Data-driven models for the prediction of coronary atherosclerotic plaque progression/regression

Carlos A Bulant1,2, Gustavo A Boroni1,2, Ronald Bass3

  • 1Instituto PLADEMA, Universidad Nacional del Centro de la Provincia de Buenos Aires (UNICEN), Tandil, Buenos Aires, Argentina.

Scientific Reports
|January 17, 2024
PubMed

Insights

This study developed a machine learning model using intravascular ultrasound (IVUS) imaging to predict coronary artery plaque changes after rosuvastatin therapy. The model accurately forecasts plaque progression or regression, aiding patient risk stratification.

Area of Science:

  • Cardiovascular Imaging and Intervention
  • Biomedical Data Science
  • Artificial Intelligence in Medicine

Background:

  • Coronary artery disease (CAD) involves atherosclerotic plaque buildup, potentially leading to myocardial ischemia.
  • Intravascular ultrasound (IVUS) provides detailed coronary vessel and plaque characterization.
  • Predicting individual patient response to plaque-modifying therapies remains a challenge.

Purpose of the Study:

  • To develop a framework for processing IVUS data and extracting geometric descriptors.
  • To create and validate a machine learning model predicting percent atheroma volume changes using baseline IVUS and clinical data.
  • To enable personalized risk stratification for coronary plaque progression.

Main Methods:

  • Post hoc analysis of the IBIS-4 study using 140 arteries from 81 patients.
  • Processing of baseline and follow-up IVUS contours to extract geometric features.
  • Development and validation of an XGBoost regression model with feature selection and 5-fold cross-validation.

Main Results:

  • The XGBoost model achieved 0.70 accuracy and 0.41 Mathews correlation coefficient when predicting changes based on plaque burden differences.
  • A model using baseline plaque burden criteria yielded 0.60 accuracy and 0.23 Mathews correlation coefficient.
  • The model successfully predicted plaque progression/regression in patients treated with rosuvastatin over 13 months.

Conclusions:

  • A novel machine learning approach can predict coronary plaque volume changes using IVUS and clinical data.
  • This method facilitates patient stratification for coronary plaque progression risk.
  • The findings offer a new tool for personalized cardiology treatment strategies.

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