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Kinetic Thermodynamic and Structural Analysis of Drug Resistance Mutations in Neuraminidase from the 2009 Pandemic Influenza Virus

机译:2009年大流行性流感病毒中神经氨酸酶耐药突变的动力学热力学和结构分析

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摘要

Neuraminidase is the main target for current influenza drugs. Reduced susceptibility to oseltamivir, the most widely prescribed neuraminidase inhibitor, has been repeatedly reported. The resistance substitutions I223V and S247N, alone or in combination with the major oseltamivir-resistance mutation H275Y, have been observed in 2009 pandemic H1N1 viruses. We overexpressed and purified the ectodomain of wild-type neuraminidase from the A/California/07/2009 (H1N1) influenza virus, as well as variants containing H275Y, I223V, and S247N single mutations and H275Y/I223V and H275Y/S247N double mutations. We performed enzymological and thermodynamic analyses and structurally examined the resistance mechanism. Our results reveal that the I223V or S247N substitution alone confers only a moderate reduction in oseltamivir affinity. In contrast, the major oseltamivir resistance mutation H275Y causes a significant decrease in the enzyme’s ability to bind this drug. Combination of H275Y with an I223V or S247N mutation results in extreme impairment of oseltamivir’s inhibition potency. Our structural analyses revealed that the H275Y substitution has a major effect on the oseltamivir binding pose within the active site while the influence of other studied mutations is much less prominent. Our crystal structures also helped explain the augmenting effect on resistance of combining H275Y with both substitutions.
机译:神经氨酸酶是当前流行性感冒药物的主要靶标。重复报道了对最广泛使用的神经氨酸酶抑制剂奥司他韦的敏感性降低。在2009年大流行的H1N1病毒中已观察到单独或与主要的奥司他韦耐药突变H275Y组合的耐药替代I223V和S247N。我们从A / California / 07/2009(H1N1)流感病毒以及含有H275Y,I223V和S247N单突变以及H275Y / I223V和H275Y / S247N双突变的变体中过表达并纯化了野生型神经氨酸酶的胞外域。我们进行了酶学和热力学分析,并在结构上检查了耐药机制。我们的结果表明,单独的I223V或S247N替代仅能适度降低oseltamivir的亲和力。相比之下,主要的奥司他韦耐药性突变H275Y会导致酶与这种药物结合的能力大大降低。 H275Y与I223V或S247N突变结合使用会严重损害奥司他韦的抑制能力。我们的结构分析表明,H275Y取代对活性位点中的奥司他韦结合姿势有重要影响,而其他研究突变的影响则不太明显。我们的晶体结构还有助于解释将H275Y与两个取代基结合使用对电阻的增强作用。

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