Centre de Biophysique Moléculaire UPR 4301 CNRS, Conventionnée avec l'Université d'Orléans, Rue Charles Sadron, 45071 Orléans Cedex 02, France.
Org Biomol Chem. 2013 Feb 28;11(8):1345-57. doi: 10.1039/c2ob26871j.
2'-O-Neopentyldeoxyuridine (Un) was synthesized and incorporated into a series of oligodeoxyribonucleotides. Single and triple incorporations in various arrangements were performed. The Watson and Crick pairing properties with complementary DNA and RNA were investigated by UV melting curves, CD spectroscopy, and molecular dynamic simulations. The results were compared to those obtained with DNA-DNA and DNA-RNA duplexes involving dU at the same positions. Oligonucleotides containing Un clearly demonstrated their ability to form duplexes with both complementary DNA and RNA but with higher stabilities for the DNA-RNA duplexes similar to the one of the parent DNA-RNA duplex. Investigations into the thermodynamic properties of these 17-base-pair duplexes revealed ΔG values (37 °C) that are in line with the measured T(m) values for both the DNA-DNA and DNA-RNA duplexes. CD spectroscopic structural investigations indicated that the conformations of the DNA-DNA and DNA-RNA duplexes involving Un are similar to those of the dT-rA and dU-rA containing duplexes. Only small changes in intensities and weak blue shifts were observed when three Uns were incorporated into the duplexes. The results of the molecular dynamic simulations showed, for the six duplexes involving the modified nucleoside Un, calculated curvatures similar to those of the corresponding unmodified duplexes without base-pair disruption. The neopentyl group is able to be accommodated in the minor grooves of both the DNA-DNA and RNA-DNA duplexes. However, molecular dynamic simulations indicated that the Uns adopt a C2'-exo sugar pucker conformation close to an A-helix type without perturbing the C2'-endo sugar pucker conformations of their 2'-deoxynucleoside neighbours. These results confirm the potential of 2'-O-neopentyldeoxyuridine as a nucleoside surrogate for oligonucleotide based therapeutic strategies.
2'-O-新戊基脱氧尿苷(Un)被合成并掺入一系列寡脱氧核苷酸中。在各种排列中进行了单掺入和三掺入。通过紫外熔融曲线、CD 光谱和分子动力学模拟研究了与互补 DNA 和 RNA 的 Watson 和 Crick 配对性质。将结果与在相同位置含有 dU 的 DNA-DNA 和 DNA-RNA 双链体获得的结果进行了比较。含有 Un 的寡核苷酸清楚地表明它们能够与互补的 DNA 和 RNA 形成双链体,但与 DNA-RNA 双链体的稳定性更高,类似于亲本 DNA-RNA 双链体。对这些 17 碱基对双链体的热力学性质的研究表明,ΔG 值(37°C)与 DNA-DNA 和 DNA-RNA 双链体的测量 Tm 值相符。CD 光谱结构研究表明,涉及 Un 的 DNA-DNA 和 DNA-RNA 双链体的构象与那些含有 dT-rA 和 dU-rA 的双链体相似。当将三个 Un 掺入双链体中时,仅观察到强度的微小变化和微弱的蓝移。分子动力学模拟的结果表明,对于涉及修饰核苷 Un 的六个双链体,计算曲率与没有碱基对破坏的相应未修饰双链体相似。新戊基基团能够容纳在 DNA-DNA 和 RNA-DNA 双链体的小沟中。然而,分子动力学模拟表明,Uns 采用接近 A 型螺旋的 C2'-exo 糖构象,而不会干扰其 2'-脱氧核苷邻位的 C2'-endo 糖构象。这些结果证实了 2'-O-新戊基脱氧尿苷作为寡核苷酸基于治疗策略的核苷替代物的潜力。