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首页> 外文期刊>Nucleic acids research >Assembling of G-strands into novel tetra-molecular parallel G4-DNA nanostructures using avidin–biotin recognition
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Assembling of G-strands into novel tetra-molecular parallel G4-DNA nanostructures using avidin–biotin recognition

机译:使用抗生物素蛋白-生物素识别,将G链组装成新颖的四分子平行G4-DNA纳米结构

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We describe a method for the preparation of novel long (hundreds of nanometers), uniform, inter-molecular G4-DNA molecules composed of four parallel G-strands. The only long continuous G4-DNA reported so far are intra-molecular structures made of a single G-strand. To enable a tetra-molecular assembly of the G-strands we developed a novel approach based on avidin–biotin biological recognition. The steps of the G4-DNA production include: (i) Enzymatic synthesis of long poly(dG)-poly(dC) molecules with biotinylated poly(dG)-strand; (ii) Formation of a complex between avidin-tetramer and four biotinylated poly(dG)-poly(dC) molecules; (iii) Separation of the poly(dC) strands from the poly(dG)-strands, which are connected to the avidin; (iv) Assembly of the four G-strands attached to the avidin into tetra-molecular G4-DNA. The average contour length of the formed structures, as measured by AFM, is equal to that of the initial poly(dG)-poly(dC) molecules, suggesting a tetra-molecular mechanism of the G-strands assembly. The height of tetra-molecular G4-nanostructures is larger than that of mono-molecular G4-DNA molecules having similar contour length. The CD spectra of the tetra- and mono-molecular G4-DNA are markedly different, suggesting different structural organization of these two types of molecules. The tetra-molecular G4-DNA nanostructures showed clear electrical polarizability. This suggests that they may be useful for molecular electronics.
机译:我们描述了一种制备由四个平行G链组成的新型长(数百纳米),均匀,分子间G4-DNA分子的方法。到目前为止,唯一报道的长连续G4-DNA是由单个G链制成的分子内结构。为了实现G链的四分子组装,我们开发了一种基于抗生物素蛋白-生物素生物识别的新颖方法。 G4-DNA的生产步骤包括:(i)用生物素化的聚(dG)链酶促合成长聚(dG)-聚(dC)分子; (ii)亲和素-四聚体与四个生物素化的聚(dG)-聚(dC)分子之间形成复合物; (iii)将聚(dC)链从与亲和素连接的聚(dG)链中分离出来; (iv)将连接至抗生物素蛋白的四个G链组装成四分子G4-DNA。通过AFM测量,所形成结构的平均轮廓长度等于初始聚(dG)-聚(dC)分子的轮廓长度,表明G链组装的四分子机理。四分子G4-纳米结构的高度大于具有相似轮廓长度的单分子G4-DNA分子的高度。四分子和单分子G4-DNA的CD光谱显着不同,表明这两种类型分子的结构组织不同。四分子G4-DNA纳米结构显示出明显的电极化性。这表明它们可能对分子电子学有用。

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