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Epicardial Adipose Tissue – A New Biomarker of Cardiovascular Risk


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1. Nakanishi K, Fukuda S, Tanaka A, et al. Epicardial Adipose Tissue Accumulation Is Associated With Renal Dysfunction and Coronary Plaque Morphology on Multidetector Computed Tomography. Circ J. 2015;80:196-201. doi: 10.1253/circj.CJ-15-0477.10.1253/circj.CJ-15-047726497330Search in Google Scholar

2. Maurovich-Horvat P, Kallianos K, Engel LC, et al. Relationship of thoracic fat depots with coronary atherosclerosis and circulating inflammatory biomarkers. Obesity. 2015;23:1178-1184. doi: 10.1002/oby.21080.10.1002/oby.21080444616025960369Search in Google Scholar

3. Doesch C, Jochims J, Streitner F, et al. Novel prognostic markers derived from cardiovascular magnetic resonance imaging in patients with stable chronic coronary artery disease. InVivo. 2015;29:737-747.Search in Google Scholar

4. Ridker PM. From C-reactive protein to interleukin-6 to Interleukin-1. Moving upstream to identify novel targets for atheroprotection. Circ Res. 2016;1:145-156. doi: 10.1161/ CIRCRESAHA.115.306656.10.1161/CIRCRESAHA.115.306656479371126837745Search in Google Scholar

5. Gauss S, Klinghammer L, Steinhoff A, et al. Association of systemic inflammation with epicardial fat and coronary artery calcification. Inflamm Res. 2015;64:313-319. doi: 10.1007/ s00011-015-0809-x.10.1007/s00011-015-0809-x25763815Search in Google Scholar

6. Hajsadeghi F, Nabavi V, Bhandari A, et al. Increased epicardial adipose tissue is associated with coronary artery disease and major adverse cardiovascular events. Atherosclerosis. 2014;237:486-489. doi: 10.1016/j.atherosclerosis.2014.09.037.10.1016/j.atherosclerosis.2014.09.03725463078Search in Google Scholar

7. Bo X, Ma L, Fan J, et al. Epicardial fat volume is correlated with coronary lesion and its severity. Int J ClinExp Med. 2015;8:4328-4334.Search in Google Scholar

8. Romijn MA, Danad I, Bakkum MJ, et al. Incremental diagnostic value of epicardial adipose tissue for the detection of functionally relevant coronary artery disease. Atherosclerosis. 2015;242:161-166. doi: 10.1016/j.atherosclerosis.2015.07.005.10.1016/j.atherosclerosis.2015.07.00526188540Search in Google Scholar

9. Hell MM, Achenbach S, Schuhbaeck A, Klinghammer L, May MS, Marwan M. CT-based analysis of pericoronary adipose tissue density: Relation to cardiovascular risk factors and epicardial adipose tissue volume. J Cardiovasc Comput Tomogr. 2016;10:52-60. doi: 10.1016/j.jcct.2015.07.011.10.1016/j.jcct.2015.07.01126256553Search in Google Scholar

10. Khawaja T, Greer C, Thadani SR, et al. Increased regional epicardial fat volume associated with reversible myocardial ischemia in patients with suspected coronary artery disease. J Nucl Cardiol. 2015;22:325-333. doi: 10.1007/s12350-014-0004-4.10.1007/s12350-014-0004-4447473325339129Search in Google Scholar

11. Tanindi A, Erkan AF, Ekici B. Epicardial adipose tissue thickness can be used to predict major adverse cardiac events. Coron Artery Dis. 2015;26:686-691. doi: 10.1097/ MCA.0000000000000296.10.1097/MCA.000000000000029626267746Search in Google Scholar

12. Chun H, Suh E, Byun AR, Park HR, Shim KW. Epicardial fat thickness is associated to type 2 diabetes mellitus in Korean men: a cross-sectional study. Cardiovasc Diabetol. 2015;14:46. doi: 10.1186/s12933-015-0210-7.10.1186/s12933-015-0210-7443251925935836Search in Google Scholar

13. Opincariu D, Mester A, Dobra M, et al. Prognostic value of epicardial fat thickness as a marker of increased inflammatory status in patients with type 2 diabetes mellitus and acute myocardial infarction. J Cardiovasc Emerg. 2016;2(1):11-18. doi: 10.1515/jce-2016-0003.10.1515/jce-2016-0003Search in Google Scholar

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