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Effects of Substitutions at the 4′ and 2 Positions on the Bioactivity of 4′-Ethynyl-2-Fluoro-2′-Deoxyadenosine

机译:4和2位取代对4-乙炔基-2-氟-2-脱氧腺苷生物活性的影响

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摘要

Nucleos(t)ide reverse transcriptase inhibitors (NRTIs) form the backbone of most anti-HIV therapies. We have shown that 4′-ethynyl-2-fluoro-2′-deoxyadenosine (EFdA) is a highly effective NRTI; however, the reasons for the potent antiviral activity of EFdA are not well understood. Here, we use a combination of structural, computational, and biochemical approaches to examine how substitutions in the sugar or adenine rings affect the incorporation of dA-based NRTIs like EFdA into DNA by HIV RT and their susceptibility to deamination by adenosine deaminase (ADA). Nuclear magnetic resonance (NMR) spectroscopy studies of 4′-substituted NRTIs show that ethynyl or cyano groups stabilize the sugar ring in the C-2′-exo/C-3′-endo (north) conformation. Steady-state kinetic analysis of the incorporation of 4′-substituted NRTIs by RT reveals a correlation between the north conformation of the NRTI sugar ring and efficiency of incorporation into the nascent DNA strand. Structural analysis and the kinetics of deamination by ADA demonstrate that 4′-ethynyl and cyano substitutions decrease the susceptibility of adenosine-based compounds to ADA through steric interactions at the active site. However, the major determinant for decreased susceptibility to ADA is the 2-halo substitution, which alters the pKa of N1 on the adenine base. These results provide insight into how NRTI structural attributes affect their antiviral activities through their interactions with the RT and ADA active sites.
机译:Nucleos(t)ide逆转录酶抑制剂(NRTIs)构成了大多数抗HIV治疗的骨干。我们已经表明4′-乙炔基-2-氟-2′-脱氧腺苷(EFdA)是一种高效的NRTI。但是,对于EFdA强大的抗病毒活性的原因尚不清楚。在这里,我们使用结构,计算和生化方法的组合来检查糖或腺嘌呤环中的取代如何影响HIV RT将基于dA的NRTI(如EFdA)掺入DNA以及它们对腺苷脱氨酶(ADA)脱氨的敏感性。 4'-取代的NRTI的核磁共振(NMR)光谱研究表明,乙炔基或氰基可稳定C-2'-exo / C-3'-endo(北部)构象中的糖环。通过RT掺入4'-取代的NRTI的稳态动力学分析揭示了NRTI糖环的North构象与掺入新生DNA链的效率之间的相关性。结构分析和ADA脱氨基动力学表明,4'-乙炔基和氰基取代通过活性位点的空间相互作用降低了基于腺苷的化合物对ADA的敏感性。但是,降低对ADA敏感性的主要决定因素是2-卤素取代,这会改变腺嘌呤碱基上N1的pKa。这些结果提供了关于NRTI结构属性如何通过其与RT和ADA活性位点相互作用而影响其抗病毒活性的见解。

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