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M. Piscione

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Review Open access Jul 2026

The Role of Echocardiography in the Assessment of Epicardial Adipose Tissue: A Systematic Review and Meta-analysis

Epicardial adipose tissue (EAT) is a metabolically active visceral fat depot implicated in cardiometabolic and cardiovascular (CV) disease. Although cardiac magnetic resonance (CMR) and cardiac computed tomography (cCT) enable accurate volumetric quantification of EAT, their cost, limited availability, and—particularly for cCT—radiation exposure, restrict their use in preventive and longitudinal settings. Transthoracic echocardiography (TTE) is widely accessible and radiation-free, but its validity as a surrogate of volumetric EAT assessment and its broader clinical role remain incompletely defined. To systematically synthesize disease-specific evidence linking TTE-derived EAT thickness with major CV phenotypes and to quantitatively assess its association with volumetric EAT measured by CMR or cCT. A systematic search of PubMed and PubMed Central (January 2000–December 2025) identified adult studies evaluating associations between TTE-derived EAT thickness and coronary artery disease (CAD), atrial fibrillation (AF), or heart failure with preserved ejection fraction (HFpEF), and correlations between TTE-derived EAT thickness and CMR- or cCT-derived EAT volume. Correlation coefficients were pooled using a random-effects model after Fisher’s z-transformation. An exploratory meta-analysis assessed associations with major adverse cardiovascular events (MACE). Seventeen disease-specific studies consistently demonstrated associations between increased TTE-derived EAT thickness and CAD severity, AF burden and recurrence, and adverse HFpEF phenotypes. Five validation studies were included; four comparing TTE with CMR were pooled, yielding a moderate-to-strong correlation (r = 0.77, 95% CI 0.65–0.93; p < 0.01; I² = 92.9%). Several studies reported associations between TTE- EAT thickness and cCT-derived EAT parameters. However, only one cCT study met our predefined criteria for inclusion in the quantitative validation analysis, whereas the remaining cCT studies were retained in the qualitative synthesis because of substantial methodological heterogeneity in cCT acquisition, segmentation approaches, and outcome definitions. Exploratory prognostic analysis suggested a directional association between increased TTE-derived EAT thickness and MACE. TTE-derived EAT thickness correlates with volumetric EAT and is consistently associated with major CV phenotypes. Standardization and prospective outcome-driven validation are required before routine clinical implementation. This graphical abstract summarizes the relationship between transthoracic echocardiography–derived epicardial adipose tissue (EAT) thickness and volumetric EAT assessment obtained by cardiac computed tomography or cardiac magnetic resonance imaging. While cross-sectional imaging techniques provide accurate three-dimensional quantification of EAT, their use is limited in preventive and longitudinal settings. Echocardiography offers a pragmatic, radiation-free alternative that allows rapid assessment of EAT. The figure highlights the significant association between one-dimensional echocardiographic measurements and volumetric EAT, as well as the clinical implications for large-scale screening and follow-up. Methodological heterogeneity and the need for standardization are emphasized as key limitations for clinical translation. This graphical abstract summarizes the relationship between transthoracic echocardiography–derived epicardial adipose tissue (EAT) thickness and volumetric EAT assessment obtained by cardiac computed tomography or cardiac magnetic resonance imaging. While cross-sectional imaging techniques provide accurate three-dimensional quantification of EAT, their use is limited in preventive and longitudinal settings. Echocardiography offers a pragmatic, radiation-free alternative that allows rapid assessment of EAT. The figure highlights the significant association between one-dimensional echocardiographic measurements and volumetric EAT, as well as the clinical implications for large-scale screening and follow-up. Methodological heterogeneity and the need for standardization are emphasized as key limitations for clinical translation.

Barbara Pala, M. Piscione, F. Cribari et al. · 0 citations
Review Open access Aug 2026

Diagnostic Value and Operational Recommendations for Late Iodine Enhancement and ECV Quantification in Single-Energy Computed Tomography: A Narrative Review

While traditionally focused on coronary anatomy, cardiac computed tomography now enables non-invasive myocardial tissue characterization. By evaluating late iodine enhancement (LIE) and extracellular volume (ECV), single-energy CT (SECT) provides a valuable alternative to cardiac magnetic resonance for assessing ischemic and non-ischemic pathologies. However, clinical implementation of SECT faces technical challenges, primarily the low contrast-to-noise ratio (CNR) of iodine and the reliance on image subtraction for ECV quantification, both of which increase radiation exposure and susceptibility to spatial misregistration. To address these issues, protocol optimization is essential. Evidence-based recommendations include using low tube voltages to shift the X-ray spectrum closer to the iodine K-edge, paired with high reference tube currents. Additionally, delayed acquisition timing should be tailored to specific pathological targets to account for differences in contrast kinetics, and advanced iterative or deep learning image reconstructions should be implemented to mitigate noise. Optimized SECT demonstrates diagnostic and prognostic utility in conditions like acute myocardial infarction, hypertrophic cardiomyopathy, cardiac amyloidosis, and left ventricular thrombus detection. While spectral imaging represents the future, optimizing SECT through technical adjustments and standardized training is crucial for integrating myocardial characterization into routine workflows.

Simone Steffani, M. Piscione, D. Gaudio et al. · 0 citations

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