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基于生物标志物的发病率估算方法比较。

A comparison of biomarker based incidence estimators.

机构信息

School of Computational and Applied Mathematics, University of the Witwatersrand, Johannesburg, South Africa.

出版信息

PLoS One. 2009 Oct 7;4(10):e7368. doi: 10.1371/journal.pone.0007368.

Abstract

BACKGROUND

Cross-sectional surveys utilizing biomarkers that test for recent infection provide a convenient and cost effective way to estimate HIV incidence. In particular, the BED assay has been developed for this purpose. Controversy surrounding the way in which false positive results from the biomarker should be handled has lead to a number of different estimators that account for imperfect specificity. We compare the estimators proposed by McDougal et al., Hargrove et al. and McWalter & Welte.

METHODOLOGY/PRINCIPAL FINDINGS: The three estimators are analyzed and compared. An identity showing a relationship between the calibration parameters in the McDougal methodology is shown. When the three estimators are tested under a steady state epidemic, which includes individuals who fail to progress on the biomarker, only the McWalter/Welte method recovers an unbiased result.

CONCLUSIONS/SIGNIFICANCE: Our analysis shows that the McDougal estimator can be reduced to a formula that only requires calibration of a mean window period and a long-term specificity. This allows simpler calibration techniques to be used and shows that all three estimators can be expressed using the same set of parameters. The McWalter/Welte method is applicable under the least restrictive assumptions and is the least prone to bias of the methods reviewed.

摘要

背景

利用检测近期感染的生物标志物进行的横断面调查,为估计 HIV 发病率提供了一种方便且具有成本效益的方法。特别是,BED 检测法就是为此目的而开发的。由于生物标志物的假阳性结果的处理方式存在争议,因此已经提出了许多不同的估计量来考虑非特异性的影响。我们比较了 McDougal 等人、Hargrove 等人以及 McWalter 和 Welte 提出的估计量。

方法/主要发现:对三种估计量进行了分析和比较。证明了 McDougal 方法学中的校准参数之间存在关系的恒等式。当在包括未能在生物标志物上进展的个体的稳定流行状态下测试这三种估计量时,只有 McWalter/Welte 方法能够得出无偏的结果。

结论/意义:我们的分析表明,McDougal 估计量可以简化为仅需要校准平均窗口期和长期特异性的公式。这允许使用更简单的校准技术,并表明所有三种估计量都可以使用相同的参数集来表示。在最宽松的假设下,McWalter/Welte 方法是适用的,并且是所审查的方法中最不易产生偏差的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2aed/2753643/66059a636ae7/pone.0007368.g001.jpg

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