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首页> 外文期刊>Nucleic Acids Research >Structure of Rsrl methyltransferase, a member of the N6-adenine #beta# class of DNA methyltransferases
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Structure of Rsrl methyltransferase, a member of the N6-adenine #beta# class of DNA methyltransferases

机译:Rsrl甲基转移酶,DNA甲基转移酶的N6-腺嘌呤#beta#类成员的结构

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DNA methylation is important in cellular, developmental and disease processes, as well as in bacterial restriction-modification systems. Methylation of DNA at the amino groups of cytosine and adenine is a common mode of protection against restriction endonucleases afforded by the bacterial methyltransferases. The first structure of an N6-adenine methyltransferase belonging to the #beta# class of bacterial methylransferases is described here. The structure of M Rsrl from Rhodobacter sphaeroides, which methylates the second adenine of the GAATTC sequence, was determined to 1.75 A resolution using X-ray crystallography. Like other methyltransferases, the enzyme contains the methylase fold and has well-defined substrate binding pockets. The catalytic core most closely resembles the Pvull methyltransferase, a cytosine amino methyltranstferase of the same #beta# group. The larger nucleotide binding pocket observed in M Rsrl is expected because it methylates adenine. However, the most striking difference between the Rsrl methyltransferase and the other bacterial enzymes is the structure of the putative DNA target recognition domain, which is formed in part by two helices on an extended arm of the protein on the face of the enzyme opposite the active site. This observation suggests that a dramatic conformational change or oligomerization may take place during DNA binding and methylation.
机译:DNA甲基化在细胞,发育和疾病过程以及细菌限制性修饰系统中很重要。 DNA在胞嘧啶和腺嘌呤氨基上的甲基化是一种常见的保护模式,可防止细菌甲基转移酶提供的限制性核酸内切酶。这里描述了属于细菌甲基转移酶的#beta#类的N6-腺嘌呤甲基转移酶的第一结构。使用X射线晶体学测定,球形红球菌的M Rsrl的结构被甲基化,该甲基化GAATTC序列的第二个腺嘌呤,分辨率为1.75A。像其他甲基转移酶一样,该酶含有甲基化酶折叠,并具有明确的底物结合口袋。催化核心与Pvull甲基转移酶最相似,Pvull甲基转移酶是同一#beta#基团的胞嘧啶氨基甲基转移酶。预期在M Rsrl中观察到更大的核苷酸结合口袋,因为它使腺嘌呤甲基化。但是,Rsrl甲基转移酶和其他细菌酶之间最显着的差异是推定的DNA靶标识别域的结构,该结构部分是由与活性物质相反的酶表面上的蛋白质延伸臂上的两个螺旋部分形成的。现场。该观察结果表明在DNA结合和甲基化过程中可能发生剧烈的构象变化或低聚。

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