首页> 外文期刊>Analytical chemistry >BIFUNCTIONAL FUSION PROTEINS OF CALMODULIN AND PROTEIN A AS AFFINITY LIGANDS IN PROTEIN PURIFICATION AND IN THE STUDY OF PROTEIN-PROTEIN INTERACTIONS
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BIFUNCTIONAL FUSION PROTEINS OF CALMODULIN AND PROTEIN A AS AFFINITY LIGANDS IN PROTEIN PURIFICATION AND IN THE STUDY OF PROTEIN-PROTEIN INTERACTIONS

机译:钙调蛋白和蛋白A的功能性融合蛋白作为纯化蛋白和研究蛋白与蛋白相互作用的亲和力配体

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An affinity chromatography system is described that incorporates a genetically designed bifunctional affinity ligand. The utility of the system in protein purification and in the study of protein-protein interactions is demonstrated by using the interaction between protein A and the heat shock protein DnaK as a model system, The bifunctional affinity ligand was developed by genetically fusing calmodulin (CaM) to protein A (ProtA). The dual functionality of protein A-calmodulin (ProtA-CaM) stems from the molecular recognition properties of the two components of the fusion protein, In particular, CaM serves as the anchoring component by virtue of its binding properties toward phenothiazine, Thus, the ProtA-CaM can be immobilized on a solid support containing phenothiazine from the C-terminal domain of the fusion protein. Protein A is at the N-terminal domain of the fusion protein and serves as the affinity site for DnaK. While DnaK binds specifically to the protein A domain of the bifunctional ligand, it is released upon addition of ATP and under very mild conditions (pH 7.0). In addition to obtaining highly purified DnaK, this system is very ragged in terms of its performance. The proteinaceous bifunctional affinity ligand can be easily removed by addition of EGTA, and fresh ProtA-CaM can be easily reloaded onto the column. This allows for a facile regeneration of the affinity column because the phenothiazine-silica support matrix is stable for long periods of time under a variety of conditions. This study also demonstrates that calmodulin fusions can provide a new approach to study protein-protein interactions. Indeed, the ProtA-CaM fusion protein identified DnaK as a cellular component that interacts with protein A from among the thousands of proteins present in Escherichia coli.
机译:描述了结合了遗传设计的双功能亲和配体的亲和色谱系统。以蛋白质A和热激蛋白DnaK之间的相互作用为模型系统,证明了该系统在蛋白质纯化和蛋白质-蛋白质相互作用研究中的实用性。通过遗传融合钙调蛋白(CaM)开发了双功能亲和配体蛋白质A(ProtA)。蛋白质A-钙调蛋白(ProtA-CaM)的双重功能源于融合蛋白两个成分的分子识别特性,特别是CaM由于其与吩噻嗪的结合特性而充当锚定成分,因此ProtA -CaM可以固定在含有来自融合蛋白C端结构域的吩噻嗪的固体支持物上。蛋白A在融合蛋白的N末端结构域,充当DnaK的亲和位点。尽管DnaK特异性结合双功能配体的蛋白A结构域,但在添加ATP并在非常温和的条件下(pH 7.0)释放。除了获得高度纯化的DnaK之外,该系统在性能方面也非常参差不齐。蛋白质的双功能亲和配体可以通过添加EGTA轻松去除,新鲜的ProtA-CaM可以轻松地重新上样到色谱柱上。由于吩噻嗪-二氧化硅载体基质在各种条件下都能长期稳定,因此可以方便地再生亲和柱。这项研究还证明钙调蛋白融合可以提供一种研究蛋白质相互作用的新方法。实际上,ProtA-CaM融合蛋白从大肠杆菌中存在的数千种蛋白质中鉴定出DnaK是与蛋白质A相互作用的细胞成分。

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