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Published on: February 26, 2013
Prediction of underlying atrial fibrillation in patients with a cryptogenic stroke: results from the NOR-FIB Study
B Ratajczak-Tretel1,2, A Tancin Lambert1,2, R Al-Ani3
1Department of Neurology, Østfold Hospital Trust, Grålum, Norway.
Insights
Detecting atrial fibrillation (AF) in cryptogenic stroke (CS) is crucial. While age is the main predictor, certain clinical risk scores like STAF and SURF show promise for optimizing AF detection in stroke patients.
Area of Science:
- Cardiology
- Neurology
- Medical Diagnostics
Background:
- Atrial fibrillation (AF) detection and treatment are vital for reducing recurrence risk in cryptogenic stroke (CS) patients with underlying arrhythmias.
- The NOR-FIB study investigated predictors and diagnostic scores for AF in CS.
Purpose of the Study:
- To assess predictors of AF in CS patients.
- To evaluate the utility of existing AF-predicting scores in the NOR-FIB Study population.
Main Methods:
- An international prospective observational multicenter study (NOR-FIB) monitored CS and cryptogenic transient ischemic attack (TIA) patients using insertable cardiac monitors (ICM).
- The study tested the predictive performance of multiple AF scores: AS5F, Brown ESUS-AF, CHA₂DS₂-VASc, CHASE-LESS, HATCH, HAVOC, STAF, and SURF.
Main Results:
- Univariate analysis identified age, hypertension, left ventricle hypertrophy, dyslipidemia, antiarrhythmic drug use, valvular heart disease, and specific neuroimaging findings as associated with higher AF likelihood.
- Age emerged as the sole independent predictor of AF in multivariate analysis.
- All tested AF scores were significantly higher in AF patients compared to non-AF patients. STAF and SURF demonstrated the highest sensitivity and negative predictive values, with AS5F and SURF achieving an AUC > 0.7.
Conclusions:
- Clinical risk scores can guide personalized evaluation strategies for CS patients.
- Enhanced awareness and utilization of AF-predicting scores can optimize arrhythmia detection pathways within stroke units.
Background:
Atrial fibrillation (AF) detection and treatment are key elements to reduce recurrence risk in cryptogenic stroke (CS) with underlying arrhythmia. The purpose of the present study was to assess the predictors of AF in CS and the utility of existing AF-predicting scores in The Nordic Atrial Fibrillation and Stroke (NOR-FIB) Study.
Method:
The NOR-FIB study was an international prospective observational multicenter study designed to detect and quantify AF in CS and cryptogenic transient ischaemic attack (TIA) patients monitored by the insertable cardiac monitor (ICM), and to identify AF-predicting biomarkers. The utility of the following AF-predicting scores was tested: AS5F, Brown ESUS-AF, CHA2DS2-VASc, CHASE-LESS, HATCH, HAVOC, STAF and SURF.
Results:
In univariate analyses increasing age, hypertension, left ventricle hypertrophy, dyslipidaemia, antiarrhythmic drugs usage, valvular heart disease, and neuroimaging findings of stroke due to intracranial vessel occlusions and previous ischemic lesions were associated with a higher likelihood of detected AF. In multivariate analysis, age was the only independent predictor of AF. All the AF-predicting scores showed significantly higher score levels for AF than non-AF patients. The STAF and the SURF scores provided the highest sensitivity and negative predictive values, while the AS5F and SURF reached an area under the receiver operating curve (AUC) > 0.7.
Conclusion:
Clinical risk scores may guide a personalized evaluation approach in CS patients. Increasing awareness of the usage of available AF-predicting scores may optimize the arrhythmia detection pathway in stroke units.
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