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首页> 外文期刊>Genes to cells : >Visualization of the interaction between archaeal DNA polymerase and uracil-containing DNA by atomic force microscopy.
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Visualization of the interaction between archaeal DNA polymerase and uracil-containing DNA by atomic force microscopy.

机译:通过原子力显微镜可视化古细菌DNA聚合酶和含尿嘧啶的DNA之间的相互作用。

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摘要

Deamination of cytosine to uracil is a hydrolytic reaction that is greatly accelerated at high temperatures. The resulting uracil pairs with adenine during DNA replication, thereby inducing G:C to A:T transitions in the progeny. Interestingly, B-family DNA polymerases from hyperthermophilic Archaea recognize the presence of uracil in DNA and stall DNA synthesis. To better understand the recognition mechanism, the binding modes of DNA polymerase B1 of Sulfolobus solfataricus (Pol B1) to uracil-containing DNA were examined by gel mobility shift assays and atomic force microscopy. Although PolB1 per se specifically binds to uracil-containing single-stranded DNA, the binding efficiency was substantially enhanced by the initiation of DNA synthesis. Analysis by the atomic force microscopy showed a number of double-stranded DNA (dsDNA) in the products of DNA synthesis. The generation of ds DNA was significantly inhibited, however, by the presence of template uracil, and intermediates where monomeric forms of Pol B1 appeared to bind to uracil-containing DNA were observed. These results suggest that Pol B1 more efficiently recognizes uracil in DNA during DNA synthesis rather than during random diffusion in solution, and that single molecules of Pol B1 bind to template uracil and stall DNA synthesis.
机译:胞嘧啶脱氨为尿嘧啶是一种水解反应,在高温下会大大加速。在DNA复制过程中,所得尿嘧啶与腺嘌呤配对,从而在子代中诱导G:C向A:T的转变。有趣的是,嗜热古生菌的B族DNA聚合酶识别DNA中存在尿嘧啶并阻止DNA合成。为了更好地理解识别机制,通过凝胶迁移率分析和原子力显微镜检查了Sulfolobus solfataricus(Pol B1)的DNA聚合酶B1(Pol B1)与含尿嘧啶的DNA的结合方式。尽管PolB1本身特异地结合到含尿嘧啶的单链DNA上,但是通过DNA合成的开始,结合效率大大提高了。原子力显微镜分析表明,DNA合成产物中存在许多双链DNA(dsDNA)。然而,由于模板尿嘧啶的存在,ds DNA的产生受到了显着抑制,并且观察到了其中Pol B1单体形式似乎与含尿嘧啶的DNA结合的中间体。这些结果表明,Pol B1在DNA合成过程中比在溶液中随机扩散过程中更有效地识别DNA中的尿嘧啶,并且Pol B1的单个分子与模板尿嘧啶结合并阻止DNA合成。

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