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Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease

AIM: To test accuracy and reproducibility of gestalt to predict obstructive coronary artery disease (CAD) in patients with acute chest pain. METHODS: We studied individuals who were consecutively admitted to our Chest Pain Unit. At admission, investigators performed a standardized interview and reco...

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Autores principales: das Virgens, Cláudio Marcelo Bittencourt, Lemos Jr, Laudenor, Noya-Rabelo, Márcia, Carvalhal, Manuela Campelo, Cerqueira Junior, Antônio Maurício dos Santos, Lopes, Fernanda Oliveira de Andrade, de Sá, Nicole Cruz, Suerdieck, Jéssica Gonzalez, de Souza, Thiago Menezes Barbosa, Correia, Vitor Calixto de Almeida, Sodré, Gabriella Sant'Ana, da Silva, André Barcelos, Alexandre, Felipe Kalil Beirão, Ferreira, Felipe Rodrigues Marques, Correia, Luís Cláudio Lemos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Baishideng Publishing Group Inc 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5368673/
https://www.ncbi.nlm.nih.gov/pubmed/28400920
http://dx.doi.org/10.4330/wjc.v9.i3.241
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author das Virgens, Cláudio Marcelo Bittencourt
Lemos Jr, Laudenor
Noya-Rabelo, Márcia
Carvalhal, Manuela Campelo
Cerqueira Junior, Antônio Maurício dos Santos
Lopes, Fernanda Oliveira de Andrade
de Sá, Nicole Cruz
Suerdieck, Jéssica Gonzalez
de Souza, Thiago Menezes Barbosa
Correia, Vitor Calixto de Almeida
Sodré, Gabriella Sant'Ana
da Silva, André Barcelos
Alexandre, Felipe Kalil Beirão
Ferreira, Felipe Rodrigues Marques
Correia, Luís Cláudio Lemos
author_facet das Virgens, Cláudio Marcelo Bittencourt
Lemos Jr, Laudenor
Noya-Rabelo, Márcia
Carvalhal, Manuela Campelo
Cerqueira Junior, Antônio Maurício dos Santos
Lopes, Fernanda Oliveira de Andrade
de Sá, Nicole Cruz
Suerdieck, Jéssica Gonzalez
de Souza, Thiago Menezes Barbosa
Correia, Vitor Calixto de Almeida
Sodré, Gabriella Sant'Ana
da Silva, André Barcelos
Alexandre, Felipe Kalil Beirão
Ferreira, Felipe Rodrigues Marques
Correia, Luís Cláudio Lemos
author_sort das Virgens, Cláudio Marcelo Bittencourt
collection PubMed
description AIM: To test accuracy and reproducibility of gestalt to predict obstructive coronary artery disease (CAD) in patients with acute chest pain. METHODS: We studied individuals who were consecutively admitted to our Chest Pain Unit. At admission, investigators performed a standardized interview and recorded 14 chest pain features. Based on these features, a cardiologist who was blind to other clinical characteristics made unstructured judgment of CAD probability, both numerically and categorically. As the reference standard for testing the accuracy of gestalt, angiography was required to rule-in CAD, while either angiography or non-invasive test could be used to rule-out. In order to assess reproducibility, a second cardiologist did the same procedure. RESULTS: In a sample of 330 patients, the prevalence of obstructive CAD was 48%. Gestalt’s numerical probability was associated with CAD, but the area under the curve of 0.61 (95%CI: 0.55-0.67) indicated low level of accuracy. Accordingly, categorical definition of typical chest pain had a sensitivity of 48% (95%CI: 40%-55%) and specificity of 66% (95%CI: 59%-73%), yielding a negligible positive likelihood ratio of 1.4 (95%CI: 0.65-2.0) and negative likelihood ratio of 0.79 (95%CI: 0.62-1.02). Agreement between the two cardiologists was poor in the numerical classification (95% limits of agreement = -71% to 51%) and categorical definition of typical pain (Kappa = 0.29; 95%CI: 0.21-0.37). CONCLUSION: Clinical judgment based on a combination of chest pain features is neither accurate nor reproducible in predicting obstructive CAD in the acute setting.
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spelling pubmed-53686732017-04-11 Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease das Virgens, Cláudio Marcelo Bittencourt Lemos Jr, Laudenor Noya-Rabelo, Márcia Carvalhal, Manuela Campelo Cerqueira Junior, Antônio Maurício dos Santos Lopes, Fernanda Oliveira de Andrade de Sá, Nicole Cruz Suerdieck, Jéssica Gonzalez de Souza, Thiago Menezes Barbosa Correia, Vitor Calixto de Almeida Sodré, Gabriella Sant'Ana da Silva, André Barcelos Alexandre, Felipe Kalil Beirão Ferreira, Felipe Rodrigues Marques Correia, Luís Cláudio Lemos World J Cardiol Retrospective Cohort Study AIM: To test accuracy and reproducibility of gestalt to predict obstructive coronary artery disease (CAD) in patients with acute chest pain. METHODS: We studied individuals who were consecutively admitted to our Chest Pain Unit. At admission, investigators performed a standardized interview and recorded 14 chest pain features. Based on these features, a cardiologist who was blind to other clinical characteristics made unstructured judgment of CAD probability, both numerically and categorically. As the reference standard for testing the accuracy of gestalt, angiography was required to rule-in CAD, while either angiography or non-invasive test could be used to rule-out. In order to assess reproducibility, a second cardiologist did the same procedure. RESULTS: In a sample of 330 patients, the prevalence of obstructive CAD was 48%. Gestalt’s numerical probability was associated with CAD, but the area under the curve of 0.61 (95%CI: 0.55-0.67) indicated low level of accuracy. Accordingly, categorical definition of typical chest pain had a sensitivity of 48% (95%CI: 40%-55%) and specificity of 66% (95%CI: 59%-73%), yielding a negligible positive likelihood ratio of 1.4 (95%CI: 0.65-2.0) and negative likelihood ratio of 0.79 (95%CI: 0.62-1.02). Agreement between the two cardiologists was poor in the numerical classification (95% limits of agreement = -71% to 51%) and categorical definition of typical pain (Kappa = 0.29; 95%CI: 0.21-0.37). CONCLUSION: Clinical judgment based on a combination of chest pain features is neither accurate nor reproducible in predicting obstructive CAD in the acute setting. Baishideng Publishing Group Inc 2017-03-26 2017-03-26 /pmc/articles/PMC5368673/ /pubmed/28400920 http://dx.doi.org/10.4330/wjc.v9.i3.241 Text en ©The Author(s) 2016. Published by Baishideng Publishing Group Inc. All rights reserved. http://creativecommons.org/licenses/by-nc/4.0/ Open-Access: This article is an open-access article which was selected by an in-house editor and fully peer-reviewed by external reviewers. It is 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 Retrospective Cohort Study
das Virgens, Cláudio Marcelo Bittencourt
Lemos Jr, Laudenor
Noya-Rabelo, Márcia
Carvalhal, Manuela Campelo
Cerqueira Junior, Antônio Maurício dos Santos
Lopes, Fernanda Oliveira de Andrade
de Sá, Nicole Cruz
Suerdieck, Jéssica Gonzalez
de Souza, Thiago Menezes Barbosa
Correia, Vitor Calixto de Almeida
Sodré, Gabriella Sant'Ana
da Silva, André Barcelos
Alexandre, Felipe Kalil Beirão
Ferreira, Felipe Rodrigues Marques
Correia, Luís Cláudio Lemos
Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
title Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
title_full Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
title_fullStr Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
title_full_unstemmed Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
title_short Accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
title_sort accuracy of gestalt perception of acute chest pain in predicting coronary artery disease
topic Retrospective Cohort Study
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5368673/
https://www.ncbi.nlm.nih.gov/pubmed/28400920
http://dx.doi.org/10.4330/wjc.v9.i3.241
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