Piloting an automated clinical trial eligibility surveillance and provider alert system based on artificial

Stéphane M Meystre1, Paul M Heider2, Andrew Cates2

  • 1OnePlanet Research Center and imec, Toernooiveld 300, Nijmegen, 6525 EC, The Netherlands. stephane.meystre@imec.nl.

Abstract

Insights

Automating clinical trial eligibility surveillance using the TriAl Eligibility Surveillance (TAES) system can improve patient identification for studies. This system helps overcome enrollment challenges and speeds up the discovery of new therapies.

Area of Science:

  • Clinical Informatics
  • Biomedical Data Science
  • Health Services Research

Background:

  • Clinical trials are crucial for advancing new therapies but often face insufficient participant enrollment.
  • Low enrollment leads to trial delays, termination, and wasted resources, hindering the evaluation of new treatments.
  • Lack of awareness among study teams and providers about patient eligibility is a key barrier to recruitment.

Purpose of the Study:

  • To evaluate an automated system, the TriAl Eligibility Surveillance (TAES) system, for identifying patients eligible for clinical trials.
  • To test the hypothesis that natural language processing and machine learning can link trial descriptions to electronic health records (EHR) for eligibility matching.
  • To explore integration options for automated eligibility systems within clinical workflows and provider notification processes.

Main Methods:

  • Conducted an observational pilot study of the TAES prototype at the Medical University of South Carolina.
  • Selected five cardiovascular and cancer trials and created a reference standard of 21,974 clinical notes from 400 patients.
  • Developed a database using the OMOP common data model and investigated EHR integration and provider notification methods.

Main Results:

  • The TAES prototype demonstrated moderate accuracy in identifying eligible patients (recall up to 0.778, precision up to 1.000).
  • The pilot study successfully assessed integration options for the automated system within a healthcare system's clinical workflow.
  • The system's rapid implementation provided insights into practical deployment challenges and opportunities.

Conclusions:

  • Optimized TAES system has the potential to significantly improve the identification of eligible patients for clinical trials.
  • Automated surveillance can reduce the manual burden on research teams reviewing electronic health records (EHR).
  • Timely notifications can enhance physician awareness of patient eligibility, facilitating trial participation.

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