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Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()

INTRODUCTION: Image noise can negatively affect the overall quality of coronary computed tomography angiography (CCTA). OBJECTIVES: The purpose of this study was to evaluate the relationship between image noise and fat volumes in the chest wall. We also aimed to compare these with other patient-spec...

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Autores principales: Abazid, Rami M., Smettei, Osama A., Almeman, Ahmad, Sayed, Sawsan, Alsaqqa, Hanaa, Abdelmageed, Salma M., Alharbi, Fahad J., Alhabib, Abdullah M., Al-Mallah, Mouaz H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6289940/
https://www.ncbi.nlm.nih.gov/pubmed/30559578
http://dx.doi.org/10.1016/j.jsha.2018.11.001
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author Abazid, Rami M.
Smettei, Osama A.
Almeman, Ahmad
Sayed, Sawsan
Alsaqqa, Hanaa
Abdelmageed, Salma M.
Alharbi, Fahad J.
Alhabib, Abdullah M.
Al-Mallah, Mouaz H.
author_facet Abazid, Rami M.
Smettei, Osama A.
Almeman, Ahmad
Sayed, Sawsan
Alsaqqa, Hanaa
Abdelmageed, Salma M.
Alharbi, Fahad J.
Alhabib, Abdullah M.
Al-Mallah, Mouaz H.
author_sort Abazid, Rami M.
collection PubMed
description INTRODUCTION: Image noise can negatively affect the overall quality of coronary computed tomography angiography (CCTA). OBJECTIVES: The purpose of this study was to evaluate the relationship between image noise and fat volumes in the chest wall. We also aimed to compare these with other patient-specific predictors of image noise, such as body weight (BW) and body mass index (BMI). METHODS: We undertook a cross-sectional, single-center study. A tube voltage of 100 kV was used for patients with BW <85 kg and 120 kV for BW ≥85 kg. The image noise in the aortic root, single-slice fat volume (SFV) at the level of the left main coronary artery and the total fat volume of the chest (TFV) were analyzed. RESULTS: A total of 132 consecutive patients were enrolled (mean age ± standard deviation, 51 ± 11 years; 64% male). The mean image noise was 30.5 ± 11 Hounsfield units (HU). We found that patients with image noise >30 HU had significantly higher SFV (75 ± 33 vs. 51 ± 24, p < 0.0001) and TFV (2206 ± 927 vs. 1815 ± 737, p < 0.01) compared with patients having noise ≤30 HU, whereas BW and BMI showed no significant difference (78 ± 13 vs. 81 ± 14, p < 0.34) and (28.7 ± 4.7 vs. 26.8 ± 3.8, p < 0.19), respectively. Linear regression analysis showed that image noise has better correlation with SFV (R = 0.399; p < 0.0001); and TFV (R = 0, p < 0.009) than BMI (R = 0.154, p < 0.039) and BW (R = –0.102, p = 0.12). CONCLUSIONS: Fat volume measurements of the chest wall can predict CCTA image noise better than other patient-specific predictors, such as BW and BMI.
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spelling pubmed-62899402018-12-17 Fat volume measurements as a predictor of image noise in coronary computed tomography angiography() Abazid, Rami M. Smettei, Osama A. Almeman, Ahmad Sayed, Sawsan Alsaqqa, Hanaa Abdelmageed, Salma M. Alharbi, Fahad J. Alhabib, Abdullah M. Al-Mallah, Mouaz H. J Saudi Heart Assoc Original Article INTRODUCTION: Image noise can negatively affect the overall quality of coronary computed tomography angiography (CCTA). OBJECTIVES: The purpose of this study was to evaluate the relationship between image noise and fat volumes in the chest wall. We also aimed to compare these with other patient-specific predictors of image noise, such as body weight (BW) and body mass index (BMI). METHODS: We undertook a cross-sectional, single-center study. A tube voltage of 100 kV was used for patients with BW <85 kg and 120 kV for BW ≥85 kg. The image noise in the aortic root, single-slice fat volume (SFV) at the level of the left main coronary artery and the total fat volume of the chest (TFV) were analyzed. RESULTS: A total of 132 consecutive patients were enrolled (mean age ± standard deviation, 51 ± 11 years; 64% male). The mean image noise was 30.5 ± 11 Hounsfield units (HU). We found that patients with image noise >30 HU had significantly higher SFV (75 ± 33 vs. 51 ± 24, p < 0.0001) and TFV (2206 ± 927 vs. 1815 ± 737, p < 0.01) compared with patients having noise ≤30 HU, whereas BW and BMI showed no significant difference (78 ± 13 vs. 81 ± 14, p < 0.34) and (28.7 ± 4.7 vs. 26.8 ± 3.8, p < 0.19), respectively. Linear regression analysis showed that image noise has better correlation with SFV (R = 0.399; p < 0.0001); and TFV (R = 0, p < 0.009) than BMI (R = 0.154, p < 0.039) and BW (R = –0.102, p = 0.12). CONCLUSIONS: Fat volume measurements of the chest wall can predict CCTA image noise better than other patient-specific predictors, such as BW and BMI. Elsevier 2019-01 2018-11-17 /pmc/articles/PMC6289940/ /pubmed/30559578 http://dx.doi.org/10.1016/j.jsha.2018.11.001 Text en © 2018 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Abazid, Rami M.
Smettei, Osama A.
Almeman, Ahmad
Sayed, Sawsan
Alsaqqa, Hanaa
Abdelmageed, Salma M.
Alharbi, Fahad J.
Alhabib, Abdullah M.
Al-Mallah, Mouaz H.
Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
title Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
title_full Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
title_fullStr Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
title_full_unstemmed Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
title_short Fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
title_sort fat volume measurements as a predictor of image noise in coronary computed tomography angiography()
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6289940/
https://www.ncbi.nlm.nih.gov/pubmed/30559578
http://dx.doi.org/10.1016/j.jsha.2018.11.001
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