Expectation of clinical decision support systems: a survey study among nephrologist end-users

Fruzsina Kotsis1,2, Helena Bächle1, Michael Altenbuchinger3

  • 1Institute of Genetic Epidemiology, Faculty of Medicine and Medical Center - University of Freiburg, Freiburg, Germany.

Insights

Nephrologists in Germany show limited current use of clinical decision support systems (CDSS) but express high interest in their potential for managing chronic kidney disease (CKD). They desire features like CKD progression prediction to improve patient care.

Area of Science:

  • Medical Informatics
  • Nephrology
  • Health Services Research

Background:

  • Chronic kidney disease (CKD) presents significant public health challenges, necessitating advanced tools for monitoring and personalized treatment.
  • Effective management of CKD requires integrating diverse data, including clinical parameters, biomarkers, and drug information, with medical expertise.
  • Clinical decision support systems (CDSS) offer potential solutions for improving patient management in nephrology, yet awareness and implementation in Germany are poorly understood.

Purpose of the Study:

  • To investigate the current awareness, attitudes, and expectations of nephrologists in Germany regarding CDSS.
  • To identify specific CDSS features, such as adverse event prediction algorithms, that would be valuable for daily outpatient nephrology practice.

Main Methods:

  • A survey of 54 German nephrologists was conducted using a 38-item questionnaire, administered via telephone or online.
  • The survey covered experiences with CDSS, expectations for helpful features, evaluation of adverse event prediction algorithms, and ethical considerations.
  • Data were collected using REDCap and analyzed with Stata SE 15.1 and Excel, employing descriptive statistical analyses.

Main Results:

  • A high percentage of nephrologists (81.2%) reported poor current use of CDSS, primarily due to a lack of awareness.
  • Despite low current usage, 79% of participants believed CDSS could be helpful in managing CKD patients, with a strong willingness to adopt them.
  • The most desired CDSS features included prediction of CKD progression (97.8%) and in-silico simulations of disease progression (97.7%).

Conclusions:

  • German nephrologists demonstrate a significant unmet need and high willingness to integrate CDSS into their practice for improved CKD management.
  • Adverse event prediction, particularly for CKD progression, is a highly sought-after functionality in CDSS.
  • Further research and development of user-friendly CDSS tailored to nephrology needs are warranted to bridge the gap between potential and current utilization.
Abstract

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