Evaluating Drug Effectiveness for Antihypertensives in Heart Failure Prognosis: Leveraging Composite Clinical

Shaika Chowdhury1, Yongbin Chen2, Xiao Ma3

  • 1Department of Artificial Intelligence and Informatics Research, Mayo Clinic, Rochester, MN, USA.

ACM-BCB ... ... : the ... ACM Conference on Bioinformatics, Computational Biology and Biomedicine. ACM Conference on Bioinformatics, Computational Biology and Biomedicine
|January 13, 2026
PubMed

Insights

Electronic health records (EHR) can predict antihypertensive drug effectiveness in heart failure patients. This study used EHR data and deep learning to achieve 97% accuracy in predicting drug response.

Area of Science:

  • Cardiology
  • Medical Informatics
  • Pharmacogenomics

Background:

  • Arterial hypertension is a primary risk factor for heart failure.
  • Current antihypertensive drug selection faces challenges due to interpatient response variability.
  • Pharmacogenetic studies are costly and difficult to implement clinically.

Purpose of the Study:

  • To leverage electronic health records (EHR) for predicting antihypertensive drug effectiveness in heart failure.
  • To develop and evaluate deep learning models for personalized antihypertensive therapy.

Main Methods:

  • Utilized clinical events and biomarkers from EHR data of ~9500 heart failure patients.
  • Developed annotation strategies to identify antihypertensive effectiveness from EHR sequences.
  • Trained and evaluated supervised deep learning classifiers on annotated EHR data.

Main Results:

  • Achieved an F1 performance of 0.97 with the trained deep learning classifier.
  • Demonstrated the effectiveness of EHR data in predicting drug response across two antihypertensive classes.

Conclusions:

  • Electronic health records represent an underutilized resource for antihypertensive effectiveness studies.
  • Deep learning models trained on EHR data can accurately predict patient response to antihypertensive medications.
  • This approach offers a cost-effective alternative to pharmacogenetic studies for guiding therapy.

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