Laboratory of Bioorganic Chemistry and Chemical Biology, Center for Nanotechnology , Heisenbergstraße 11, 48149 Münster, Germany.
Bioconjug Chem. 2012 Jun 20;23(6):1230-43. doi: 10.1021/bc300074k. Epub 2012 May 18.
Heterodimeric interstrand cross-linked DNA was constructed by the "bis-click" reaction carried out on preformed oligonucleotide duplexes with the bis-azide 1. For this, alkynylated 8-aza-7-deazapurine or corresponding 5-substituted pyrimidine nucleosides were synthesized. Cross-linking resulted in chemoselective formation of heterodimeric duplexes while homodimers were suppressed. For product identification, heterodimeric DNA was prepared by the "stepwise click" reaction, while noncomplementary homodimers were accessible by "bis-click" chemistry, unequivocally. Studies on duplex melting of complementary cross-linked duplexes (heterodimers) revealed significantly increased Tm values compared to the non-cross-linked congeners. The stability of this cross-linked DNA depends on the linker length and the site of modification. Cross-linked homodimers hybridized with single-stranded complementary oligonucleotides show much lower stability.
通过使用双叠氮化物 1 在预先形成的寡核苷酸双链体上进行“双点击”反应,构建了异二聚体链间交联 DNA。为此,合成了炔基化 8-氮杂-7-脱氮嘌呤或相应的 5-取代嘧啶核苷。交联导致异二聚体双链体的化学选择性形成,而同源二聚体受到抑制。为了进行产物鉴定,通过“逐步点击”反应制备异二聚体 DNA,而通过“双点击”化学可以明确获得非互补的同源二聚体。对互补交联双链体(异二聚体)的双链体熔化研究表明,与非交联同系物相比,Tm 值显著增加。这种交联 DNA 的稳定性取决于连接体长度和修饰位置。与单链互补寡核苷酸杂交的交联同源二聚体显示出低得多的稳定性。