AI Article Synopsis

  • - The study aimed to identify relapse episodes in relapsing-remitting multiple sclerosis (MS) patients in the Lazio region using health administrative databases and validate the algorithm with data from MS treatment centers.
  • - A total of 6,094 MS patients were identified, with the algorithm confirming 2,242 patients as attending centers, yielding a positive predictive value (PPV) of 58.9% and a negative predictive value (NPV) of 76.3%.
  • - The algorithm, while not reliable for detecting relapses, could be useful for tracking healthcare utilization and identifying worsening patient health conditions.

Article Abstract

Background: Relapse is frequently considered an outcome measure of disease activity in relapsing-remitting multiple sclerosis (MS). The objectives of this study were to identify relapse episodes in patients with MS in the Lazio region using health administrative databases and to evaluate the validity of the algorithm using patients enrolled at MS treatment centers.

Methods: MS cases were identified in the period between January 1, 2006 and December 31, 2009 using data from regional Health Information Systems (HIS). An algorithm based on HIS was used to identify relapse episodes, and patients recruited at MS centers were used to validate the algorithm. Positive and negative predictive values (PPV, NPV) and the Cohen's kappa coefficient were calculated.

Results: The overall MS population identified through HIS consisted of 6,094 patients, of whom 67.1% were female and the mean age was 41.5. Among the MS patients identified by the algorithm, 2,242 attended the centers and 3,852 did not. The PPV was 58.9%, the NPV was 76.3%, and the kappa was 0.36.

Conclusions: The proposed algorithm based on health administrative databases does not seem to be able to reliably detect relapses; however, it may be a helpful tool to detect healthcare utilization, and therefore to identify the worsening condition of a patient's health.

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Source
http://dx.doi.org/10.1159/000479515DOI Listing

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