Location, variations, and predictors of epicardial fat mapping using multidetector computed tomography to assist epicardial ventricular tachycardia ablation

2017 ◽  
Vol 40 (10) ◽  
pp. 1059-1066 ◽  
Author(s):  
Mariaileen Sourwine ◽  
Jean Jeudy ◽  
Brian Miller ◽  
Rama Vunnam ◽  
Hasan Imanli ◽  
...  
Heart Rhythm ◽  
2005 ◽  
Vol 2 (5) ◽  
pp. S74
Author(s):  
Albert C. Lardo ◽  
Muz Zviman ◽  
Saman Nazarian ◽  
Timm-Michael Dickfeld ◽  
Ronald Berger ◽  
...  

2019 ◽  
Vol 8 (6) ◽  
pp. 780 ◽  
Author(s):  
David de Gonzalo-Calvo ◽  
David Vilades ◽  
Pablo Martínez-Camblor ◽  
Àngela Vea ◽  
Andreu Ferrero-Gregori ◽  
...  

Epicardial adipose tissue (EAT) constitutes a novel parameter for cardiometabolic risk assessment and a target for therapy. Here, we evaluated for the first time the plasma microRNA (miRNA) profile as a source of biomarkers for epicardial fat volume (EFV). miRNAs were profiled in plasma samples from 180 patients whose EFV was quantified using multidetector computed tomography. In the screening study, 54 deregulated miRNAs were identified in patients with high EFV levels (highest tertile) compared with matched patients with low EFV levels (lowest tertile). After filtering, 12 miRNAs were selected for subsequent validation. In the validation study, miR-15b-3p, miR-22-3p, miR-148a-3p miR-148b-3p and miR-590-5p were directly associated with EFV, even after adjustment for confounding factors (p value < 0.05 for all models). The addition of miRNA combinations to a model based on clinical variables improved the discrimination (area under the receiver-operating-characteristic curve (AUC) from 0.721 to 0.787). miRNAs correctly reclassified a significant proportion of patients with an integrated discrimination improvement (IDI) index of 0.101 and a net reclassification improvement (NRI) index of 0.650. Decision tree models used miRNA combinations to improve their classification accuracy. These results were reproduced using two proposed clinical cutoffs for epicardial fat burden. Internal validation corroborated the robustness of the models. In conclusion, plasma miRNAs constitute novel biomarkers of epicardial fat burden.


2013 ◽  
Vol 2 (2) ◽  
pp. 128 ◽  
Author(s):  
Sebastiaan RD Piers ◽  
Katja Zeppenfeld ◽  
◽  

Over the past decades important advances have been made in the field of ventricular tachycardia (VT) ablation, and as a result, VT ablation is now more widely being performed. The identification of ablation target sites still relies on electroanatomical substrate mapping, which is time-consuming, hampered by the intramural location of some scars and limited by epicardial fat. The potential of various imaging modalities to overcome these limitations have stimulated clinical electrophysiologists to perform studies on image integration during VT ablation. Imaging guidance has been used to identify, delineate and characterise the substrate for VT; to provide detailed anatomical information; to avoid ablation on coronary arteries; to delineate epicardial fat tissue; and to assess ablation lesions. In this review, reported applications and the potential advantages and limitations of different imaging modalities are discussed.


2019 ◽  
Vol 287 ◽  
pp. e71-e72
Author(s):  
D. De Gonzalo-Calvo ◽  
D. Vilades ◽  
P. Martínez-Camblor ◽  
A. Vea ◽  
L. Nasarre ◽  
...  

Heart Rhythm ◽  
2021 ◽  
Vol 18 (8) ◽  
pp. S149
Author(s):  
Brett Matthew Tomashitis ◽  
Zain Gowani ◽  
Leah John ◽  
Ahmadreza Karimianpour ◽  
Patrick Badertscher ◽  
...  

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