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Analysis of HIV-1 pol sequences using Bayesian Networks: implications for drug resistance

机译:使用贝叶斯网络分析HIV-1 pol序列:对耐药性的影响

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Human Immunodeficiency Virus-1 (HIV-1) antiviral resistance is a major cause of antiviral therapy failure and compromises future treatment options. As a consequence, resistance testing is the standard of care. Because of the high degree of HIV-1 natural variation and complex interactions, the role of resistance mutations is in many cases insufficiently understood. We applied a probabilistic model, Bayesian networks, to analyze direct influences between protein residues and exposure to treatment in clinical HIV-1 protease sequences from diverse subtypes. We can determine the specific role of many resistance mutations against the protease inhibitor nelfinavir, and determine relationships between resistance mutations and polymorphisms. We can show for example that in addition to the well-known major mutations 90M and 30N for nelfinavir resistance, 88S should not be treated as 88D but instead considered as a major mutation and explain the subtype-dependent prevalence of the 30N resistance pathway.
机译:人类免疫缺陷病毒-1(HIV-1)抗病毒抗药性是抗病毒治疗失败的主要原因,并危及未来的治疗选择。因此,电阻测试是护理的标准。由于高度的HIV-1自然变异和复杂的相互作用,在许多情况下对耐药性突变的作用还没有足够的了解。我们应用了一个概率模型贝叶斯网络,以分析蛋白质残基和暴露于来自各种亚型的临床HIV-1蛋白酶序列中的治疗之间的直接影响。我们可以确定针对蛋白酶抑制剂奈非那韦的许多耐药突变的具体作用,并确定耐药突变与多态性之间的关系。例如,我们可以证明,除了对奈尔匹那韦耐药的众所周知的主要突变90M和30N之外,不应将88S视为88D而是应视为主要突变,并解释30N耐药途径的亚型依赖性患病率。

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