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含哒嗪-3-酮糖基的脱氧核苷三磷酸作为胸苷三磷酸的替代品,用于 Klenow 片段的引物延伸和链延伸。

Deoxynucleoside Triphosphate Containing Pyridazin-3-one Aglycon as a Thymidine Triphosphate Substitute for Primer Extension and Chain Elongation by Klenow Fragments.

机构信息

School of Life Science and Technology , Tokyo Institute of Technology , 4259 Nagatsuta , Midoriku, Yokohama 226-8501 , Japan.

出版信息

J Org Chem. 2018 Aug 3;83(15):8353-8363. doi: 10.1021/acs.joc.8b00918. Epub 2018 Jul 19.

DOI:10.1021/acs.joc.8b00918
PMID:29952565
Abstract

Deoxynucleoside 5'-triphosphate was synthesized with 3-oxo-2 H-pyridazin-6-yl (Pz)-a uracil analogue lacking a 2-keto group-as the nucleobase. Theoretical analyses and hybridization experiments indicated that Pz recognizes adenine (A) for formation of a Watson-Crick base pair. Primer extension reactions using nucleoside 5'-triphosphate and the Klenow fragment revealed that the synthetic nucleoside 5'-triphosphate was incorporated into the 3' end of the primer through recognition of A in the template strand. Moreover, the 3'-nucleotide residue harboring Pz as the base was resistant to the 3'-exonuclease activity of Klenow fragment exo+. The primer bearing the Pz base at the 3' end could function in subsequent chain elongation. These properties of Pz were attributed to the presence of an endocyclic nitrogen atom at the position ortho to the glycosidic bond, which was presumed to form an H-bond with the amino acid residue of DNA polymerase for effective recognition of the 3' end of the primer for primer extension. These results provide a basis for designing new nucleobases by combining a nitrogen atom at the position ortho to the glycosidic bond and base-pairing sites for Watson-Crick hydrogen bonding.

摘要

脱氧核苷 5'-三磷酸与 3-氧代-2 H-哒嗪-6-基(Pz)-缺乏 2-酮基的尿嘧啶类似物合成,作为核苷碱。理论分析和杂交实验表明,Pz 识别腺嘌呤(A)形成 Watson-Crick 碱基对。使用核苷 5'-三磷酸和 Klenow 片段的引物延伸反应表明,合成的核苷 5'-三磷酸通过识别模板链中的 A 掺入引物的 3'末端。此外,含有 Pz 作为碱基的 3'-核苷酸残基对 Klenow 片段 exo+的 3'-外切酶活性具有抗性。在 3'末端带有 Pz 碱基的引物可以在随后的链延伸中发挥作用。Pz 的这些特性归因于糖苷键邻位的环内氮原子的存在,该氮原子与 DNA 聚合酶的氨基酸残基形成氢键,从而有效识别引物的 3'末端以进行引物延伸。这些结果为通过结合糖苷键邻位的氮原子和 Watson-Crick 氢键配对位点来设计新的核苷碱提供了依据。

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