Niemeyer Christof M, Adler Michael, Gao Song, Chi Lifeng
Universität Dortmund, Fachbereich Chemie, Biologisch-Chemische Mikrostrukturtechnik, Otto-Hahn Str. 6, D-44227 Dortmund.
J Biomol Struct Dyn. 2002 Oct;20(2):223-30. doi: 10.1080/07391102.2002.10506838.
Covalent hybrid conjugates consisting of streptavidin (STV) and a 24-mer single-stranded DNA oligonucleotide have been used as a starting material for the synthesis of supramolecular nanocircles. For this, the covalent hybrid conjugates were oligomerized by cross-linking with 5 ,5 -bis-biotinylated double-stranded DNA (dsDNA) fragments of various length. Heat denaturation of the resulting oligomeric conjugates and subsequent rapid cooling led to the formation of the nanocircles, in which the oligonucleotide-containing STV molecule is coupled with both ends of the circular bis-biotinylated dsDNA fragment. The circular structure of the bioconjugates was established by electrophoretic studies including Ferguson plot analysis as well as by scanning force microscopy (SFM) inspection. The formation process and the stability against degradation by ligand exchange with free D-biotin was compared for the nanocircles obtained from covalent oligonucleotide-STV hybrids and native STV. The former nanocircles revealed a decreased stability with respect to ring opening than the circles obtained from native STV. This suggested that the affinity of the covalent oligonucleotide-STV hybrid for binding biotinylated DNA is significantly decreased. Nevertheless, the single-stranded oligonucleotide moiety of the hybrid nanocircles can be used as a molecular handle for further functionalization. For instance, it was used for the selective DNA-directed immobilization at a surface, previously functionalized with complementary capture oligonucleotides. Moreover, we demonstrate that a pair of nanocircles, containing complementary oligonucleotide moieties, can be hybridized to form specific dimers, thereby generating a novel type of supramolecular DNA-protein nanostructures.
由链霉亲和素(STV)和24聚体单链DNA寡核苷酸组成的共价杂合共轭物已被用作合成超分子纳米环的起始材料。为此,通过与各种长度的5,5 -双生物素化双链DNA(dsDNA)片段交联,使共价杂合共轭物寡聚化。所得寡聚共轭物的热变性及随后的快速冷却导致了纳米环的形成,其中含寡核苷酸的STV分子与环状双生物素化dsDNA片段的两端相连。通过包括弗格森图分析在内的电泳研究以及扫描力显微镜(SFM)检查确定了生物共轭物的环状结构。比较了由共价寡核苷酸-STV杂化物和天然STV获得的纳米环的形成过程以及通过与游离D-生物素进行配体交换而产生的抗降解稳定性。与从天然STV获得的环相比,前者纳米环的开环稳定性有所降低。这表明共价寡核苷酸-STV杂化物结合生物素化DNA的亲和力显著降低。然而,杂合纳米环的单链寡核苷酸部分可作为进一步功能化的分子手柄。例如,它被用于在先前用互补捕获寡核苷酸功能化的表面上进行选择性DNA定向固定。此外,我们证明了一对含有互补寡核苷酸部分的纳米环可以杂交形成特定的二聚体,从而产生一种新型的超分子DNA-蛋白质纳米结构。