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在逻辑回归或概率单位回归模型中评估连续替代标志物所解释的治疗效果比例。

Evaluating the Proportion of Treatment Effect Explained by a Continuous Surrogate Marker in Logistic or Probit Regression Models.

作者信息

Huang Jie, Huang Bin

机构信息

Novartis Pharmaceuticals, Oncology Business Unit, East Hanover, NJ 07936 (

出版信息

Stat Biopharm Res. 2010 May 1;2(2):229-238. doi: 10.1198/sbr.2009.0070.

Abstract

Using surrogate endpoints in clinical trials is desirable for drug development because the trials can be shortened and therefore more cost-effective. Validating a surrogate for the clinical endpoint is critical in this context. One of the key steps in statistical validation of a surrogate for a single trial is to estimate the proportion of treatment effect explained (PTE or PE) by a surrogate. Often the measure for PTE is estimated from the difference in coefficients of treatment from two models with or without adjusting for the surrogate for clinical endpoint. Inherent problems with the method are: the two models may not be valid simultaneously; and the estimate can often lie outside the interval [0, 1]. In this article, we provide alternative measures for evaluating the proportion of treatment effect explained by a surrogate in logistic or probit regression models. Our measures can be estimated easily with any statistical programs capable of binary linear regression modeling, and the interpretation of the measures can be illustrated using Ordinal Dominance (OD) curves. The concept can be visually understood by any practical user. Simulation shows our alternative measures yield more accurate estimates which are less biased, less variable, and with narrower confidence intervals. A clinical trial example is provided.

摘要

在药物研发中,临床试验使用替代终点是可取的,因为这样可以缩短试验时间,从而更具成本效益。在这种情况下,验证临床终点的替代指标至关重要。单一试验中替代指标统计验证的关键步骤之一是估计由替代指标解释的治疗效果比例(PTE或PE)。通常,PTE的度量是通过两个模型(有或没有调整临床终点替代指标)的治疗系数差异来估计的。该方法存在的固有问题是:这两个模型可能不会同时有效;而且估计值常常可能落在区间[0, 1]之外。在本文中,我们提供了替代度量方法,用于评估逻辑回归或概率单位回归模型中由替代指标解释的治疗效果比例。我们的度量方法可以使用任何能够进行二元线性回归建模的统计程序轻松估计,并且可以使用序数优势(OD)曲线来说明这些度量方法的解释。任何实际使用者都可以直观地理解这个概念。模拟结果表明,我们的替代度量方法能产生更准确的估计值,这些估计值偏差更小、变异性更小且置信区间更窄。本文还提供了一个临床试验示例。

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本文引用的文献

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Surrogate marker evaluation from an information theory perspective.从信息论角度评估替代标志物
Biometrics. 2007 Mar;63(1):180-6. doi: 10.1111/j.1541-0420.2006.00634.x.

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