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一种连续测量临床实践指南依从性的新方法。

A novel method for continuous measurements of clinical practice guideline adherence.

作者信息

Ebben Kees C W J, de Kroon Cornelis D, Schmeink Channa E, van der Hel Olga L, van Vegchel Thijs, Moncada-Torres Arturo, de Hingh Ignace H J T, van der Werf Jurrian

机构信息

Department of Research and Development Netherlands Comprehensive Cancer Organization (IKNL) Utrecht The Netherlands.

Department of Obstetrics and Gynecology Leiden University Medical Center Leiden The Netherlands.

出版信息

Learn Health Syst. 2023 Sep 7;7(4):e10384. doi: 10.1002/lrh2.10384. eCollection 2023 Oct.

Abstract

INTRODUCTION

Clinical practice guidelines (hereafter 'guidelines') are crucial in providing evidence-based recommendations for physicians and multidisciplinary teams to make informed decisions regarding diagnostics and treatment in various diseases, including cancer. While guideline implementation has been shown to reduce (unwanted) variability and improve outcome of care, monitoring of adherence to guidelines remains challenging. Real-world data collected from cancer registries can provide a continuous source for monitoring adherence levels. In this work, we describe a novel structured approach to guideline evaluation using real-world data that enables continuous monitoring. This method was applied to endometrial cancer patients in the Netherlands and implemented through a prototype web-based dashboard that enables interactive usage and supports various analyses.

METHOD

The guideline under study was parsed into clinical decision trees (CDTs) and an information standard was drawn up. A dataset from the Netherlands Cancer Registry (NCR) was used and data items from both instruments were mapped. By comparing guideline recommendations with real-world data an adherence classification was determined. The developed prototype can be used to identify and prioritize potential topics for guideline updates.

RESULTS

CDTs revealed 68 data items for recording in an information standard. Thirty-two data items from the NCR were mapped onto information standard data items. Four CDTs could sufficiently be populated with NCR data.

CONCLUSION

The developed methodology can evaluate a guideline to identify potential improvements in recommendations and the success of the implementation strategy. In addition, it is able to identify patient and disease characteristics that influence decision-making in clinical practice. The method supports a cyclical process of developing, implementing and evaluating guidelines and can be scaled to other diseases and settings. It contributes to a learning healthcare cycle that integrates real-world data with external knowledge.

摘要

引言

临床实践指南(以下简称“指南”)对于为医生和多学科团队提供循证建议至关重要,有助于他们就包括癌症在内的各种疾病的诊断和治疗做出明智决策。虽然指南的实施已被证明可减少(不必要的)变异性并改善护理结果,但监测对指南的依从性仍然具有挑战性。从癌症登记处收集的真实世界数据可为监测依从水平提供持续来源。在这项工作中,我们描述了一种使用真实世界数据进行指南评估的新颖结构化方法,该方法能够进行持续监测。此方法应用于荷兰的子宫内膜癌患者,并通过基于网络的原型仪表板实施,该仪表板支持交互式使用并能进行各种分析。

方法

将所研究的指南解析为临床决策树(CDT)并制定信息标准。使用了来自荷兰癌症登记处(NCR)的数据集,并将两种工具中的数据项进行了映射。通过将指南建议与真实世界数据进行比较来确定依从性分类。所开发的原型可用于识别指南更新的潜在主题并确定其优先级。

结果

CDT显示有68个数据项需记录在信息标准中。NCR的32个数据项被映射到信息标准数据项上。四个CDT可以用NCR数据充分填充。

结论

所开发的方法可以评估指南,以识别建议中的潜在改进和实施策略的成功之处。此外,它能够识别影响临床实践中决策的患者和疾病特征。该方法支持指南制定、实施和评估的循环过程,并且可以扩展到其他疾病和环境。它有助于将真实世界数据与外部知识相结合的学习型医疗循环。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d461/10582230/efb4b88a766a/LRH2-7-e10384-g004.jpg

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