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首页> 外文期刊>Molecular therapy: the journal of the American Society of Gene Therapy >Structural Determinants of Sleeping Beauty Transposase Activity
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Structural Determinants of Sleeping Beauty Transposase Activity

机译:睡美人转座酶活性的结构决定因素

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Transposases are important tools in genome engineering, and there is considerable interest in engineering more efficient ones. Here, we seek to understand the factors determining their activity using the Sleeping Beauty transposase. Recent work suggests that protein coevolutionary information can be used to classify groups of physically connected, coevolving residues into elements called "sectors", which have proven useful for understanding the folding, allosteric interactions, and enzymatic activity of proteins. Using extensive mutagenesis data, protein modeling and analysis of folding energies, we show that (i) The Sleeping Beauty transposase contains two sectors, which span across conserved domains, and are enriched in DNA-binding residues, indicating that the DNA binding and endonuclease functions of the transposase coevolve; (ii) Sector residues are highly sensitive to mutations, and most mutations of these residues strongly reduce transposition rate; (iii) Mutations with a strong effect on free energy of folding in the DDE domain of the transposase significantly reduce transposition rate. (iv) Mutations that influence DNA and proteinprotein interactions generally reduce transposition rate, although most hyperactive mutants are also located on the protein surface, including residues with protein-protein interactions. This suggests that hyperactivity results from the modification of protein interactions, rather than the stabilization of protein fold.
机译:转座酶是基因组工程中的重要工具,并且对工程更有效的工具有相当大的兴趣。在这里,我们试图了解使用“睡美人”转座酶决定其活动的因素。最近的工作表明,蛋白质共进化信息可用于将物理连接的,共同进化的残基分类为称为“扇形”的元素,这些信息已被证明对理解蛋白质的折叠,变构相互作用和酶促活性有用。使用广泛的诱变数据,蛋白质建模和折叠能量分析,我们表明(i)《睡美人》转座酶包含两个区段,跨越保守结构域,并且富含DNA结合残基,表明DNA结合和核酸内切酶功能转座酶的进化; (ii)部门残基对突变高度敏感,这些残基的大多数突变都大大降低了转座率; (iii)对转座酶DDE结构域中折叠自由能有重大影响的突变会大大降低转座率。 (iv)影响DNA和蛋白质相互作用的突变通常会降低转座率,尽管大多数高活性突变体也位于蛋白质表面,包括具有蛋白质相互作用的残基。这表明多动症是由蛋白质相互作用的改变引起的,而不是蛋白质折叠的稳定化。

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