Applications of large language models in cardiovascular disease: a systematic review

José Ferreira Santos1,2, Ricardo Ladeiras-Lopes3,4, Francisca Leite2,5

  • 1Cardiology Department, Setúbal, Hospital da Luz Setúbal, Luz Saúde, Estrada Nacional 10, Km 37, 2900-722 Setúbal, Portugal.

Insights

Large language models (LLMs) show promise in cardiovascular disease (CVD) patient education and clinical support. While generally safe and accurate for common questions, further validation is needed for complex diagnostic and treatment applications.

Area of Science:

  • Artificial Intelligence in Medicine
  • Cardiovascular Disease Research
  • Health Informatics

Background:

  • Cardiovascular disease (CVD) is a leading global cause of death.
  • Large language models (LLMs) present opportunities for improving patient education and clinical decision-making in healthcare.

Purpose of the Study:

  • To systematically review and evaluate the applications of LLMs in cardiovascular disease (CVD) management.
  • To explore the current implementation of LLMs across the spectrum of CVD, from prevention to treatment.

Main Methods:

  • A systematic review adhering to Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) guidelines.
  • Comprehensive literature search of PubMed to identify relevant studies on LLM applications in CVD.
  • Prioritization of pragmatic and practical LLM applications in CVD care.

Main Results:

  • Thirty-five observational studies were included, focusing on LLM applications in CVD prevention (54%) and established CVD (46%).
  • ChatGPT was the most frequently evaluated LLM (91% of studies).
  • LLMs were primarily used for patient education (72%) and clinical decision support (17%), demonstrating accurate and safe responses to patient queries, though occasional misinformation was noted.

Conclusions:

  • LLMs hold significant potential for enhancing CVD prevention and treatment strategies.
  • Current evidence supports LLMs as a valuable resource for answering common patient questions about CVD.
  • Further research and validation are essential for integrating LLMs into individualized patient care, including diagnosis and treatment recommendations.

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