Reddy Putta Mallikarjuna, Bruice Thomas C
Department of Chemistry and Biochemistry, University of California at Santa Barbara, Santa Barbara, California 93106, USA.
J Am Chem Soc. 2004 Mar 31;126(12):3736-47. doi: 10.1021/ja031557s.
Deoxynucleic guanidine (DNG), a DNA analogue in which positively charged guanidine replaces the phosphodiester linkages, tethering to Hoechst 33258 fluorophore by varying lengths has been synthesized. A pentameric thymidine DNG was synthesized on solid phase in the 3' --> 5' direction that allowed stepwise incorporation of straight chain amino acid linkers and a bis-benzimidazole (Hoechst 33258) ligand at the 5'-terminus using PyBOP/HOBt chemistry. The stability of (DNA)(2).DNG-H triplexes and DNA.DNG-H duplexes formed by DNG and DNG-Hoechst 33258 (DNG-H) conjugates with 30-mer double-strand (ds) DNA, d(CGCCGCGCGCGCGAAAAACCCGGCGCGCGC)/d(GCGGCGCGCGCGCTTTTTGGGCCGCGCGCG), and single-strand (ss) DNA, 5'-CGCCGCGCGCGCGAAAAACCCGGCGCGCGC-3', respectively, has been evaluated by thermal melting and fluorescence emission experiments. The presence of tethered Hoechst ligand in the 5'-terminus of the DNG enhances the (DNA)(2).DNG-H triplex stability by a DeltaT(m) of 13 degrees C. The fluorescence emission studies of (DNA)(2).DNG-H triplex complexes show that the DNG moiety of the conjugates bind in the major groove while the Hoechst ligand resides in the A:T rich minor groove of dsDNA. A single G:C base pair mismatch in the target site decreases the (DNA)(2).DNG triplex stability by 11 degrees C, whereas (DNA)(2).DNG-H triplex stability was decreased by 23 degrees C. Inversion of A:T base pair into T:A base pair in the center of the binding site, which provides a mismatch selectively for DNG moiety, decreases the triplex stability by only 5-6 degrees C. Upon hybridization of DNG-Hoechst conjugates with the 30-mer ssDNA, the DNA.DNG-H duplex exhibited significant increase in the fluorescence emission due to the binding of the tethered Hoechst ligand in the generated DNA.DNG minor groove, and the duplex stability was enhanced by DeltaT(m) of 7 degrees C. The stability of (DNA)(2).DNG triplexes and DNA.DNG duplexes is independent of pH, whereas the stability of (DNA)(2).DNG-H triplexes decreases with increase in pH.
已合成了脱氧核酸胍(DNG),它是一种DNA类似物,其中带正电荷的胍取代了磷酸二酯键,并通过不同长度与Hoechst 33258荧光团相连。一种五聚胸苷DNG在固相上沿3'→5'方向合成,利用PyBOP/HOBt化学方法,在5'-末端逐步引入直链氨基酸接头和双苯并咪唑(Hoechst 33258)配体。通过热熔解和荧光发射实验评估了由DNG和DNG-Hoechst 33258(DNG-H)共轭物与30-mer双链(ds)DNA(d(CGCCGCGCGCGCGAAAAACCCGGCGCGCGC)/d(GCGGCGCGCGCGCTTTTTGGGCCGCGCGCG))和单链(ss)DNA(5'-CGCCGCGCGCGCGAAAAACCCGGCGCGCGC-3')形成的(DNA)2.DNG-H三链体和DNA.DNG-H双链体的稳定性。DNG 5'-末端连接的Hoechst配体的存在使(DNA)2.DNG-H三链体稳定性提高了13℃的ΔTm。(DNA)2.DNG-H三链体复合物的荧光发射研究表明,共轭物的DNG部分结合在大沟中,而Hoechst配体位于dsDNA富含A:T的小沟中。靶位点中的单个G:C碱基对错配使(DNA)2.DNG三链体稳定性降低11℃,而(DNA)2.DNG-H三链体稳定性降低23℃。在结合位点中心将A:T碱基对颠倒为T:A碱基对,这为DNG部分提供了选择性错配,仅使三链体稳定性降低5-6℃。当DNG-Hoechst共轭物与30-mer ssDNA杂交时,由于连接的Hoechst配体结合在生成的DNA.DNG小沟中,DNA.DNG-H双链体的荧光发射显著增加,双链体稳定性提高了7℃的ΔTm。(DNA)2.DNG三链体和DNA.DNG双链体的稳定性与pH无关,而(DNA)2.DNG-H三链体的稳定性随pH升高而降低。