND OBESITY-TARGETS AND THERAPY, 2014, 7 :241-253
[8]   SIRT1 and SIRT6 Signaling Pathways in Cardiovascular Disease Protection [J].
D'Onofrio, Nunzia ;
Servillo, Luigi ;
Balestrieri, Maria Luisa .
ANTIOXIDANTS & REDOX SIGNALING, 2018, 28 (08) :711-732
[9]   Browning Epicardial Adipose Tissue: Friend or Foe? [J].
Doukbi, Elisa ;
Soghomonian, Astrid ;
Sengenes, Coralie ;
Ahmed, Shaista ;
Ancel, Patricia ;
Dutour, Anne ;
Gaborit, Benedicte .
CELLS, 2022, 11 (06)
[10]   Human Brown Adipose Tissue [J].
Enerback, Sven .
CELL METABOLISM, 2010, 11 (04) :248-252