For: | Noyes AM, Dua K, Devadoss R, Chhabra L. Cardiac adipose tissue and its relationship to diabetes mellitus and cardiovascular disease. World J Diabetes 2014; 5(6): 868-876 [PMID: 25512789 DOI: 10.4239/wjd.v5.i6.868] |
---|---|
URL: | https://www.wjgnet.com/1948-9358/full/v5/i6/868.htm |
Number | Citing Articles |
1 |
Mohammad Rami, Amirhossein Ahmadi Hekmatikar, Samaneh Rahdar, Sayed Shafa Marashi, D. Maryama Awang Daud. Highlighting the effects of high-intensity interval training on the changes associated with hypertrophy, apoptosis, and histological proteins of the heart of old rats with type 2 diabetes. Scientific Reports 2024; 14(1) doi: 10.1038/s41598-024-57119-6
|
2 |
Guanghong Jia, Yan Jia, James R. Sowers. Comprehensive Physiology. 2016; : 253 doi: 10.1002/cphy.c160014
|
3 |
Magalí Barchuk, Laura Schreier, Graciela López, Agata Cevey, Julio Baldi, María del Carmen Fernandez Tomé, Nora Goren, Miguel Rubio, Verónica Miksztowicz, Gabriela Berg. Glycosylphosphatidylinositol-anchored high density lipoprotein-binding protein 1 and angiopoietin-like protein 4 are associated with the increase of lipoprotein lipase activity in epicardial adipose tissue from diabetic patients. Atherosclerosis 2019; 288: 51 doi: 10.1016/j.atherosclerosis.2019.06.915
|
4 |
Kexin Zhang, Jingwen Zhang, Chengxia Kan, Hongzhan Tian, Yanhui Ma, Na Huang, Fang Han, Ningning Hou, Xiaodong Sun. Role of dysfunctional peri-organ adipose tissue in metabolic disease. Biochimie 2023; 212: 12 doi: 10.1016/j.biochi.2023.03.015
|
5 |
Bianca Honnekeri, Agostina M. Fava, Reza Reyaldeen, Mohamed Kanj, Paulino Alvarez, Bo Xu. Prominent para‐cardiac fat mimicking left atrial appendage thrombus on echocardiography: Utility of cardiac computed tomography. Echocardiography 2023; 40(8): 875 doi: 10.1111/echo.15595
|
6 |
Yuxue Dang, Xujiao Chen, Shaowei Ma, Yue Ma, Quanmei Ma, Ke Zhou, Ting Liu, Kunhua Wang, Yang Hou. Association of Pericoronary Adipose Tissue Quality Determined by Dual-Layer Spectral Detector CT With Severity of Coronary Artery Disease: A Preliminary Study. Frontiers in Cardiovascular Medicine 2021; 8 doi: 10.3389/fcvm.2021.720127
|
7 |
Nikoleta Karampetsou, Leonidas Alexopoulos, Aggeliki Minia, Vaia Pliaka, Nikos Tsolakos, Konstantinos Kontzoglou, Despoina N Perrea, Paulos Patapis. Epicardial Adipose Tissue as an Independent Cardiometabolic Risk Factor for Coronary Artery Disease. Cureus 2022; doi: 10.7759/cureus.25578
|
8 |
Weitie Wang, Qing Liu, Yong Wang, Hulin Piao, Bo Li, Zhicheng Zhu, Dan Li, Tiance Wang, Rihao Xu, Kexiang Liu. Integration of Gene Expression Profile Data of Human Epicardial Adipose Tissue from Coronary Artery Disease to Verification of Hub Genes and Pathways. BioMed Research International 2019; 2019: 1 doi: 10.1155/2019/8567306
|
9 |
Lovely Chhabra, Alan W. Ahlberg, Milena J. Henzlova, W. Lane Duvall. Temporal trends of stress myocardial perfusion imaging: Influence of diabetes, gender and coronary artery disease status. International Journal of Cardiology 2016; 202: 922 doi: 10.1016/j.ijcard.2015.09.020
|
10 |
Sasan Partovi, Armin Arbab-Zadeh. Epicardial fat volume quantification by noncontrast CT: Trimming away the fat from the meat. Journal of Cardiovascular Computed Tomography 2015; 9(4): 310 doi: 10.1016/j.jcct.2015.05.001
|
11 |
María E. Cabalén, María F. Cabral, Liliana M. Sanmarco, Marta C. Andrada, Luisina I. Onofrio, Nicolás E. Ponce, María P. Aoki, Susana Gea, Roxana C. Cano. Chronic Trypanosoma cruzi infection potentiates adipose tissue macrophage polarization toward an anti-inflammatory M2 phenotype and contributes to diabetes progression in a diet-induced obesity model. Oncotarget 2016; 7(12): 13400 doi: 10.18632/oncotarget.7630
|
12 |
Lovely Chhabra, N. Gurukripa Kowlgi. Cardiac adipose tissue: Distinction between epicardial and pericardial fat remains important!. International Journal of Cardiology 2015; 201: 274 doi: 10.1016/j.ijcard.2015.08.068
|
13 |
Nerea Gandoy-Fieiras, Jose Ramon Gonzalez-Juanatey, Sonia Eiras. Myocardium Metabolism in Physiological and Pathophysiological States: Implications of Epicardial Adipose Tissue and Potential Therapeutic Targets. International Journal of Molecular Sciences 2020; 21(7): 2641 doi: 10.3390/ijms21072641
|
14 |
Jing Wang, Tao Hang, Xun-min Cheng, De-min Li, Qi-gao Zhang, Li-jun Wang, Yong-ping Peng, Jian-bin Gong. Associations of C1q/TNF-Related Protein-9 Levels in Serum and Epicardial Adipose Tissue with Coronary Atherosclerosis in Humans. BioMed Research International 2015; 2015: 1 doi: 10.1155/2015/971683
|
15 |
Yuan Chen, Meng Yu, Yalin Lan, Fei Feng, Chengyan Jiang. Development of a nomogram for predicting the risk of left ventricular diastolic function in subjects with type-2 diabetes mellitus. The International Journal of Cardiovascular Imaging 2022; 38(1): 15 doi: 10.1007/s10554-021-02338-5
|
16 |
Laurel A. Grisanti. Diabetes and Arrhythmias: Pathophysiology, Mechanisms and Therapeutic Outcomes. Frontiers in Physiology 2018; 9 doi: 10.3389/fphys.2018.01669
|
17 |
Iva Miljkovic, Allison L. Kuipers, Ryan K. Cvejkus, J. Jeffrey Carr, James G. Terry, Bharat Thyagarajan, Victor W. Wheeler, Sangeeta Nair, Joseph M. Zmuda. Hepatic and Skeletal Muscle Adiposity Are Associated with Diabetes Independent of Visceral Adiposity in Nonobese African-Caribbean Men. Metabolic Syndrome and Related Disorders 2020; 18(6): 275 doi: 10.1089/met.2019.0097
|
18 |
Julian Rene Cuellar Buritica, Lucas Gillette, Vu Q. Dinh, Pamela K. Woodard, Manjula Burri, Jon D. Klingensmith, Nick Bottenus, Christian Boehm. Echocardiogram image segmentation and cardiac adipose tissue estimation using spectral analysis and deep learning. Medical Imaging 2024: Ultrasonic Imaging and Tomography 2024; : 10 doi: 10.1117/12.3004836
|
19 |
Xoana Barros, Timm Dirrichs, Ralf Koos, Sebastian Reinartz, Nadine Kaesler, Rafael Kramann, Ulrich Gladziwa, Markus Ketteler, Jürgen Floege, Nikolaus Marx, José V. Torregrosa, András Keszei, Vincent M. Brandenburg. Epicardial adipose tissue in long-term hemodialysis patients: its association with vascular calcification and long-term development. Journal of Nephrology 2016; 29(2): 241 doi: 10.1007/s40620-015-0221-1
|
20 |
Yang Liu, Wenbo Fu, Mu Lu, Shitao Huai, Yaqin Song, Yutao Wei. Role of miRNAs in Epicardial Adipose Tissue in CAD Patients with T2DM. BioMed Research International 2016; 2016: 1 doi: 10.1155/2016/1629236
|
21 |
Khaoula Bouazizi, Mohamed Zarai, Abdallah Noufaily, Mikaël Prigent, Thomas Dietenbeck, Emilie Bollache, Toan Nguyen, Valéria Della Valle, Eléonore Blondiaux, Karine Clément, Judith Aron-Wisnewsky, Fabrizio Andreelli, Alban Redheuil, Nadjia Kachenoura. Associations of aortic stiffness and intra-aortic flow parameters with epicardial adipose tissue in patients with type-2 diabetes. Frontiers in Clinical Diabetes and Healthcare 2023; 4 doi: 10.3389/fcdhc.2023.1106342
|
22 |
Junshi Yazaki, Takashi Yamanashi, Shino Nemoto, Atsuo Kobayashi, Yong-Woon Han, Tomoko Hasegawa, Akira Iwase, Masaki Ishikawa, Ryo Konno, Koshi Imami, Yusuke Kawashima, Jun Seita. Mapping adipocyte interactome networks by HaloTag-enrichment-mass spectrometry. Biology Methods and Protocols 2024; 9(1) doi: 10.1093/biomethods/bpae039
|
23 |
Benjamin D. Long, Jadranka Stojanovska, Richard K.J. Brown, Anil K. Attili, Eizabeth A. Jackson, Vladimir Ognenovski. Increased Epicardial Fat Volume Is Independently Associated with the Presence and Severity of Systemic Sclerosis. Academic Radiology 2017; 24(12): 1473 doi: 10.1016/j.acra.2017.07.003
|
24 |
Xiaogang Li, Yu Sun, Lisheng Xu, Stephen E. Greenwald, Libo Zhang, Rongrong Zhang, Hongrui You, Benqiang Yang. Automatic quantification of epicardial adipose tissue volume. Medical Physics 2021; 48(8): 4279 doi: 10.1002/mp.15012
|
25 |
S. Mariani, D. Costantini, C. Lubrano, S. Basciani, C. Caldaroni, G. Barbaro, E. Poggiogalle, L.M. Donini, A. Lenzi, L. Gnessi. Circulating SIRT1 inversely correlates with epicardial fat thickness in patients with obesity. Nutrition, Metabolism and Cardiovascular Diseases 2016; 26(11): 1033 doi: 10.1016/j.numecd.2016.06.001
|
26 |
Lovely Chhabra, Amandeep Goyal, Victor Mwansa, Randy Balmorth. Transverse sinus fat pad may masquerade as left atrial appendage thrombus. Journal of Electrocardiology 2019; 56: 43 doi: 10.1016/j.jelectrocard.2019.06.019
|
27 |
Gábor Zsóri, Dóra Illés, Emese Ivány, Klára Kosár, Gábor Holzinger, Máté Tajti, Eszter Pálinkás, Géza Szabovik, András Nagy, András Palkó, László Czakó. In New-Onset Diabetes Mellitus, Metformin Reduces Fat Accumulation in the Liver, But Not in the Pancreas or Pericardium. Metabolic Syndrome and Related Disorders 2019; 17(5): 289 doi: 10.1089/met.2018.0086
|
28 |
Natalia de las Heras, Vicente Lahera. Relevance of mitochondrial dysfunction in heart disease associated with insulin resistance conditions. Pflügers Archiv - European Journal of Physiology 2022; 474(1): 21 doi: 10.1007/s00424-021-02638-8
|
29 |
Alaitz Berriozabalgoitia, Juan Carlos Ruiz de Gordoa, Gustavo Amores, Gorka Santamarina-Garcia, Igor Hernández, Mailo Virto. Normal-Fat vs. High-Fat Diets and Olive Oil vs. CLA-Rich Dairy Fat: A Comparative Study of Their Effects on Atherosclerosis in Male Golden Syrian Hamsters. Metabolites 2023; 13(7): 827 doi: 10.3390/metabo13070827
|
30 |
Regitse Højgaard Christensen, Bernt Johan von Scholten, Louise Lang Lehrskov, Peter Rossing, Peter Godsk Jørgensen. Epicardial adipose tissue: an emerging biomarker of cardiovascular complications in type 2 diabetes?. Therapeutic Advances in Endocrinology and Metabolism 2020; 11 doi: 10.1177/2042018820928824
|
31 |
Ahmet Afşin Oktay, Halis Kaan Akturk, Kerim Esenboğa, Fahad Javed, Nichole M. Polin, Eiman Jahangir. Pathophysiology and Prevention of Heart Disease in Diabetes Mellitus. Current Problems in Cardiology 2018; 43(3): 68 doi: 10.1016/j.cpcardiol.2017.05.001
|
32 |
Adina Braha, Alin Albai, Bogdan Timar, Daniela Cipu, Lucian Vasiluță, Ovidiu Potre, Romulus Timar. Predictors of Epicardial Fat Volume Decrease after Dapagliflozin Treatment in Patients with Type 2 Diabetes. Medicina 2021; 58(1): 21 doi: 10.3390/medicina58010021
|
33 |
Simona Cernea, Ciprian Blendea, Andrada Larisa Roiban, Theodora Benedek. Cardio-renal Correlations and Epicardial Adipose Tissue in Patients with Type 2 Diabetes. Journal of Interdisciplinary Medicine 2017; 2(4): 312 doi: 10.1515/jim-2017-0085
|
34 |
Małgorzata Knapp, Bartłomiej Łukaszuk, Anna Lisowska, Tomasz Hirnle, Jan Górski, Adrian Chabowski, Agnieszka Mikłosz. Multivessel Coronary Artery Disease Complicated by Diabetes Mellitus Has a Relatively Small Effect on Endothelial and Lipoprotein Lipases Expression in the Human Atrial Myocardium and Coronary Perivascular Adipose Tissue. International Journal of Molecular Sciences 2023; 24(17): 13552 doi: 10.3390/ijms241713552
|
35 |
Regitse Højgaard Christensen, Anne-Sophie Wedell-Neergaard, Louise Lang Lehrskov, Grit Elster Legård, Emma Berndt Dorph, Stine Nymand, Maria Korf Ball, Morten Zacho, Robin Christensen, Helga Ellingsgaard, Jaya Birgitte Rosenmeier, Rikke Krogh-Madsen, Bente Klarlund Pedersen, Kristian Karstoft. The role of exercise combined with tocilizumab in visceral and epicardial adipose tissue and gastric emptying rate in abdominally obese participants: protocol for a randomised controlled trial. Trials 2018; 19(1) doi: 10.1186/s13063-018-2637-0
|
36 |
Jung-Chi Hsu, Kuan-Chih Huang, Ting-Tse Lin, Jen-Kuang Lee, Mao-Yuan M Su, Jyh-Ming Jimmy Juang, Cho-Kai Wu, Lian-Yu Lin. Epicardial Adipose Tissue Is Associated With Geometry Alteration and Diastolic Dysfunction in Prediabetic Cardiomyopathy. The Journal of Clinical Endocrinology & Metabolism 2024; doi: 10.1210/clinem/dgae400
|