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首页> 外文期刊>Nucleic acids research >A unified genetic, computational and experimental framework identifies functionally relevant residues of the homing endonuclease I-BmoI
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A unified genetic, computational and experimental framework identifies functionally relevant residues of the homing endonuclease I-BmoI

机译:统一的遗传,计算和实验框架可识别归巢内切核酸酶I-BmoI的功能相关残基

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Insight into protein structure and function is best obtained through a synthesis of experimental, structural and bioinformatic data. Here, we outline a framework that we call MUSE (mutual information, unigenic evolution and structure-guided elucidation), which facilitated the identification of previously unknown residues that are relevant for function of the GIY-YIG homing endonuclease I-BmoI. Our approach synthesizes three types of data: mutual information analyses that identify co-evolving residues within the GIY-YIG catalytic domain; a unigenic evolution strategy that identifies hyper- and hypo-mutable residues of I-BmoI; and interpretation of the unigenic and co-evolution data using a homology model. In particular, we identify novel positions within the GIY-YIG domain as functionally important. Proof-of-principle experiments implicate the non-conserved I71 as functionally relevant, with an I71N mutant accumulating a nicked cleavage intermediate. Moreover, many additional positions within the catalytic, linker and C-terminal domains of I-BmoI were implicated as important for function. Our results represent a platform on which to pursue future studies of I-BmoI and other GIY-YIG-containing proteins, and demonstrate that MUSE can successfully identify novel functionally critical residues that would be ignored in a traditional structure-function analysis within an extensively studied small domain of ~90 amino acids.
机译:通过综合实验,结构和生物信息学数据,可以最好地了解蛋白质的结构和功能。在这里,我们概述了一个我们称为MUSE(互信息,单基因进化和结构指导的阐明)的框架,该框架有助于鉴定与GIY-YIG归巢核酸内切酶I-BmoI功能相关的先前未知的残基。我们的方法综合了三种类型的数据:相互信息分析,可识别GIY-YIG催化域内共同进化的残基;识别I-BmoI高突变和低突变残基的单基因进化策略;同源模型解释和解释单基因和共同进化数据。特别地,我们将GIY-YIG域内的新位置确定为功能上重要的位置。原理验证实验暗示非保守的I71在功能上是相关的,其中I71N突变体积累了带切口的裂解中间体。此外,暗示I-BmoI的催化,接头和C末端结构域内的许多其他位置对于功能很重要。我们的结果代表了一个平台,可以在此平台上继续研究I-BmoI和其他包含GIY-YIG的蛋白质,并证明MUSE可以成功地鉴定出在广泛研究中传统结构功能分析中将被忽略的新型功能关键残基约90个氨基酸的小区域。

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