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Methods for optimizing antiviral combination therapies

机译:优化抗病毒组合疗法的方法

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Motivation: Despite some progress with antiretroviral combination therapies, therapeutic success in the management of HIV-infected patients is limited. The evolution of drug-resistant genetic variants in response to therapy plays a key role in treatment failure and finding a new potent drug combination after therapy failure is considered challenging. Results: To estimate the activity of a drug combination against a particular viral strain, we develop a scoring function whose independent variables describe a set of antiviral agents and viral DNA sequences coding for the molecular targets of the respective drugs. The construction of this activity score involves (1) predicting phenotypic drug resistance from genotypes for each drug individually, (2) probabilistic modeling of predicted resistance values and integration into a score for drug combinations, and (3) searching through the mutational neighborhood of the considered strain in order to estimate activity on nearby mutants. For a clinical dataset, we determine the optimal search depth and show that the scoring scheme is predictive of therapeutic outcome. Properties of the activity score and applications are discussed.
机译:动机:尽管存在抗逆转录病毒组合疗法的一些进展,但艾滋病毒感染患者的管理中的治疗成功是有限的。抗药性遗传变异抗药性遗传变异的演变在治疗中对治疗失败起到关键作用,并在治疗失败后发现新的有效药物组合被认为是挑战性的。结果:为了估计针对特定病毒菌株的药物组合的活性,我们开发了一个评分函数,其独立变量描述了一组抗病毒剂和病毒DNA序列,编码了各种药物的分子靶标。该活动评分的构建涉及(1)预测各种药物的基因型的表型药物抗性,(2)预测阻力值的概率建模和融入药物组合的分数,以及(3)通过突变邻域寻找考虑菌株以估计附近突变体的活动。对于临床数据集,我们确定最佳搜索深度,并表明评分方案是预测治疗结果的预测性。讨论了活动分数和应用的属性。

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