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Published on: January 28, 2020
Predicting new-onset HF in patients undergoing coronary or peripheral angiography: results from the Catheter Sampled
Nasrien E Ibrahim1, Asya Lyass2,3, Hanna K Gaggin1,2
1Cardiology Division, Massachusetts General Hospital, Boston, MA, USA.
Insights
Identifying patients at high risk for heart failure (HF) is crucial for early intervention. A clinical and biomarker strategy accurately predicts incident HF in patients undergoing angiography, improving risk stratification.
Area of Science:
- Cardiology
- Biomarkers
- Predictive Modeling
Background:
- Patients undergoing coronary/peripheral angiography are at high risk for incident heart failure (HF).
- Early identification of at-risk patients can facilitate timely interventions.
- Predictive models are needed to stratify risk for new-onset HF.
Purpose of the Study:
- To identify independent predictors of incident HF in patients without prevalent HF.
- To develop and validate a clinical and biomarker-based strategy for predicting incident HF.
- To assess the impact of HF medications on the predictive value of the risk score.
Main Methods:
- A registry of 1251 patients undergoing angiography was analyzed.
- Cox proportional hazard models identified predictors of incident HF.
- Clinical variables (age, sex, heart rate, AFib/flutter, hypertension) and biomarkers (NT-proBNP, ST2) were evaluated.
- Model discrimination was assessed using c-statistics and validated internally.
Main Results:
- 177 (18%) patients developed new-onset HF during follow-up.
- Independent predictors included age, male sex, heart rate, history of atrial fibrillation/flutter, hypertension, NT-proBNP, and ST2.
- The model incorporating biomarkers achieved a c-statistic of 0.76, significantly improving prediction.
- A risk score effectively stratified patients by time to incident HF.
Conclusions:
- A combined clinical and biomarker strategy accurately predicts incident HF in patients undergoing angiography.
- This strategy enhances risk stratification for a high-risk population.
- Further research may explore interventions based on this predictive model.
Aims:
Methods to identify patients at risk for incident HF would be welcome as such patients might benefit from earlier interventions.
Methods And Results:
From a registry of 1251 patients referred for coronary and/or peripheral angiography, we sought to identify independent predictors of incident HF during follow-up and develop a clinical and biomarker strategy to predict this outcome. There were 991 patients free of prevalent HF at baseline. Cox proportional hazard models were developed to predict adjudicated diagnosis of incident HF. Model discrimination and reclassification were evaluated. At follow-up, 177 (18%) developed new-onset HF. Independent predictors of new-onset HF included five clinical variables (age, male sex, heart rate, history of atrial fibrillation/flutter, and history of hypertension) and two biomarkers (amino-terminal pro-B type natriuretic peptide and ST2). The c-statistic for the model without biomarkers was 0.69; including biomarkers increased the c-statistic to 0.76 (P < 0.001). A score was developed from the model. Patients in the highest score quintile had shortest time to incident HF compared with lower quintiles (log-rank P < 0.001). Following 100 bootstrap iterations, internal validation was confirmed with Harrell's c-statistic of 0.77. Use of angiotensin-converting enzyme inhibitors, angiotensin receptor blockers, and beta-blockers at enrollment was associated with substantial attenuation of predictive value of the risk score.
Conclusions:
Patients undergoing coronary/peripheral angiographic procedures are a population at high risk for incident HF. We describe an accurate clinical and biomarker strategy for predicting incident HF and possibly intervening in such patients (NCT00842868).
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