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An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation

AIMS: Effective and efficient education and patient engagement are fundamental to improve health outcomes in heart failure (HF). The use of artificial intelligence (AI) to enable more effective delivery of education is becoming more widespread for a range of chronic conditions. We sought to determin...

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Autores principales: Zisis, Georgios, Carrington, Melinda J, Oldenburg, Brian, Whitmore, Kristyn, Lay, Maria, Huynh, Quan, Neil, Christopher, Ball, Jocasta, Marwick, Thomas H
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9707948/
https://www.ncbi.nlm.nih.gov/pubmed/36713108
http://dx.doi.org/10.1093/ehjdh/ztab085
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author Zisis, Georgios
Carrington, Melinda J
Oldenburg, Brian
Whitmore, Kristyn
Lay, Maria
Huynh, Quan
Neil, Christopher
Ball, Jocasta
Marwick, Thomas H
author_facet Zisis, Georgios
Carrington, Melinda J
Oldenburg, Brian
Whitmore, Kristyn
Lay, Maria
Huynh, Quan
Neil, Christopher
Ball, Jocasta
Marwick, Thomas H
author_sort Zisis, Georgios
collection PubMed
description AIMS: Effective and efficient education and patient engagement are fundamental to improve health outcomes in heart failure (HF). The use of artificial intelligence (AI) to enable more effective delivery of education is becoming more widespread for a range of chronic conditions. We sought to determine whether an avatar-based HF-app could improve outcomes by enhancing HF knowledge and improving patient quality of life and self-care behaviour. METHODS AND RESULTS: In a randomized controlled trial of patients admitted for acute decompensated HF (ADHF), patients at high risk (≥33%) for 30-day hospital readmission and/or death were randomized to usual care or training with the HF-app. From August 2019 up until December 2020, 200 patients admitted to the hospital for ADHF were enrolled in the Risk-HF study. Of the 72 at high-risk, 36 (25 men; median age 81.5 years; 9.5 years of education; 15 in NYHA Class III at discharge) were randomized into the intervention arm and were offered education involving an HF-app. Whilst 26 (72%) could not use the HF-app, younger patients [odds ratio (OR) 0.89, 95% confidence interval (CI) 0.82–0.97; P < 0.01] and those with a higher education level (OR 1.58, 95% CI 1.09–2.28; P = 0.03) were more likely to enrol. Of those enrolled, only 2 of 10 patients engaged and completed ≥70% of the program, and 6 of the remaining 8 who did not engage were readmitted. CONCLUSIONS: Although AI-based education is promising in chronic conditions, our study provides a note of caution about the barriers to enrolment in critically ill, post-acute, and elderly patients.
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spelling pubmed-97079482023-01-27 An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation Zisis, Georgios Carrington, Melinda J Oldenburg, Brian Whitmore, Kristyn Lay, Maria Huynh, Quan Neil, Christopher Ball, Jocasta Marwick, Thomas H Eur Heart J Digit Health Original Articles AIMS: Effective and efficient education and patient engagement are fundamental to improve health outcomes in heart failure (HF). The use of artificial intelligence (AI) to enable more effective delivery of education is becoming more widespread for a range of chronic conditions. We sought to determine whether an avatar-based HF-app could improve outcomes by enhancing HF knowledge and improving patient quality of life and self-care behaviour. METHODS AND RESULTS: In a randomized controlled trial of patients admitted for acute decompensated HF (ADHF), patients at high risk (≥33%) for 30-day hospital readmission and/or death were randomized to usual care or training with the HF-app. From August 2019 up until December 2020, 200 patients admitted to the hospital for ADHF were enrolled in the Risk-HF study. Of the 72 at high-risk, 36 (25 men; median age 81.5 years; 9.5 years of education; 15 in NYHA Class III at discharge) were randomized into the intervention arm and were offered education involving an HF-app. Whilst 26 (72%) could not use the HF-app, younger patients [odds ratio (OR) 0.89, 95% confidence interval (CI) 0.82–0.97; P < 0.01] and those with a higher education level (OR 1.58, 95% CI 1.09–2.28; P = 0.03) were more likely to enrol. Of those enrolled, only 2 of 10 patients engaged and completed ≥70% of the program, and 6 of the remaining 8 who did not engage were readmitted. CONCLUSIONS: Although AI-based education is promising in chronic conditions, our study provides a note of caution about the barriers to enrolment in critically ill, post-acute, and elderly patients. Oxford University Press 2021-11-13 /pmc/articles/PMC9707948/ /pubmed/36713108 http://dx.doi.org/10.1093/ehjdh/ztab085 Text en © The Author(s) 2021. Published by Oxford University Press on behalf of the European Society of Cardiology. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Articles
Zisis, Georgios
Carrington, Melinda J
Oldenburg, Brian
Whitmore, Kristyn
Lay, Maria
Huynh, Quan
Neil, Christopher
Ball, Jocasta
Marwick, Thomas H
An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
title An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
title_full An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
title_fullStr An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
title_full_unstemmed An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
title_short An m-Health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
title_sort m-health intervention to improve education, self-management, and outcomes in patients admitted for acute decompensated heart failure: barriers to effective implementation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9707948/
https://www.ncbi.nlm.nih.gov/pubmed/36713108
http://dx.doi.org/10.1093/ehjdh/ztab085
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