Gerlach Claudia, Claasen Birgit, Richert Clemens
Institut für Organische Chemie, Universität Stuttgart, 70569 Stuttgart (Germany).
Chembiochem. 2014 Nov 24;15(17):2584-9. doi: 10.1002/cbic.201402409. Epub 2014 Oct 16.
Binding RNA targets, such as microRNAs, with high fidelity is challenging, particularly when the nucleobases to be bound are located at the terminus of the duplex between probe and target. Recently, a peptidyl chain terminating in a quinolone, called ogOA, was shown to act as a cap that enhances affinity and fidelity for RNAs, stabilizing duplexes with Watson-Crick pairing at their termini. Here we report the three-dimensional structure of an intramolecular complex between a DNA strand featuring the ogOA cap and an RNA segment, solved by NMR and restrained torsion angle molecular dynamics. The quinolone stacks on the terminal base pair of the hybrid duplex, positioned by the peptidyl chain, whose prolinol residue induces a sharp bend between the 5' terminus of the DNA chain and the glycine linked to the oxolinic acid residue. The structure explains why canonical base pairing is favored over hard-to-suppress mismatched base combinations, such as T:G and A:A, and helps to design improved high-fidelity probes for RNA.
以高保真度结合RNA靶标(如微小RNA)具有挑战性,尤其是当要结合的核碱基位于探针与靶标的双链体末端时。最近,一种以喹诺酮结尾的肽链(称为ogOA)被证明可作为一种帽,增强对RNA的亲和力和保真度,在其末端通过沃森-克里克配对稳定双链体。在此,我们报告了一个由具有ogOA帽的DNA链与一个RNA片段组成的分子内复合物的三维结构,该结构通过核磁共振和受限扭转角分子动力学解析得到。喹诺酮堆积在杂交双链体的末端碱基对上,由肽链定位,其脯氨醇残基在DNA链的5'末端与连接到恶唑酸残基的甘氨酸之间诱导出一个急剧弯曲。该结构解释了为什么规范碱基配对比难以抑制的错配碱基组合(如T:G和A:A)更受青睐,并有助于设计改进的高保真RNA探针。