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Accepted for/Published in: JMIR Medical Informatics

Date Submitted: Mar 31, 2021
Open Peer Review Period: Mar 31, 2021 - May 26, 2021
Date Accepted: Jul 25, 2021
(closed for review but you can still tweet)

The final, peer-reviewed published version of this preprint can be found here:

Leveraging National Claims and Hospital Big Data: Cohort Study on a Statin-Drug Interaction Use Case

Bannay A, Bories M, Le Corre P, Riou C, Lemordant P, Van Hille P, Chazard E, Dode X, Cuggia M, Bouzillé G

Leveraging National Claims and Hospital Big Data: Cohort Study on a Statin-Drug Interaction Use Case

JMIR Med Inform 2021;9(12):e29286

DOI: 10.2196/29286

PMID: 34898457

PMCID: 8713098

Warning: This is an author submission that is not peer-reviewed or edited. Preprints - unless they show as "accepted" - should not be relied on to guide clinical practice or health-related behavior and should not be reported in news media as established information.

Leveraging national claim and hospital big data integration: a cohort study on a statin-drug interaction use case.

  • Aurélie Bannay; 
  • Mathilde Bories; 
  • Pascal Le Corre; 
  • Christine Riou; 
  • Pierre Lemordant; 
  • Pascal Van Hille; 
  • Emmanuel Chazard; 
  • Xavier Dode; 
  • Marc Cuggia; 
  • Guillaume Bouzillé

ABSTRACT

Background:

Linking different sources of medical data is a promising approach to analyse care trajectories. The INSHARE project aim was to provide the blueprint of a technological platform that facilitates integration, sharing and reuse of data from two sources: the eHOP clinical data warehouse (CDW) of Rennes academic hospital, and a dataset extracted from the French national claim data warehouse (SNDS).

Objective:

Using a pharmacovigilance use case based on statin consumption and statin-drug interactions, the present work demonstrates how the INSHARE platform can support big data analytical tasks in the health field.

Methods:

A Spark distributed cluster-computing framework was used for the record linkage procedure and all the analyses. A semi-deterministic record-linkage method based on the variables common between the chosen data sources was developed to identify all patients discharged after at least one hospital stay at Rennes academic hospital between 2015 and 2017. The use case study focused on a cohort of patients treated with statins prescribed by their general practitioner and/or during their hospital stay.

Results:

The whole process (record-linkage procedure and use case analyses) required 88 minutes. Among the 161,532 and 164,316 patients from the SNDS dataset and eHOP CDW, respectively, 159,495 patients were successfully linked (98.7% and 97.0% of patients from SNDS and eHOP CDW, respectively). Among the 16,806 patients with at least one statin delivery, 8,293 patients started the consumption before and continued during the hospital stay, 6,382 patients stopped statin consumption at hospital admission, and 2,131 patients initiated taking statins in hospital. Statin-drug interactions occurred more frequently during hospitalization than in the community (36.4% and 22.2%, respectively). Only 121 patients had the most severe level of statin-drug interaction. Hospital stay burden (length of stay and in-hospital mortality) was more severe in patients with statin-drug interactions during hospitalization.

Conclusions:

This study demonstrates the added value of combining and re-using clinical and claim data to provide large-scale measures of drug-drug interaction prevalence and care pathways outside hospitals. It builds the path to move the current healthcare system towards a Learning Health System using knowledge generated from research on real-world health data.


 Citation

Please cite as:

Bannay A, Bories M, Le Corre P, Riou C, Lemordant P, Van Hille P, Chazard E, Dode X, Cuggia M, Bouzillé G

Leveraging National Claims and Hospital Big Data: Cohort Study on a Statin-Drug Interaction Use Case

JMIR Med Inform 2021;9(12):e29286

DOI: 10.2196/29286

PMID: 34898457

PMCID: 8713098

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