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Journal of critical care · Jun 2015
Multicenter Study Observational StudyEvolution and prognosis of long intensive care unit stay patients suffering a deterioration: A multicenter study.
- Alberto Hernández-Tejedor, Lluís Cabré-Pericas, María Cruz Martín-Delgado, Ana María Leal-Micharet, Alejandro Algora-Weber, and EPIPUSE study group.
- Unidad de Cuidados Críticos, Hospital Universitario Fundación Alcorcón, 28922 Alcorcón, Madrid, Spain. Electronic address: albertohmed@hotmail.com.
- J Crit Care. 2015 Jun 1;30(3):654.e1-7.
PurposeThe prognosis of a patient who deteriorates during a prolonged intensive care unit (ICU) stay is difficult to predict. We analyze the prognostic value of the serialized Sequential Organ Failure Assessment (SOFA) score and other variables in the early days after a complication and to build a new predictive score.Materials And MethodsEPIPUSE (Evolución y pronóstico de los pacientes con ingreso prolongado en UCI que sufren un empeoramiento, Evolution and prognosis of long intensive care unit stay patients suffering a deterioration) study is a prospective, observational study during a 3-month recruitment period in 75 Spanish ICUs. We focused on patients admitted in the ICU for 7 days or more with complications of adverse events that involve organ dysfunction impairment. Demographics, clinical variables, and serialized SOFA after a supervening clinical deterioration were recorded. Univariate and multivariate analyses were performed, and a predictive model was created with the most discriminating variables.ResultsWe included 589 patients who experienced 777 cases of severe complication or adverse event. The entire sample was randomly divided into 2 subsamples, one for development purposes (528 cases) and the other for validation (249 cases). The predictive model maximizing specificity is calculated by minimum SOFA + 2 * cardiovascular risk factors + 2 * history of any oncologic disease or immunosuppressive treatment + 3 * dependence for basic activities of daily living. The area under the receiver operating characteristic curve is 0.82. A 14-point cutoff has a positive predictive value of 100% (92.7%-100%) and negative predictive value of 51% (46.4%-55.5%) for death.ConclusionsEPIPUSE model can predict mortality with a specificity and positive predictive value of 99% in some groups of patients.Copyright © 2015 Elsevier Inc. All rights reserved.
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