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首页> 外文期刊>PLoS Computational Biology >SpaK/SpaR Two-component System Characterized by a Structure-driven Domain-fusion Method and in Vitro Phosphorylation Studies
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SpaK/SpaR Two-component System Characterized by a Structure-driven Domain-fusion Method and in Vitro Phosphorylation Studies

机译:结构驱动的域融合方法表征的SpaK / SpaR两组分系统和体外磷酸化研究

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Here we introduce a quantitative structure-driven computational domain-fusion method, which we used to predict the structures of proteins believed to be involved in regulation of the subtilin pathway in Bacillus subtilis, and used to predict a protein-protein complex formed by interaction between the proteins. Homology modeling of SpaK and SpaR yielded preliminary structural models based on a best template for SpaK comprising a dimer of a histidine kinase, and for SpaR a response regulator protein. Our LGA code was used to identify multi-domain proteins with structure homology to both modeled structures, yielding a set of domain-fusion templates then used to model a hypothetical SpaK/SpaR complex. The models were used to identify putative functional residues and residues at the protein-protein interface, and bioinformatics was used to compare functionally and structurally relevant residues in corresponding positions among proteins with structural homology to the templates. Models of the complex were evaluated in light of known properties of the functional residues within two-component systems involving His-Asp phosphorelays. Based on this analysis, a phosphotransferase complexed with a beryllofluoride was selected as the optimal template for modeling a SpaK/SpaR complex conformation. In vitro phosphorylation studies performed using wild type and site-directed SpaK mutant proteins validated the predictions derived from application of the structure-driven domain-fusion method: SpaK was phosphorylated in the presence of 32P-ATP and the phosphate moiety was subsequently transferred to SpaR, supporting the hypothesis that SpaK and SpaR function as sensor and response regulator, respectively, in a two-component signal transduction system, and furthermore suggesting that the structure-driven domain-fusion approach correctly predicted a physical interaction between SpaK and SpaR. Our domain-fusion algorithm leverages quantitative structure information and provides a tool for generation of hypotheses regarding protein function, which can then be tested using empirical methods.
机译:在这里,我们介绍了一种定量结构驱动的计算域融合方法,该方法用于预测被认为参与枯草芽孢杆菌枯草蛋白酶途径调控的蛋白质的结构,并用于预测由两者之间的相互作用形成的蛋白质-蛋白质复合物蛋白质。 SpaK和SpaR的同源性建模产生了基于最佳模板的初步结构模型,该模板是SpaK的最佳模板,其中包括组氨酸激酶的二聚体,而SpaR的响应模板是蛋白质。我们的LGA代码用于识别与两个建模结构均具有结构同源性的多域蛋白,从而产生一组域融合模板,然后用于模拟假设的SpaK / SpaR复合体。该模型用于鉴定推定的功能残基和蛋白质-蛋白质界面的残基,生物信息学用于比较蛋白质中与模板具有结构同源性的相应位置的功能和结构相关残基。根据涉及His-Asp磷光体的两组分系统中功能残基的已知性质,评估了复合物的模型。基于此分析,选择与铍氟化物络合的磷酸转移酶作为建模SpaK / SpaR复合物构象的最佳模板。使用野生型和定点SpaK突变蛋白进行的体外磷酸化研究验证了结构驱动结构域融合方法的应用所产生的预测:在32P-ATP存在的情况下将SpaK磷酸化,随后将磷酸部分转移至SpaR ,支持在两个成分的信号转导系统中SpaK和SpaR分别充当传感器和响应调节器的假设,并且进一步表明结构驱动的域融合方法正确地预测了SpaK和SpaR之间的物理相互作用。我们的域融合算法利用了定量结构信息,并提供了生成有关蛋白质功能的假设的工具,然后可以使用经验方法对其进行测试。

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