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Estimating the dynamics and dependencies of accumulating mutations with applications to HIV drug resistance

机译:估算累积突变的动力学和依赖性以及对HIV耐药性的应用

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摘要

We introduce a new model called the observed time conjunctive Bayesian network (OT-CBN) that describes the accumulation of genetic events (mutations) under partial temporal ordering constraints. Unlike other CBN models, the OT-CBN model uses sampling time points of genotypes in addition to genotypes themselves to estimate model parameters. We developed an expectation-maximization algorithm to obtain approximate maximum likelihood estimates by accounting for this additional information. In a simulation study, we show that the OT-CBN model outperforms the continuous time CBN (CT-CBN) (Beerenwinkel and Sullivant, 2009. Markov models for accumulating mutations. Biometrika 96(3), 645-661), which does not take into account individual sampling times for parameter estimation. We also show superiority of the OT-CBN model on several datasets of HIV drug resistance mutations extracted from the Swiss HIV Cohort Study database.
机译:我们介绍了一种称为观测时间联合贝叶斯网络(OT-CBN)的新模型,该模型描述了部分时间顺序约束下遗传事件(突变)的累积。与其他CBN模型不同,OT-CBN模型除了使用基因型本身之外,还使用基因型的采样时间点来估计模型参数。我们开发了一种期望最大化算法,通过考虑此附加信息来获得近似最大似然估计。在模拟研究中,我们表明OT-CBN模型优于连续时间CBN(CT-CBN)(Beerenwinkel and Sullivant,2009. Markov model for累计累积突变。Biometrika96(3),645-661),但没有考虑参数估计的各个采样时间。我们还显示了OT-CBN模型在从瑞士HIV队列研究数据库中提取的HIV耐药性突变的几个数据集上的优越性。

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