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子宫内膜异位症的筛查:对可支持早期诊断的筛查措施的范围综述。

Screening for endometriosis: A scoping review of screening measures that could support early diagnosis.

作者信息

Rosenbloom Brittany N, Di Renna Tania, Nella Adriano, Leonardi Mathew, Tiong Maggie, Lee Seungmin, Bosma Rachael

机构信息

Women's College Hospital, Toronto, ON, Canada.

University of Toronto, Toronto, ON, Canada.

出版信息

BMC Womens Health. 2025 Jul 16;25(1):353. doi: 10.1186/s12905-025-03866-1.

Abstract

BACKGROUND

Endometriosis is prevalent in approximately 6-10% of all women of reproductive age and is associated with pelvic pain, heavy menstrual bleeding, infertility, and pain during intercourse. Despite reporting symptoms, women wait around 11 years before receiving a diagnosis, further interfering with their mental and physical health. Patient reported screening measures can promote faster diagnosis, however their measurement quality remains unknown. Our objective was to identify and assess the measurement properties of endometriosis screening tools in a clinical setting.

METHODS

We searched Medline, Embase, and CINAHL from January 2010 until February 15th, 2024, as well as the reference list of all included studies. Two reviewers independently assessed eligibility at all stages of the review. Study quality was assessed with a modified COSMIN framework and stoplight system in which the measurement properties of each Patient Reported Outcome Measure (PROM) were ranked and scored as positive (green), negative (red), or unknown (yellow).

RESULTS

Of the 6082 studies that were collected, 24 were assessed for eligibility and eleven PROMs met our inclusion criteria and had their data extracted. A majority of the included studies assessed very few measurement properties (e.g., measurement error, structural validity, construct validity or responsiveness, etc…) of the PROM, leaving their quality unknown. The ENDOPAIN-4D received a positive rating in six out of ten measurement properties, ranking highest among the included studies. A Machine Learning Algorithm (MLA) developed by Bendifallah et al. (2022) also received good content and criterion validity, however required both patient report and clinical indicators.

CONCLUSION

Of the included PROMs, the ENDOPAIN-4D was found the be the highest quality and could be adopted for a primary care setting. While the MLA could be used in a tertiary or specialist care setting reliance on more advanced data. However, like most studies included, the scope of its application is limited due to the potential homogeneity of ethnicity, gender, and socioeconomic status of the sample.

摘要

背景

子宫内膜异位症在所有育龄女性中患病率约为6%-10%,与盆腔疼痛、月经过多、不孕及性交疼痛有关。尽管有症状报告,但女性在确诊前平均要等待约11年,这进一步影响了她们的身心健康。患者报告的筛查措施可促进更快诊断,但其测量质量仍不清楚。我们的目的是在临床环境中识别和评估子宫内膜异位症筛查工具的测量属性。

方法

我们检索了2010年1月至2024年2月15日期间的Medline、Embase和CINAHL数据库,以及所有纳入研究的参考文献列表。两名评审员在评审的所有阶段独立评估研究的合格性。采用改良的COSMIN框架和红绿灯系统评估研究质量,其中每个患者报告结局测量指标(PROM)的测量属性被评为阳性(绿色)、阴性(红色)或未知(黄色)并进行评分。

结果

在收集的6082项研究中,24项被评估是否符合纳入标准,11项PROM符合我们的纳入标准并提取了数据。大多数纳入研究评估的PROM测量属性很少(如测量误差、结构效度、构想效度或反应度等),其质量未知。ENDOPAIN-4D在十个测量属性中有六个获得了阳性评级,在纳入研究中排名最高。Bendifallah等人(2022年)开发的一种机器学习算法(MLA)也获得了良好的内容效度和标准效度,但需要患者报告和临床指标。

结论

在纳入的PROM中,ENDOPAIN-4D被发现质量最高,可用于初级保健环境。虽然MLA可用于三级或专科护理环境,但依赖于更先进的数据。然而,与大多数纳入研究一样,由于样本在种族、性别和社会经济地位方面可能存在同质性,其应用范围有限。

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