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Protonated polynucleotides structures - 22.CD study of the acid-base titration of poly(dG).poly(dC)

机译:质子化的多核苷酸结构-poly(dG).poly(dC)的酸碱滴定的22.CD研究

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摘要

The acid-base titration (pH 8 → pH 2.5 → pH 8) of eleven mixing curve samples of the poly(dG) plus poly(dC) system has been performed in 0.15 M NaCl. Upon protonation, poly(dG)·poly(dC) gives rise to an acid complex, in various amounts according to the origin of the sample. We have established that the hysteresis of the acid-base titration is due to the non-reversible formation of an acid complex, and the liberation of the homopolymers at the end of the acid titration and during the base titration: the homopolymer mixtures remain stable up to pH 7. A 1G:1C stoichiometry appears to be the most probable for the acid complex, a 1G:2C stoichiometry, as found in poly(C+)·poly(I)·poly(C) or poly(C+)·poly(G)·poly(C), cannot be rejected. In the course of this study, evidence has been found that the structural consequences of protonation could be similar for both double stranded poly(dG)·poly(dC) and G-C rich DNA's: 1) protonation starts near pH 6, dissociation of the acid complex of poly(dG)·poly(dC) and of protonated DNA take place at pH 3; 2) the CD spectrum computed for the acid polymer complex displays a positive peak at 255 nm as found in the acid spectra of DNA's; 3) double stranded poly(dG)·poly(dC) embedded in triple-stranded poly(dG)·poly(dG)·poly(dC) should be in the A-form and appears to be prevented from the proton induced conformational change. The neutral triple stranded poly(dG)·poly(dG)·poly(dC) appears therefore responsible, although indirectly, for the complexity and variability of the acid titration of poly(dG)·poly(dC) samples.
机译:已在0.15 M NaCl中进行了poly(dG)和poly(dC)系统的11个混合曲线样品的酸碱滴定(pH 8→pH 2.5→pH 8)。质子化后,聚(dG)·聚(dC)生成酸络合物,其量根据样品的来源而不同。我们已经确定,酸碱滴定的滞后性是由于酸络合物的不可逆形成,以及在酸滴定结束时和碱滴定过程中均聚物的释放:均聚物混合物保持稳定到pH7。1G:1C化学计量比似乎最可能是酸配合物,如poly(C + )·poly(I)·poly(C)中所示的1G:2C化学计量比。 )或poly(C + )·poly(G)·poly(C),不能被拒绝。在研究过程中,已经发现证据表明质子化的结构后果可能对双链聚(dG)·聚(dC)和富含GC的DNA均相似:1)质子化在pH 6附近开始,酸的解离聚(dG)·聚(dC)与质子化DNA的复合物在pH 3下发生。 2)计算出的酸性聚合物配合物的CD光谱在255 nm处显示一个正峰,如在DNA的酸性光谱中所见; 3)嵌入三链聚(dG)·聚(dG)·聚(dC)的双链聚(dG)·聚(dC)应该为A形,并且似乎可以防止质子引起的构象变化。因此,中性三链聚(dG)·聚(dG)·聚(dC)似乎是造成聚酸(dG)·聚(dC)样品酸滴定的复杂性和可变性的间接原因。

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