A model-based statistic for detecting molecular markers associated with complex survival patterns in early-stage cancer.

Philippe Broët, Thierry Moreau
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Abstract

Unlabelled:

Background: In early-stage of cancer, primary treatment can be considered as effective at eliminating the tumor for a non-negligible proportion of patients whereas for the others it leads to a lower tumor burden and thereby potentially prolonged survival. In this mixed population of patients, it is of great interest to detect complex differences in survival distributions associated with molecular markers that potentially activate latent downstream pathways implicated in tumor progression.

Method: We propose a novel model-based score test designed for identifying molecular markers with complex effects on survival in early-stage cancer. From a biological point of view, the proposed score test allows to detect complex changes in the survival distributions linked to either the tumor burden or its dynamic growth.

Results: Simulation results show that the proposed statistic is powerful at identifying departure from the null hypothesis of no survival difference. The practical use of the proposed statistic is exemplified by analyzing the prognostic impact of Kras mutation in early-stage of lung adenocarcinomas. This analysis leads to the conclusion that Kras mutation has a significant negative prognostic impact on survival. Moreover, it emphasizes that the complex role of Kras mutation on survival would have been overlooked by considering results from the classical logrank test.

Conclusion: With the growing number of biological markers to be tested in early-stage cancer, the proposed score test statistic is a powerful tool for detecting molecular markers associated with complex survival patterns.

Abstract Image

Abstract Image

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用于检测与早期癌症复杂生存模式相关的分子标记的基于模型的统计。
背景:在癌症的早期阶段,对于不可忽视的一部分患者来说,初级治疗可以有效地消除肿瘤,而对于其他患者来说,初级治疗可以降低肿瘤负担,从而可能延长生存期。在这种混合的患者群体中,检测与潜在激活与肿瘤进展相关的潜在下游通路的分子标记相关的生存分布的复杂差异是非常有趣的。方法:我们提出了一种新的基于模型的评分测试,旨在识别对早期癌症患者生存有复杂影响的分子标记。从生物学的角度来看,提出的评分测试允许检测与肿瘤负荷或其动态生长相关的生存分布的复杂变化。结果:模拟结果表明,所提出的统计量在识别无生存差异的零假设偏差方面是强大的。通过分析Kras突变对早期肺腺癌预后的影响,说明了所提出的统计数据的实际应用。这一分析得出结论,Kras突变对生存有显著的负面影响。此外,它强调Kras突变对生存的复杂作用可能被经典logrank试验的结果所忽视。结论:随着在早期癌症中需要检测的生物标志物越来越多,所提出的评分检验统计量是检测与复杂生存模式相关的分子标志物的有力工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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