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A Simplified Risk Scoring System to Predict Mortality in Cardiovascular Intensive Care Unit
Hendry Purnasidha Bagaswoto1, Nahar Taufiq1, Budi Yuli Setianto1
1Cardiology and Vascular Medicine Department of Medical, Public Health, and Nursing Faculty Universitas Gadjah Mada/Sardjito General Hospital Yogyakarta, Jl. Farmako, Senolowo, Sekip Utara, Kec. Depok, Kabupaten Sleman, Daerah Istimewa Yogyakarta 55281, Indonesia.
Insights
This study developed a simplified scoring system to predict mortality in cardiovascular intensive care unit (CICU) patients. The new tool identifies key predictors, offering improved risk assessment for better patient outcomes.
Area of Science:
- Cardiology
- Intensive Care Medicine
- Medical Informatics
Background:
- Cardiovascular intensive care units (CICUs) face high global mortality rates.
- Accurate prediction of inpatient mortality requires simplified scoring systems.
- Existing methods may not adequately capture mortality risk in CICU settings.
Purpose of the Study:
- To identify independent predictors of in-hospital mortality among CICU patients.
- To develop and validate a novel, simplified scoring system for mortality risk prediction in CICU.
- To enhance risk stratification and inform clinical decision-making in cardiovascular critical care.
Main Methods:
- Retrospective analysis of 595 consecutive patients from the Sardjito Cardiovascular Intensive Care (SCVIC) registry (January-November 2017).
- Multivariate logistic regression analysis of demographic data, risk factors, comorbidities, and laboratory results.
- Development of two mortality risk scoring models: a probability model and a cut-off model.
Main Results:
- Independent predictors of mortality included age ≥ 60 years, pneumonia, ventilator use, elevated serum glutamate-pyruvate transaminase, elevated creatinine, and ejection fraction < 40%.
- A cut-off scoring system (scores 3-9) predicted mortality with 80% sensitivity and 74% specificity.
- A probability scoring system demonstrated a direct correlation between higher scores and increased mortality risk.
Conclusions:
- The developed scoring system effectively predicts in-hospital mortality in CICU patients.
- The scoring system demonstrates favorable sensitivity and specificity, aiding in risk stratification.
- This tool can support clinical management and improve outcomes for critically ill cardiovascular patients.
Background:
Cardiovascular intensive care unit (CICU) is an area with high mortality rates globally. The prediction of inpatients mortality risk at CICU needs a simplified scoring systems. Hence, this study aims to analyze the predictors for in-hospital mortality of patients whom hospitalized at CICU of Sardjito General Hospital Yogyakarta and to create a mortality risk score based on the results of this analysis.
Methods:
Data were obtained from SCIENCE (Sardjito Cardiovascular Intensive Care) registry. Outcomes of 595 consecutive patients (mean age 59.92 ± 13.0 years) from January to November 2017 were recorded retrospectively. Demography, risk factor, comorbidities, laboratory result and other examinations were analyzed by multivariate logistic regression to create two models of scoring system (probability and cut-off model) to predict in-hospital mortality of any cause.
Results:
A total of 595 subjects were included in this research; death was found in 55 patients (9.2%). Multiple logistic regression analysis showed some variables that became independent predictor of mortality, i.e. age ≥ 60 years, pneumonia, the use of ventilator machine, and increased of serum glutamate-pyruvate transaminase level, an increased of creatinine level and an ejection fraction < 40%. Receiver operating characteristic (ROC) curve analysis showed a cut-off model scoring system with score 3 to 9 predicting mortality compared to score 0 - 2. This model yielded sensitivity of 80% and specificity 74%. While the probability scoring system (score 0 to 9) showed that the higher the score, the higher the mortality probability (e.g. the mortality of patient with score 2 is 5.27%; while the mortality of patient with score 8 is 87.5%).
Conclusions:
Scoring system derived from this study can be used to predict the in-hospital mortality of patients whom hospitalized in our CICU and show a favorable sensitivity and specificity result.
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