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评估临床实践中识别 SARS-CoV-2 感染的诊断策略:系统评价及对诊断准确性研究报告标准(STARD)的遵循情况。

Evaluation of Diagnostic Strategies for Identifying SARS-CoV-2 Infection in Clinical Practice: a Systematic Review and Compliance with the Standards for Reporting Diagnostic Accuracy Studies Guideline (STARD).

机构信息

Faculty of Pharmacy, Miguel Hernandez Universitygrid.26811.3c, Alicante, Spain.

Public Health, History of Medicine and Gynecology Department, Miguel Hernandez Universitygrid.26811.3c, Alicante, Spain.

出版信息

Microbiol Spectr. 2022 Aug 31;10(4):e0030022. doi: 10.1128/spectrum.00300-22. Epub 2022 Jun 14.

Abstract

We aimed to review strategies for identifying SARS-CoV-2 infection before the availability of molecular test results, and to assess the reporting quality of the studies identified through the application of the STARD guideline. We screened 3,821 articles published until 30 April 2021, of which 23 met the inclusion criteria: including at least two diagnostic variables, being designed for use in clinical practice or in a public health context and providing diagnostic accuracy rates. Data extraction and application of STARD criteria were performed independently by two researchers and discrepancies were discussed with a third author. Most of the studies (16, 69.6%) included symptomatic patients with suspected infection, six studies (26.1%) included patients already diagnosed and one study (4.3%) included individuals with close contact to a COVID-positive patient. The main variables considered in the studies, which included symptomatic patients, were imaging and demographic characteristics, symptoms, and lymphocyte count. The values for area under the receiver operating characteristic curve (AUC)ranged from 53-97.4. Seven studies (30.4%) validated the diagnostic model in an independent sample. The average number of STARD criteria fulfilled was 17.6 (maximum, 27 and minimum, 5). High diagnostic accuracy values are shown when more than one diagnostic variable is considered, mainly imaging and demographic characteristics, symptoms, and lymphocyte count. This could offer the potential to identify individuals with SARS-CoV-2 infection with high accuracy when molecular testing is not available. However, external validation for developed models and evaluations in populations as similar as possible to those in which they will be applied is urgently needed. According to this review, the inclusion of more than one diagnostic test in the diagnostic process for COVID-19 infection shows high diagnostic accuracy values. Imaging characteristics, patients' symptoms, demographic characteristics, and lymphocyte count were the variables most frequently included in the diagnostic models. However, developed models should be externally validated before reaching conclusions on their utility in practice. In addition, it is important to bear in mind that the test should be evaluated in populations as similar as possible to those in which it will be applied in practice.

摘要

我们旨在回顾在获得分子检测结果之前识别 SARS-CoV-2 感染的策略,并评估应用 STARD 指南识别的研究的报告质量。我们筛选了截至 2021 年 4 月 30 日发表的 3821 篇文章,其中 23 篇符合纳入标准:包括至少两个诊断变量,旨在用于临床实践或公共卫生环境,并提供诊断准确性率。两名研究人员独立进行数据提取和 STARD 标准的应用,分歧由第三位作者讨论。大多数研究(16 项,69.6%)包括有疑似感染症状的患者,6 项研究(26.1%)包括已确诊的患者,1 项研究(4.3%)包括与 COVID-19 阳性患者密切接触的个体。研究中考虑的主要变量包括有症状的患者,包括影像学和人口统计学特征、症状和淋巴细胞计数。受试者工作特征曲线下面积(AUC)值范围为 53-97.4。7 项研究(30.4%)在独立样本中验证了诊断模型。满足 STARD 标准的平均数量为 17.6(最大值 27,最小值 5)。当考虑多个诊断变量时,显示出较高的诊断准确性值,主要是影像学和人口统计学特征、症状和淋巴细胞计数。当无法进行分子检测时,这可能提供识别 SARS-CoV-2 感染个体的高准确性的潜力。然而,迫切需要针对开发的模型进行外部验证,并在尽可能类似于其应用的人群中进行评估。根据这项综述,在 COVID-19 感染的诊断过程中纳入多个诊断测试可显示出较高的诊断准确性值。影像学特征、患者症状、人口统计学特征和淋巴细胞计数是诊断模型中最常包含的变量。然而,在得出关于其实用性的结论之前,应对外来验证开发的模型。此外,重要的是要记住,应在与实际应用中尽可能相似的人群中评估该测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/31c3/9430610/9ad2b0291773/spectrum.00300-22-f001.jpg

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