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Completed

NCT Number: NCT03001713

CV Wizard: Does a Clinical Decision Support Tool Improve CVD Risk Factor Control in Safety Net Clinics?

This project aims to reduce disparities in cardiovascular disease (CVD) risk factor control and in rates of heart attacks and strokes among the low-income, racially / ethnically diverse Americans who receive primary care at safety net community health centers (CHCs). To achieve this important objective, the investigators will adapt a successful clinical decision support (CDS) system currently used in CVD care at several large, integrated health care systems, to meet the patient needs and workflow processes of 60 CHCs. The investigators will determine if use of this CDS improves CVD care, reduces disparities in CVD care and outcomes, and increases patient engagement in CVD treatment choices, in CHCs. Results of this randomized trial will help accelerate the translation of major investments in health informatics systems into substantial clinical benefits for large numbers of high-risk, low-income patients. Results will also provide a template for CVD care improvement that can be spread to other CHCs and extended to other clinical conditions.

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Key information

Age range

18 year and older

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

Kaiser Permanente Center for Health Research

Portland, Oregon, 97227, United States

About this study

The investigators seek to learn whether clinical decision support (CDS) systems from well-resourced care settings are effective in safety net community health centers (CHCs), and how to enhance such cross-setting implementation. Thus, the investigators propose a clinic-randomized, pragmatic trial of the uptake and impact of the 'CV Wizard' CDS tool in 60 CHCs that share a linked electronic health record. CV Wizard summarizes each patient's reversible CVD risks, generates prioritized, guideline-based care recommendations based on those risks, and shows these in a 'provider view' and a 'patient view,' enabling patient engagement. Use rates and satisfaction with this CDS were high in the large healthcare delivery system where it was developed and tested. The investigators will: study its impact in the CHC setting, assess uptake of the CDS system, assess strategies for integrating it into CHC workflows, and its impact on patients' CVD risk and risk factor management. The investigators hypothesize that this cutting-edge CDS will improve rates of guideline-based CVD preventive care in CHC patients, who experience disparities in CVD risk factors, care and outcomes. The 60 study clinics will be members of OCHIN, Inc., a non-profit health center-controlled network and national leader in health information technology for CHCs. OCHIN's leadership enthusiastically supports the proposed work and will help ensure that recruitment goals are met. The investigators will partner with stakeholders / medical leadership from OCHIN's member clinics at every step, via existing structures. This study addresses gaps in guideline-based CVD care in high-risk populations, using targeted, multi-level strategies; considers setting-specific needs; tests how CDS affects guideline implementation in community clinics; and uses technology to support patient engagement. Results will yield knowledge about providing CHCs with cutting-edge CDS, and associated impacts on CVD disparities. The innovative study is the second trial to implement CDS tools from private care settings in CHCs, and the first to do so with complex CDS tools that address a range of CVD risk management guidelines, make prioritized care recommendations, and facilitate point-of-care patient engagement. Results could lead to substantial improvements in CVD prevention, care, and outcomes in CHCs nationwide.

Our overarching aims are to:

Aim 1. Conduct a clinic-randomized trial of the impact of an evidence-based point-of-care CDS system on (i) overall CVD risk scores, and (ii) control of individual CVD risks (blood pressure; HbA1c, lipid levels; aspirin use; smoking; body mass index), among high CVD risk CHC adult patients. H1: High CVD risk patients in Arm 1 CHCs will have significantly lower overall CVD risk scores over a 12-month post-index visit period, compared to those in Arm 2 CHCs. H2: High CVD risk patients in Arm 1 CHCs who have poor control of specific CVD risk factors at an index visit will have significantly better control of those factors over a 12 month post-index visit period, compared to those in Arm 2 CHCs. H3: Disparities in specific CVD risk factor control between CHC patients' versus national CVD risk factor control rates will be significantly reduced by 18 months post-implementation in each Arm (secondary analysis).

Aim 2. Develop and hone need-based implementation support protocols to help Arm 1 CHCs implement the CV Wizard CDS system into their standard workflows; assess whether use of the protocols developed for Arm 1 CHCs accelerates implementation and adoption of the CDS system in the Arm 2 CHCs. H4: CDS uptake into CHC workflows will be significantly faster in Arm 2 CHCs than in Arm 1 CHCs.

Aim 3. Conduct a mixed methods process evaluation, guided by the Technology Acceptance Model, to identify and address patient, provider, and delivery system barriers to uptake / impact of this CDS in CHCs.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Adult clinic attendees with high CVD risk, including women and minorities
  • Persons aged 18-21 with high-CVD risk
  • Some subjects with mental health conditions of various types

Exclusion criteria

-Children aged younger than 18

Note: The investigators are not enrolling patients for this clinic-randomized study, but rather studying the uptake and impact of a set of EHR-based clinical decision support tools into regular care at the participating clinics. In this clinic-randomized trial, the intervention / randomization are clinic level.

Treatment and study plan

CV WIZARD

Behavioral

This project will determine whether a sophisticated CDS system will be effective in CHCs. The innovative, point-of-care, web-based CDS system we will test ("CV Wizard") generates a guideline-based prioritized summary of each patient's major CVD risk factors, then presents patient and provider 'views' of this summary, with individualized care recommendations.

Primary outcomes

  1. 1-year Change in 10-year CVD Risk

    Time frame: 12 months

    10-year CVD risk was estimated using the American College of Cardiology/American Heart Association pooled risk equations, which include age, race and ethnicity, sex, systolic BP, total cholesterol level, high-density lipoprotein cholesterol level, and diabetes, smoking, and antihypertensive medication status.

  2. 1-year Change in Reversible CVD Risk

    Time frame: 12 months

    Reversible CVD risk was calculated as follows: Standardized equations estimated the potential reduction in CVD risk if a patient's uncontrolled risk factors reached evidence-based thresholds. Change was calculated by subtracting reversible risk at follow-up from that at index visit; negative values represent favorable changes.

Sponsors and collaborators

Lead sponsor

Kaiser Permanente

Other

Collaborators

  • HealthPartners Institute
  • OCHIN, Inc.

Registry information

Official study title

CV Wizard: Does a Prioritized, Point-of-Care Clinical Decision Support Tool Improve Guideline-Based CVD Risk Factor Control in Safety Net Clinics?

Acronym: CV_WIZARD

Important dates

Study start
2018
Primary completion
2020
Study completion
2024
First posted
Dec 23, 2016
Registry last updated
Feb 11, 2025

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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