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含有改变糖残基的DNA双链体作为EcoRII和MvaI内切核酸酶与糖磷酸骨架相互作用的探针。

DNA duplexes containing altered sugar residues as probes of EcoRII and MvaI endonuclease interactions with sugar-phosphate backbone.

作者信息

Petrauskene O V, Yakovleva J N, Alekseev Y I, Subach F V, Babkina O V, Gromova E S

机构信息

Department of Chemistry and Belozersky Institute of Physico-Chemical Biology, Moscow State University, Russia.

出版信息

J Biomol Struct Dyn. 2000 Apr;17(5):857-70. doi: 10.1080/07391102.2000.10506574.

DOI:10.1080/07391102.2000.10506574
PMID:10798530
Abstract

Oligonucleotides containing 1-(beta-D-2'-deoxy-threo-pentofuranosyl)cytosine (dCx) and/or 1-(beta-D-2'-deoxy-threo-pentofuranosyl)thymine (dTx) in place of dC and dT residues in the EcoRII and MvaI recognition site CC(A/T)GG were synthesized in order to investigate specific recognition of the DNA sugar-phosphate backbone by EcoRII and MvaI restriction endonucleases. In 2'-deoxyxylosyl moieties of dCx and dTx, 3'-hydroxyl groups were inverted, which perturbs the related individual phosphates. Introduction of a single 2'-deoxyxylosyl moiety into a dC x dG pair resulted in a minor destabilization of double-stranded DNA structure. In the case of a dA x dT pair the effect of a 2'-deoxyxylose incorporation was much more pronounced. Multiple dCx modifications and their combination with dTx did not enhance the destabilization effect. Hydrolysis of dCx-containing DNA duplexes by EcoRII endonuclease was blocked and binding affinity was strongly depended on the location of an altered sugar. A DNA duplex containing a dTx residue was cleaved by the enzyme, but kcat/K(M) was slightly reduced. In contrast, MvaI endonuclease efficiently cleaved both types of sugar-altered substrate analogs. However it did not cleave conformationally perturbed scissile bonds, when the corresponding unmodified bonds were perfectly hydrolyzed in the same DNA duplexes. Based on these data the possible contributions of individual phosphates in the recognition site to substrate recognition and catalysis by EcoRII were proposed. We observed strikingly non-equivalent inputs for different phosphates with respect to their effect on EcoRII-DNA complex formation.

摘要

合成了在EcoRII和MvaI识别位点CC(A/T)GG中用1-(β-D-2'-脱氧-苏式-戊呋喃糖基)胞嘧啶(dCx)和/或1-(β-D-2'-脱氧-苏式-戊呋喃糖基)胸腺嘧啶(dTx)取代dC和dT残基的寡核苷酸,以研究EcoRII和MvaI限制性内切酶对DNA糖磷酸骨架的特异性识别。在dCx和dTx的2'-脱氧木糖基部分中,3'-羟基被倒置,这扰乱了相关的单个磷酸基团。在dC x dG对中引入单个2'-脱氧木糖基部分导致双链DNA结构略有不稳定。在dA x dT对的情况下,2'-脱氧木糖掺入的影响更为明显。多个dCx修饰及其与dTx的组合并没有增强不稳定效应。EcoRII内切酶对含dCx的DNA双链体的水解被阻断,结合亲和力强烈依赖于改变的糖的位置。含有dTx残基的DNA双链体被该酶切割,但kcat/K(M)略有降低。相比之下,MvaI内切酶有效地切割了两种类型的糖改变的底物类似物。然而,当相应的未修饰键在相同的DNA双链体中被完美水解时,它并没有切割构象受扰的可裂解键。基于这些数据,提出了识别位点中单个磷酸基团对EcoRII底物识别和催化的可能贡献。我们观察到不同磷酸基团对EcoRII-DNA复合物形成的影响具有明显的非等效作用。

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