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The accuracy of predicting cardiovascular death based on one compared to several albuminuria values
Gudrun Hatlen1, Solfrid Romundstad2, Stein I Hallan1
11] Department of Cancer Research and Molecular Medicine, Faculty of Medicine, Norwegian University of Science and Technology, Trondheim, Norway [2] Division of Nephrology, Department of Medicine, St Olav University Hospital, Trondheim, Norway.
Insights
One urine sample is sufficient for predicting cardiovascular death risk using albumin-creatinine ratio (ACR) above 1.7 mg/mmol. For lower ACR levels, multiple samples improve risk prediction accuracy for cardiovascular mortality.
Area of Science:
- Nephrology
- Cardiology
- Epidemiology
Background:
- Albuminuria is a known predictor of cardiovascular (CV) mortality.
- Significant day-to-day variability in albuminuria exists, with no consensus on optimal urine sample quantity for risk prediction.
Purpose of the Study:
- To determine the optimal number of urine samples for predicting CV death using albumin-creatinine ratio (ACR).
- To assess if multiple ACR measurements improve CV death prediction models.
Main Methods:
- Analysis of 9158 adults from the Nord-Trøndelag Health Study (Second HUNT Study) over 13 years.
- Comparison of predictive models for CV death using 1 versus 3 albumin-creatinine ratio (ACR) measurements.
- Assessment of model discrimination, calibration, and reclassification, and survival analyses.
Main Results:
- Using ACR as a continuous variable showed no improvement in prediction with multiple samples.
- One sample was sufficient for ACR levels > 1.7 mg/mmol for CV mortality prediction.
- For ACR levels ≤ 1.7 mg/mmol, models with 3 samples showed better fit, and 2-3 samples were needed for statistically significant CV mortality association.
Conclusions:
- Multiple urine sampling does not enhance CV death prediction when using ACR as a continuous variable.
- For specific ACR thresholds (≤ 1.0 mg/mmol), additional urine samples are necessary for robust risk prediction.
- The number of samples required depends on the ACR level and whether it's used as a continuous or dichotomized variable.
Abstract:
Albuminuria is a well-documented predictor of cardiovascular (CV) mortality. However, day-to-day variability is substantial, and there is no consensus on the number of urine samples required for risk prediction. To resolve this we followed 9158 adults from the population-based Nord-Trøndelag Health Study for 13 years (Second HUNT Study). The predictive performance of models for CV death based on Framingham variables plus 1 versus 3 albumin-creatinine ratio (ACR) was assessed in participants who provided 3 urine samples. There was no improvement in discrimination, calibration, or reclassification when using ACR as a continuous variable. Difference in Akaike information criterion indicated an uncertain improvement in overall fit for the model with the mean of 3 urine samples. Criterion analyses on dichotomized albuminuria information sustained 1 sample as sufficient for ACR levels down to 1.7 mg/mmol. At lower levels, models with 3 samples had a better overall fit. Likewise, in survival analyses, 1 sample was enough to show a significant association to CV mortality for ACR levels above 1.7 mg/mmol (adjusted hazard ratio 1.37; 95% CI 1.15-1.63). For lower ACR levels, 2 or 3 positive urine samples were needed for significance. Thus, multiple urine sampling did not improve CV death prediction when using ACR as a continuous variable. For cutoff ACR levels of 1.0 mg/mmol or less, additional urine samples were required, and associations were stronger with increasing number of samples.
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