Macii Francesca, Cupellini Lorenzo, Stifano Mariassunta, Santolaya Javier, Pérez-Arnaiz Cristina, Pucci Andrea, Barone Giampaolo, García Begoña, Busto Natalia, Biver Tarita
Department of Chemistry and Industrial Chemistry, University of Pisa, Via G. Moruzzi 13, 56124 Pisa, Italy.
Department of Chemistry, University of Burgos, Pza. Misael Bañuelos s/n, 09001 Burgos, Spain.
Spectrochim Acta A Mol Biomol Spectrosc. 2021 Nov 5;260:119914. doi: 10.1016/j.saa.2021.119914. Epub 2021 May 5.
We present here a combined spectroscopic and theoretical analysis of the binding of N,N'-bis(2-(1-piperazino)ethyl)-3,4,9,10-perylenetetracarboxylic acid diimide dichloride (PZPERY) to different biosubstrates. Absorbance titrations and circular dichroism experiments, melting studies and isothermal calorimetry (ITC) titrations reveal a picture where the binding to natural double-stranded DNA is very different from that to double and triple-stranded RNAs (poly(A)∙poly(U) and poly(U)∙poly(A)⁎poly(U)). As confirmed also by the structural and energetic details clarified by density functional theory (DFT) calculations, intercalation occurs for DNA, with a process driven by the combination of aggregates disruption and monomers intercalation. Oppositely, for RNAs, no intercalation but groove binding with the formation of supramolecular aggregates is observed. Among all the tested biosubstrates, the affinity of PZPERY towards DNA G-quadruplexes (G4) is the greatest one with a preference for human telomeric G4s. Focusing on hybrid G4 forms, either sitting-atop ("tetrad-parallel") or lateral ("groove-parallel") binding modes were considered in the discussion of the experimental results and molecular dynamics (MD) simulations. Both turned out to be possible concurrently, in agreement also with the experimental binding stoichiometries higher than 2:1.
我们在此展示了对 N,N'-双(2-(1-哌嗪基)乙基)-3,4,9,10-苝四羧酸二酰亚胺二氯化物(PZPERY)与不同生物底物结合的光谱和理论联合分析。吸光度滴定、圆二色性实验、熔解研究和等温滴定量热法(ITC)滴定揭示了这样一种情况:其与天然双链 DNA 的结合与与双链和三链 RNA(聚(A)∙聚(U)和聚(U)∙聚(A)⁎聚(U))的结合非常不同。正如密度泛函理论(DFT)计算所阐明的结构和能量细节所证实的那样,DNA 发生了嵌入,这一过程由聚集体破坏和单体嵌入共同驱动。相反,对于 RNA,未观察到嵌入,但观察到了与超分子聚集体形成相关的沟槽结合。在所有测试的生物底物中,PZPERY 对 DNA G-四链体(G4)的亲和力最大,且更倾向于人类端粒 G4。聚焦于杂合 G4 形式,在讨论实验结果和分子动力学(MD)模拟时考虑了位于顶部(“四联体平行”)或侧面(“沟槽平行”)的结合模式。结果表明这两种模式可能同时存在,这也与高于 2:1 的实验结合化学计量相一致。