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Structural Basis of Duplex Thermodynamic Stability and Enhanced Nuclease Resistance of 5 '-C-Methyl Pyrimidine-Modified Oligonucleotides

机译:5'-C-甲基嘧啶修饰的寡核苷酸的双链热力学稳定性和增强的核酸酶抗性的结构基础

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Although judicious use of chemical modifications has contributed to the success of nucleic acid therapeutics, poor systemic stability remains a major hurdle. The introduction of functional groups around the phosphate backbone can enhance the nuclease resistance of oligonucleotides (ONs). Here, we report the synthesis of enantiomerically pure (R)- and (S)-5'-C-methyl (C5'-Me) substituted nucleosides and their incorporation into ONs. These modifications generally resulted in a decrease in thermal stability of oligonucleotide (ON) duplexes in a manner dependent on the stereoconfiguration at C5' with greater destabilization characteristic of (R)-epimers. Enhanced stability against snake venom phosphodiesterase resulted from modification of the 3' end of an ON with either (R)- or (S)-C5'-Me nucleotides. The (S)-isomers with different 2'-substituents provided greater resistance against 3'-exonucleases than the corresponding (R)-isomers. Crystal structure analyses of RNA octamers with (R)- or (S)-5'-C-methyl-2'-deoxy-2'-fluorouridine [(R)- or (S)-C5'-Me-2'-FU, respectively] revealed that the stereochemical orientation of the C5'-Me and the steric effects that emanate from the alkyl substitution are the dominant determinants of thermal stability and are likely molecular origins of resistance against nucleases. X-ray and NMR structural analyses showed that the (S)-C5'-Me epimers are spatially and structurally more similar to their natural 5' nonmethylated counterparts than the corresponding (R)epimers.
机译:尽管明智地使用化学修饰有助于核酸疗法的成功,但较差的系统稳定性仍然是主要障碍。在磷酸骨架周围引入官能团可以增强寡核苷酸(ON)的核酸酶抗性。在这里,我们报告对映体纯(R)-和(S)-5'-C-甲基(C5'-Me)取代的核苷的合成及其掺入ON中。这些修饰通常导致寡核苷酸(ON)双链体的热稳定性降低,其方式取决于C5'处的立体构型,并具有(R)-受体的更大的去稳定化特征。由于用(R)-或(S)-C5'-Me核苷酸修饰ON的3'端,导致对蛇毒磷酸二酯酶的稳定性增强。与相应的(R)-异构体相比,具有不同2'-取代基的(S)-异构体对3'-核酸外切酶的抵抗力更大。具有(R)-或(S)-5'-C-甲基-2'-脱氧2'-氟尿苷[(R)-或(S)-C5'-Me-2'-的RNA八聚体的晶体结构分析分别[FU]揭示了C5'-Me的立体化学取向和由烷基取代产生的空间效应是热稳定性的主要决定因素,并且可能是对核酸酶的抗性的分子起源。 X-射线和NMR结构分析表明,(S)-C5'-Me差向异构体在空间和结构上比其天然的5'非甲基化对应物比相应的(R)表位更加相似。

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