Literature DB >> 28096287

Prediction models for exacerbations in patients with COPD.

Beniamino Guerra1, Violeta Gaveikaite1, Camilla Bianchi1, Milo A Puhan1.   

Abstract

Personalised medicine aims to tailor medical decisions to the individual patient. A possible approach is to stratify patients according to the risk of adverse outcomes such as exacerbations in chronic obstructive pulmonary disease (COPD). Risk-stratified approaches are particularly attractive for drugs like inhaled corticosteroids or phosphodiesterase-4 inhibitors that reduce exacerbations but are associated with harms. However, it is currently not clear which models are best to predict exacerbations in patients with COPD. Therefore, our aim was to identify and critically appraise studies on models that predict exacerbations in COPD patients. Out of 1382 studies, 25 studies with 27 prediction models were included. The prediction models showed great heterogeneity in terms of number and type of predictors, time horizon, statistical methods and measures of prediction model performance. Only two out of 25 studies validated the developed model, and only one out of 27 models provided estimates of individual exacerbation risk, only three out of 27 prediction models used high-quality statistical approaches for model development and evaluation. Overall, none of the existing models fulfilled the requirements for risk-stratified treatment to personalise COPD care. A more harmonised approach to develop and validate high- quality prediction models is needed to move personalised COPD medicine forward.
Copyright ©ERS 2017.

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Year:  2017        PMID: 28096287     DOI: 10.1183/16000617.0061-2016

Source DB:  PubMed          Journal:  Eur Respir Rev        ISSN: 0905-9180


  26 in total

1.  Diffusing Capacity of Carbon Monoxide in Assessment of COPD.

Authors:  Aparna Balasubramanian; Neil R MacIntyre; Robert J Henderson; Robert L Jensen; Gregory Kinney; William W Stringer; Craig P Hersh; Russell P Bowler; Richard Casaburi; MeiLan K Han; Janos Porszasz; R Graham Barr; Barry J Make; Robert A Wise; Meredith C McCormack
Journal:  Chest       Date:  2019-07-25       Impact factor: 9.410

2.  Development and Validation of a Multivariable Prediction Model to Identify Acute Exacerbation of COPD and Its Severity for COPD Management in China (DETECT Study): A Multicenter, Observational, Cross-Sectional Study.

Authors:  Yan Yin; Jinfu Xu; Shaoxi Cai; Yahong Chen; Yan Chen; Manxiang Li; Zhiqiang Zhang; Jian Kang
Journal:  Int J Chron Obstruct Pulmon Dis       Date:  2022-09-05

3.  Clinical implementation of an algorithm for predicting exacerbations in patients with COPD in telemonitoring: a study protocol for a single-blinded randomized controlled trial.

Authors:  Pernille Heyckendorff Secher; Stine Hangaard; Thomas Kronborg; Lisa Korsbakke Emtekær Hæsum; Flemming Witt Udsen; Ole Hejlesen; Clara Bender
Journal:  Trials       Date:  2022-04-26       Impact factor: 2.728

4.  Identification of Sputum Biomarkers Predictive of Pulmonary Exacerbations in COPD.

Authors:  Charles R Esther; Wanda K O'Neal; Wayne H Anderson; Mehmet Kesimer; Agathe Ceppe; Claire M Doerschuk; Neil E Alexis; Annette T Hastie; R Graham Barr; Russell P Bowler; J Michael Wells; Elizabeth C Oelsner; Alejandro P Comellas; Yohannes Tesfaigzi; Victor Kim; Laura M Paulin; Christopher B Cooper; MeiLan K Han; Yvonne J Huang; Wassim W Labaki; Jeffrey L Curtis; Richard C Boucher
Journal:  Chest       Date:  2021-11-18       Impact factor: 10.262

5.  The Construction of Primary Screening Model and Discriminant Model for Chronic Obstructive Pulmonary Disease in Northeast China.

Authors:  Xiaomeng Li; Yuhao Guo; Wenyang Li; Wei Wang; Fang Zhang; Shanqun Li
Journal:  Int J Chron Obstruct Pulmon Dis       Date:  2020-07-31

6.  Validation of COPDPredict™: Unique Combination of Remote Monitoring and Exacerbation Prediction to Support Preventative Management of COPD Exacerbations.

Authors:  Neil Patel; Kathryn Kinmond; Pauline Jones; Pamela Birks; Monica A Spiteri
Journal:  Int J Chron Obstruct Pulmon Dis       Date:  2021-06-21

7.  Predicting Hospitalization Due to COPD Exacerbations in Swedish Primary Care Patients Using Machine Learning - Based on the ARCTIC Study.

Authors:  Björn Ställberg; Karin Lisspers; Kjell Larsson; Christer Janson; Mario Müller; Mateusz Łuczko; Bine Kjøller Bjerregaard; Gerald Bacher; Björn Holzhauer; Pankaj Goyal; Gunnar Johansson
Journal:  Int J Chron Obstruct Pulmon Dis       Date:  2021-03-16

8.  Prediction of Acute COPD Exacerbation in the Swiss Multicenter COPD Cohort Study (TOPDOCS) by Clinical Parameters, Medication Use, and Immunological Biomarkers.

Authors:  Simona Tabea Huebner; Simona Henny; Stéphanie Giezendanner; Thomas Brack; Martin Brutsche; Prashant Chhajed; Christian Clarenbach; Thomas Dieterle; Adrian Egli; Martin Frey; Ingmar Heijnen; Sarosh Irani; Noriane Andrina Sievi; Robert Thurnheer; Marten Trendelenburg; Malcolm Kohler; Anne Barbara Leuppi-Taegtmeyer; Joerg Daniel Leuppi
Journal:  Respiration       Date:  2021-12-23       Impact factor: 3.966

9.  Multiple Score Comparison: a network meta-analysis approach to comparison and external validation of prognostic scores.

Authors:  Sarah R Haile; Beniamino Guerra; Joan B Soriano; Milo A Puhan
Journal:  BMC Med Res Methodol       Date:  2017-12-21       Impact factor: 4.615

10.  Large-scale external validation and comparison of prognostic models: an application to chronic obstructive pulmonary disease.

Authors:  Beniamino Guerra; Sarah R Haile; Bernd Lamprecht; Ana S Ramírez; Pablo Martinez-Camblor; Bernhard Kaiser; Inmaculada Alfageme; Pere Almagro; Ciro Casanova; Cristóbal Esteban-González; Juan J Soler-Cataluña; Juan P de-Torres; Marc Miravitlles; Bartolome R Celli; Jose M Marin; Gerben Ter Riet; Patricia Sobradillo; Peter Lange; Judith Garcia-Aymerich; Josep M Antó; Alice M Turner; Meilan K Han; Arnulf Langhammer; Linda Leivseth; Per Bakke; Ane Johannessen; Toru Oga; Borja Cosio; Julio Ancochea-Bermúdez; Andres Echazarreta; Nicolas Roche; Pierre-Régis Burgel; Don D Sin; Joan B Soriano; Milo A Puhan
Journal:  BMC Med       Date:  2018-03-02       Impact factor: 8.775

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