A Predictive Model Based on a New CI-AKI Definition to Predict Contrast Induced Nephropathy in Patients With Coronary

Hanjun Mo1, Fang Ye2, Danxia Chen1

  • 1Department of General Practice, Zhongshan Hospital, Fudan University, Shanghai, China.

Insights

This study identified key predictors for contrast-induced nephropathy (CIN) in coronary artery disease patients with normal renal function, developing a new predictive model. A simplified risk score aids in identifying high-risk individuals for better clinical management.

Area of Science:

  • Cardiology
  • Nephrology
  • Medical Informatics

Background:

  • Contrast-induced nephropathy (CIN) is a significant complication following intravascular contrast media administration.
  • New contrast-induced acute kidney injury (CI-AKI) criteria were established in 2020, necessitating updated risk factor assessment.
  • Patients with coronary artery disease (CAD) and relatively normal renal function (NRF) require specific predictive models for CIN.

Purpose of the Study:

  • To identify potential risk factors for CIN in CAD patients with NRF using the latest CI-AKI criteria.
  • To develop and validate a predictive model for CI-AKI in this patient cohort.
  • To create a simplified risk score for practical clinical application.

Main Methods:

  • Retrospective analysis of 2,009 patients undergoing coronary angiography or intervention at Zhongshan Hospital (May 2019-April 2020).
  • Univariate and multivariate logistic regression to determine predictive factors.
  • Stepwise and machine learning (ML) methods for model construction, evaluated by AUC and calibration curves.

Main Results:

  • The incidence of CIN was 3.2% (old criteria) and 1.2% (new criteria).
  • Independent predictors identified: baseline uric acid, creatine kinase-MB, and log (N-terminal pro-brain natriuretic peptide) levels.
  • The stepwise model demonstrated superior predictive performance (AUC=0.816) compared to the ML model (AUC=0.668); a risk score stratified patients into low and high-risk groups.

Conclusions:

  • This study presents the first CI-AKI predictive model based on the new criteria for CAD patients with NRF.
  • Identified predictors (uric acid, CK-MB, NT-proBNP) offer insights into CIN development in this population.
  • The developed risk score is a practical tool for identifying high-risk patients, potentially improving clinical outcomes.

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