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Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study

Objectives To determine if coronary computed tomographic angiography enhances prediction of perioperative risk in patients before non-cardiac surgery and to assess the preoperative coronary anatomy in patients who experience a myocardial infarction after non-cardiac surgery. Design Prospective cohor...

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Autores principales: Sheth, Tej, Chan, Matthew, Butler, Craig, Chow, Benjamin, Tandon, Vikas, Nagele, Peter, Mitha, Ayesha, Mrkobrada, Marko, Szczeklik, Wojciech, Faridah, Yang, Biccard, Bruce, Stewart, Lori K, Heels-Ansdell, Diane, Devereaux, P J
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BMJ Publishing Group Ltd. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4413859/
https://www.ncbi.nlm.nih.gov/pubmed/25902738
http://dx.doi.org/10.1136/bmj.h1907
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author Sheth, Tej
Chan, Matthew
Butler, Craig
Chow, Benjamin
Tandon, Vikas
Nagele, Peter
Mitha, Ayesha
Mrkobrada, Marko
Szczeklik, Wojciech
Faridah, Yang
Biccard, Bruce
Stewart, Lori K
Heels-Ansdell, Diane
Devereaux, P J
author_facet Sheth, Tej
Chan, Matthew
Butler, Craig
Chow, Benjamin
Tandon, Vikas
Nagele, Peter
Mitha, Ayesha
Mrkobrada, Marko
Szczeklik, Wojciech
Faridah, Yang
Biccard, Bruce
Stewart, Lori K
Heels-Ansdell, Diane
Devereaux, P J
author_sort Sheth, Tej
collection PubMed
description Objectives To determine if coronary computed tomographic angiography enhances prediction of perioperative risk in patients before non-cardiac surgery and to assess the preoperative coronary anatomy in patients who experience a myocardial infarction after non-cardiac surgery. Design Prospective cohort study. Setting 12 centers in eight countries. Participants 955 patients with, or at risk of, atherosclerotic disease who underwent non-cardiac surgery. Interventions Coronary computed tomographic angiography was performed preoperatively; clinicians were blinded to the results unless left main disease was suspected. Results were classified as normal, non-obstructive (<50% stenosis), obstructive (one or two vessels with ≥50% stenosis), or extensive obstructive (≥50% stenosis in two vessels including the proximal left anterior descending artery, three vessels, or left main). Main outcome measure Composite of cardiovascular death and non-fatal myocardial infarction within 30 days after surgery (primary outcome). This was the dependent variable in Cox regression. The independent variables were scores on the revised cardiac risk index and findings on coronary computed tomographic angiography. Results The primary outcome occurred in 74 patients (8%). The model that included both scores on the revised cardiac risk index and findings on coronary computed tomographic angiography showed that coronary computed tomographic angiography provided independent prognostic information (P=0.014; C index=0.66). The adjusted hazard ratios were 1.51 (95% confidence interval 0.45 to 5.10) for non-obstructive disease; 2.05 (0.62 to 6.74) for obstructive disease; and 3.76 (1.12 to 12.62) for extensive obstructive disease. For the model with coronary computed tomographic angiography compared with the model based on the revised cardiac risk index alone, with 30 day risk categories of <5%, 5-15%, and >15% for the primary outcome, the results of risk reclassification indicate that in a sample of 1000 patients that coronary computed tomographic angiography would have resulted appropriately in 17 net patients receiving a higher risk estimation among the 77 patients who would have experienced the primary outcome (P<0.001). Coronary computed tomographic angiography, however, would have resulted inappropriately in 98 net patients receiving a higher risk estimation, among the 923 patients who would not have experienced the primary outcome (P<0.001). Among patients who had a perioperative myocardial infarction, preoperative coronary anatomy showed extensive obstructive disease in 31% (22/71), obstructive disease in 41% (29/71), non-obstructive disease in 24% (17/71), and normal findings in 4% (3/71). Conclusions Though findings on coronary computed tomographic angiography can improve estimation of risk for patients who will experience perioperative cardiovascular death or myocardial infarction, findings are more than five times as likely to lead to an inappropriate overestimation of risk among patients who will not experience these outcomes. Perioperative myocardial infarction occurs across the spectrum of coronary artery disease, suggesting that there could be several pathophysiologic mechanisms.
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spelling pubmed-44138592015-05-11 Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study Sheth, Tej Chan, Matthew Butler, Craig Chow, Benjamin Tandon, Vikas Nagele, Peter Mitha, Ayesha Mrkobrada, Marko Szczeklik, Wojciech Faridah, Yang Biccard, Bruce Stewart, Lori K Heels-Ansdell, Diane Devereaux, P J BMJ Research Objectives To determine if coronary computed tomographic angiography enhances prediction of perioperative risk in patients before non-cardiac surgery and to assess the preoperative coronary anatomy in patients who experience a myocardial infarction after non-cardiac surgery. Design Prospective cohort study. Setting 12 centers in eight countries. Participants 955 patients with, or at risk of, atherosclerotic disease who underwent non-cardiac surgery. Interventions Coronary computed tomographic angiography was performed preoperatively; clinicians were blinded to the results unless left main disease was suspected. Results were classified as normal, non-obstructive (<50% stenosis), obstructive (one or two vessels with ≥50% stenosis), or extensive obstructive (≥50% stenosis in two vessels including the proximal left anterior descending artery, three vessels, or left main). Main outcome measure Composite of cardiovascular death and non-fatal myocardial infarction within 30 days after surgery (primary outcome). This was the dependent variable in Cox regression. The independent variables were scores on the revised cardiac risk index and findings on coronary computed tomographic angiography. Results The primary outcome occurred in 74 patients (8%). The model that included both scores on the revised cardiac risk index and findings on coronary computed tomographic angiography showed that coronary computed tomographic angiography provided independent prognostic information (P=0.014; C index=0.66). The adjusted hazard ratios were 1.51 (95% confidence interval 0.45 to 5.10) for non-obstructive disease; 2.05 (0.62 to 6.74) for obstructive disease; and 3.76 (1.12 to 12.62) for extensive obstructive disease. For the model with coronary computed tomographic angiography compared with the model based on the revised cardiac risk index alone, with 30 day risk categories of <5%, 5-15%, and >15% for the primary outcome, the results of risk reclassification indicate that in a sample of 1000 patients that coronary computed tomographic angiography would have resulted appropriately in 17 net patients receiving a higher risk estimation among the 77 patients who would have experienced the primary outcome (P<0.001). Coronary computed tomographic angiography, however, would have resulted inappropriately in 98 net patients receiving a higher risk estimation, among the 923 patients who would not have experienced the primary outcome (P<0.001). Among patients who had a perioperative myocardial infarction, preoperative coronary anatomy showed extensive obstructive disease in 31% (22/71), obstructive disease in 41% (29/71), non-obstructive disease in 24% (17/71), and normal findings in 4% (3/71). Conclusions Though findings on coronary computed tomographic angiography can improve estimation of risk for patients who will experience perioperative cardiovascular death or myocardial infarction, findings are more than five times as likely to lead to an inappropriate overestimation of risk among patients who will not experience these outcomes. Perioperative myocardial infarction occurs across the spectrum of coronary artery disease, suggesting that there could be several pathophysiologic mechanisms. BMJ Publishing Group Ltd. 2015-04-22 /pmc/articles/PMC4413859/ /pubmed/25902738 http://dx.doi.org/10.1136/bmj.h1907 Text en © Sheth et al 2015 http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 4.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/4.0/.
spellingShingle Research
Sheth, Tej
Chan, Matthew
Butler, Craig
Chow, Benjamin
Tandon, Vikas
Nagele, Peter
Mitha, Ayesha
Mrkobrada, Marko
Szczeklik, Wojciech
Faridah, Yang
Biccard, Bruce
Stewart, Lori K
Heels-Ansdell, Diane
Devereaux, P J
Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
title Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
title_full Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
title_fullStr Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
title_full_unstemmed Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
title_short Prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
title_sort prognostic capabilities of coronary computed tomographic angiography before non-cardiac surgery: prospective cohort study
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4413859/
https://www.ncbi.nlm.nih.gov/pubmed/25902738
http://dx.doi.org/10.1136/bmj.h1907
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