1. Sacks HS, Fain JN, Bahouth SW, Ojha S, Frontini A, Budge H et al. Adult epicardial fat exhibits beige features. J Clin Endocrinol Metab. 2013;98(9): E1448–55.
2. Iacobellis G. Epicardial fat: a new cardiovascular therapeutic target. Curr Opin Pharmacol. 2016;27:13–8.
3. Corradi D, Maestri R, Callegari S, Pastori P, Goldoni M, Luong TV et al. The ventricular epicardial fat is related to the myocardial mass in normal, ischemic and hypertrophic hearts. Cardiovasc Pathol. 2004;13(6):313–6.
4. Iacobellis G, Willens HJ. Echocardiographic epicardial fat: a review of research and clinical applications. J Am Soc Echocardiogr. 2009;22(12):1311–9.
5. Iacobellis G, Willens HJ, Barbaro G, Sharma AM. Threshold values of high-risk echocardiographic epicardial fat thickness. Obesity (Silver Spring). 2008;16(4):887–92.
6. Mahabadi AA, Balcer B, Dykun I, Forsting M, Schlosser T, Heusch G et al. Cardiac computed tomography-derived epicardial fat volume and attenuation independently distinguish patients with and without myocardial infarction. PLoS One. 2017;12(8): e0183514.
7. Yudkin JS. Inflammation, obesity, and the metabolic syndrome. Horm Metab Res. 2007;39(10):707–9.
8. Omar A, Chatterjee TK, Tang Y, Hui DY, Weintraub NL. Proinflammatory phenotype of perivascular adipocytes. Arterioscler Thromb Vasc Biol. 2014;34(8):1631–6.
9. Rodrıguez A, Becerril S, Ezquerro S, Méndez-Giménez L, Frühbeck G. Crosstalk between adipokines and myokines in fat browning. Acta Physiol. 2017;219(2):362–381.
10. Mazurek T, Kobylecka M, Zielenkiewicz M, Kurek A, Kochman J, Filipiak KJ et al. PET/CT evaluation of 18F-FDG uptake in pericoronary adipose tissue in patients with stable coronary artery disease: Independent predictor of atherosclerotic lesions’ formation? J Nucl Cardiol. 2017;24(3):1075–1084.
11. Liu T, Maurovich-Horvat P, Mayrhofer T, Puchner SB, Lu MT, Ghemigian K et al. Quantitative coronary plaque analysis predicts high-risk plaque morphology on coronary com- puted tomography angiography: results from the ROMICAT II trial. Int J Cardiovasc Imaging. 2017. doi:10.1007/s10554-0171228-6
12. Thøgersen AM, Söderberg S, Jansson JH, Dahlén G, Boman K, Nilsson TK et al. Interactions between fibrinolysis, lipoproteins and leptin related to a first myocardial infarction. Eur J Cardiovasc Prev Rehabil. 2004;11(1):33–40.
13. Sattar N, Wannamethee G, Sarwar N, Chernova J, Lawlor DA, Kelly A et al. Leptin and coronary heart disease: prospective study and systematic review. J Am Coll Cardiol. 2009;53(2):167–75.
14. Montecucco F, Liberale L, Bonaventura A, Vecchiè A, Dallegri F, Carbone F. The role of inflammation in cardiovascular outcome. Curr Atheroscler Rep. 2017;19(3):11.
15. Liberale L, Bonaventura A, Vecchiè1 A, Matteo C, Dallegri F, Montecucco F et al. The role of adipocytokines in coronary atherosclerosis. Curr Atheroscler Rep. 2017;19(2):10.
16. Nakanishi K, Fukuda S, Tanaka A, Otsuka K, Taguchi H, Shimada K. Relationships between periventricular epicardial adipose tissue accumulation, coronary microcirculation and left ventricular diastolic dysfunction. Can J Cardiol. 2017;33 (11):1489–1497. pii: S0828–282X (17)30874–7.
17. Беляева О. Д., Чубенко Е. А., Березина А. В., Беркович О. А., Баранова Е. И., Шляхто Е. В. Абдоминальное ожирение: роль адипоцитокинов и полиморфизмов их генов в развитии компонентов метаболического синдрома. Трансляционная медицина: под ред. чл.-корр. РАМН, проф. Е. В. Шляхто. СПб., 2010. 416 с. (с. 165–191)..
18. Чубенко Е. А., Беляева О. Д., Беркович О. А., Баранова Е. И. Лептин и метаболический синдром. Российский физиологический журнал им. И. М. Сеченова. 2010;96 (10):945–965..
19. McCulloch RS, Ashwell MS, O’Nan AT, Mente PL. Identification of stable normalization genes for quantitative realtime PCR in porcine articular cartilage. J Anim Sci Biotechnol. 2012;3(1):36.
20. Kajikawa Y, Ikeda M, Takemoto S, Tomoda J, Ohmaru N, Kusachi S. Association of circulating levels of leptin and adiponectin with metabolic syndrome and coronary heart disease in patients with various coronary risk factors. Int Heart J. 2011;52 (1):17–22.
21. Wannamethee SG, Tchernova J, Whincup P, Lowe GD, Kelly A, Rumley A et al. Plasma leptin: associations with metabolic, inflammatory and haemostatic risk factors for cardiovascular disease. Atherosclerosis. 2007;191(2):418–26.
22. Lee MJ, Yang RZ, Karastergiou K, Smith SR, Chang JR, Gong DW et al. Low expression of the GILZ may contribute to adipose inflammation and altered adipokine production in human obesity. Lipid Res. 2016;57(7):1256–63.
23. Kuryszko J, Sławuta P, Sapikowski G. Secretory function of adipose tissue. Pol J Vet Sci. 2016;19(2):441–446.
24. Iglesias MJ, Eiras S, Piñeiro R, López-Otero D, Gallego R, Fernández AL et al. Gender differences in adiponectin and leptin expression in epicardial and subcutaneous adipose tissue. Findings in patients undergoing cardiac surgery. Rev Esp Cardiol. 2006;59 (12):1252–60.
25. Mazurek T, Kochman J, Kobylecka M, Wilimski R, Filipiak KJ, Królicki L et al. Inflammatory activity of pericoronary adipose tissue may affect plaque composition in patients with acute coronary syndrome without persistent ST-segment elevation: preliminary results. Kardiol Pol. 2014;72 (5):410–6.
26. Чумакова Г. А., Веселовская Н. Г., Гриценко О. В., Козаренко А. А., Субботин Е. А. Эпикардиальное ожирение как фактор риска развития коронарного атеросклероза. Кардиология. 2013:1(53):15–18..
27. Gormez S, Demirkan A, Atalar F, Caynak B, Erdim R, Sozer V et al. Adipose tissue gene expression of adiponectin, tumor necrosis factor-α and leptin in metabolic syndrome patients with coronary artery disease. Intern Med. 2011;50(8):805–810.