Houston Methodist cardiovascular learning health system (CVD-LHS) registry: Methods for development and

Khurram Nasir1,2, Rakesh Gullapelli2, Juan C Nicolas2

  • 1Division of Cardiovascular Prevention and Wellness, Department of Cardiology, Houston Methodist DeBakey Heart & Vascular Center, Houston, TX, United States.

Insights

A new registry system effectively identifies patients with Atherosclerotic Cardiovascular Disease (ASCVD) and those at risk using automated data extraction. This facilitates population health management and cardiovascular research by creating a comprehensive, data-driven patient database.

Area of Science:

  • Cardiovascular Medicine
  • Health Informatics
  • Population Health Management

Background:

  • Atherosclerotic Cardiovascular Disease (ASCVD) poses a significant public health challenge.
  • Effective management requires systematic identification and tracking of at-risk and established patient populations.
  • Current methods for patient identification can be manual and labor-intensive.

Purpose of the Study:

  • To establish a system-wide registry of patients with at-risk and established ASCVD within a large healthcare system.
  • To leverage automated data extraction for identifying patient burden, determinants, and spectrum of risk.
  • To inform population health management and advance cardiovascular research and care through data-driven insights.

Main Methods:

  • Retrospective, multi-center cohort analysis of adult outpatients (June 2016 - December 2022).
  • Development of an Electronic Medical Record (EMR)-based registry using a common framework for automated data extraction.
  • Integration of clinical data with social determinants of health from external sources; utilization of SQL Server Management Studio for data processing.

Main Results:

  • Successful development of a real-time, deidentified, auto-updated EMR-based registry (Houston Methodist Cardiovascular Disease Learning Health System - HM CVD-LHS).
  • Registry contains approximately 450 variables, including demographics, diagnoses, labs, medications, and comorbidities.
  • Identified 113,022 (9.6%) ASCVD patients out of 1,171,768 adults, with detailed analysis of patient subgroups.

Conclusions:

  • The HM CVD-LHS registry successfully lists patients with established ASCVD and those at risk.
  • Automated data extraction from EMRs provides a feasible alternative to manual chart abstraction.
  • This framework supports knowledge inference and the creation of specialized patient registries.
Abstract

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