Lukásová E, Vojtísková M, Jelen F, Sticzay T, Palecek E
Gen Physiol Biophys. 1984 Apr;3(2):175-91.
In the presence of pyridine and other ligands osmium tetroxide binds covalently to pyrimidine bases in DNA. Properties of osmium-modified native and denatured calf thymus DNA, and plasmid Co1E1 DNA were investigated by means of differential pulse polarography, absorption spectrophotometry, circular dichroism, agarose gel electrophoresis, and nuclease S1 digestion. A great difference in the reaction kinetics of native and denatured DNAs with osmium, pyridine was observed. On the ground of the slow stepwise reaction kinetics of native DNA in the initial stage of its modification by osmium it has been suggested that the primary reaction sites do not include bases contained in the intact double helix. Osmium binding to sporadic primary reaction sites (represented e.g. by bases in the vicinity of a single-strand break) in native calf thymus DNA resulted in local changes in DNA conformation limited to a close neighbourhood of the binding site. At higher osmium/nucleotide ratios disordering of the DNA structure over a region extending beyond the immediate binding site was observed. With denatured DNA the same type of structure disordering was detected already in the initial stage of the reaction at osmium/nucleotide ratios as low as 0.01. Osmium binding to the supercoiled Co1E1 DNA resulted in its relaxation without nicking and it increased its sensitivity to linearization by cleavage with nuclease S1. The behaviour of Co1E1 DNA has been explained by the formation of a denatured region in the molecule (accompanied by a coupled loss of duplex and superhelical turns). It has been suggested that osmium can be used to label and to visualize distorted regions in the DNA double helix.
在吡啶和其他配体存在的情况下,四氧化锇与DNA中的嘧啶碱基共价结合。通过微分脉冲极谱法、吸收分光光度法、圆二色性、琼脂糖凝胶电泳和核酸酶S1消化等方法,研究了经锇修饰的天然和变性小牛胸腺DNA以及质粒Co1E1 DNA的性质。观察到天然和变性DNA与锇、吡啶反应动力学存在很大差异。基于天然DNA在被锇修饰初始阶段的缓慢逐步反应动力学,有人提出初级反应位点不包括完整双螺旋中所含的碱基。锇与天然小牛胸腺DNA中零星的初级反应位点(例如由单链断裂附近的碱基代表)结合,导致DNA构象仅在结合位点附近发生局部变化。在较高的锇/核苷酸比率下,观察到DNA结构在超出直接结合位点的区域发生无序化。对于变性DNA,在反应初始阶段,当锇/核苷酸比率低至0.01时就检测到了相同类型的结构无序化。锇与超螺旋Co1E1 DNA结合导致其松弛而不产生切口,并增加了其对核酸酶S1切割线性化的敏感性。Co1E1 DNA的行为可以通过分子中变性区域的形成(伴随着双链和超螺旋圈数的耦合损失)来解释。有人提出,锇可用于标记和可视化DNA双螺旋中的扭曲区域。