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Affinity and Sequence Specificity of DNA Binding and Site Selection for Primer Synthesis by Escherichia coli Primase

机译:大肠杆菌预碱基对DNA结合和位点选择的亲和力和序列特异性

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摘要

Primase is an essential DNA replication enzyme in Escherichia coli and responsible for primer synthesis during lagging strand DNA replication. Although the interaction of primase with single-stranded DNA plays an important role in primer RNA and Okazaki fragment synthesis, the mechanism of DNA binding and site selection for primer synthesis remains unknown. We have analyzed the energetics of DNA binding and the mechanism of site selection for the initiation of rimer RNA synthesis on the lagging strand of the replication fork. Quantitative analysis of DNA binding by primase was carried out using a number of oligonucleotide sequences: oligo(dT)_25 and a 30 bp oligonucleotide derived from bacteriophage G4 origin (G4ori-wt). Primase bound both sequences with moderate affinity (K_d = 1.2-1.4 X 10~(-7) M); however, binding was stronger for G4ori-wt. G4ori-wt contained a CTG trinucleotide, which is a preferred site for initiation of prmer synthesis. Analysis of DNA binding isotherms derived from primase binding t othe oligonucleotide sequences by fluorescence anisotropy indicated that primase bound to DNA as a dimer, and this finding was further substantiated by electrophoretic mobility shift assays (EMSAs) and UV cross-linking of the primase-DNA complex. Dissection of the energetics involved in the priamse-DNA interaction revealed a higher affinity of primase for DNA sequences containing the CTG triplet. This sequence preference of primase may likely be responsible for the initiation of primer synthesis in the CTG triplet sites in the E. coli lagging strand as well as in the origin of replication of bacteriophase G4.
机译:Primase是大肠杆菌中的基本DNA复制酶,并且在滞后链DNA复制期间负责引物合成。虽然Primase与单链DNA的相互作用在引物RNA和Okazaki片段合成中起重要作用,但是引物合成的DNA结合和位点选择的机制仍然未知。我们已经分析了DNA结合的能量学和位点选择的机制,用于在复制叉的滞后链上启动RIMER RNA合成。使用许多寡核苷酸序列进行Prigase的DNA结合的定量分析:寡核苷酸(DT)_25和来自噬菌体G4源(G4ORI-WT)的30bp寡核苷酸。预键与中等亲和力的序列(K_D = 1.2-1.4×10〜(-7)M)结合;然而,G4ORI-WT的结合较强。 G4ORI-WT含有CTG三核苷酸,其是用于引发PRMER合成的优选部位。通过荧光各向异性衍生自荧光各向异性寡核苷酸序列的DNA结合等温度的分析表明,用电泳迁移率移位(EMSAS)和UV交联,进一步证实了与DNA结合的预原理,并通过Primase-DNA的UV交联进一步证实了该发现。复杂的。普利亚姆-DNA相互作用所涉及的能量的解剖揭示了含有CTG三联的DNA序列的primase的更高亲和力。这种基因的序列偏好可能负责在大肠杆菌滞后链中的CTG三联位点中的引物合成的引起的引起的,以及在噬菌体体G4的复制起源中。

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  • 来源
    《Biochemistry》 |2002年第50期|共11页
  • 作者单位

    Department of Molecular Biology School of Osteopathic Medicine and Graduate School of Biomedical Sciences University of Medicine and Dentistry of New Jersey Stratford New Jersey 08084 and Program in Biotechnology Department of Laboratory Scien;

    Department of Molecular Biology School of Osteopathic Medicine and Graduate School of Biomedical Sciences University of Medicine and Dentistry of New Jersey Stratford New Jersey 08084 and Program in Biotechnology Department of Laboratory Scien;

    Department of Molecular Biology School of Osteopathic Medicine and Graduate School of Biomedical Sciences University of Medicine and Dentistry of New Jersey Stratford New Jersey 08084 and Program in Biotechnology Department of Laboratory Scien;

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  • 正文语种 eng
  • 中图分类 生物化学;
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