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Structure-Guided Design of an Engineered Streptavidin with Reusability to Purify Streptavidin-Binding Peptide Tagged Proteins or Biotinylated Proteins

机译:工程链霉亲和素的结构导向设计可重复使用以纯化链霉亲和素结合肽标记的蛋白或生物素化蛋白。

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摘要

Development of a high-affinity streptavidin-binding peptide (SBP) tag allows the tagged recombinant proteins to be affinity purified using the streptavidin matrix without the need of biotinylation. The major limitation of this powerful technology is the requirement to use biotin to elute the SBP-tagged proteins from the streptavidin matrix. Tight biotin binding by streptavidin essentially allows the matrix to be used only once. To address this problem, differences in interactions of biotin and SBP with streptavidin were explored. Loop3–4 which serves as a mobile lid for the biotin binding pocket in streptavidin is in the closed state with biotin binding. In contrast, this loop is in the open state with SBP binding. Replacement of glycine-48 with a bulkier residue (threonine) in this loop selectively reduces the biotin binding affinity (Kd) from 4×10−14 M to 4.45×10−10 M without affecting the SBP binding affinity. of a second mutation (S27A) to the first mutein (G48T) results in the development of a novel engineered streptavidin SAVSBPM18 which could be recombinantly produced in the functional form from Bacillus subtilis via secretion. To form an intact binding pocket for tight binding of SBP, two diagonally oriented subunits in a tetrameric streptavidin are required. It is vital for SAVSBPM18 to be stably in the tetrameric state in solution. This was confirmed using an HPLC/Laser light scattering system. SAVSBPM18 retains high binding affinity to SBP but has reversible biotin binding capability. The SAVSBPM18 matrix can be applied to affinity purify SBP-tagged proteins or biotinylated molecules to homogeneity with high recovery in a reusable manner. A mild washing step is sufficient to regenerate the matrix which can be reused for multiple rounds. Other applications including development of automated protein purification systems, lab-on-a-chip micro-devices, reusable biosensors, bioreactors and microarrays, and strippable detection agents for various blots are possible.
机译:高亲和力抗生蛋白链菌素结合肽(SBP)标签的开发使使用抗生蛋白链菌素基质无需生物素化即可对标记的重组蛋白进行亲和纯化。这项功能强大的技术的主要局限性是需要使用生物素从链霉亲和素基质中洗脱SBP标签的蛋白。链霉亲和素与生物素的紧密结合本质上仅允许基质使用一次。为了解决该问题,探索了生物素和SBP与链霉亲和素的相互作用的差异。 Loop3–4用作链霉亲和素中生物素结合口袋的活动盖,处于与生物素结合的闭合状态。相反,此循环在SBP绑定处于打开状态。在该循环中用较大的残基(苏氨酸)取代甘氨酸48可以选择性地将生物素结合亲和力(Kd)从4×10 -14 M降低到4.45×10 -10 M,而不影响SBP结合亲和力。将第二突变(S27A)突变为第一突变蛋白(G48T)导致开发了新型工程改造的链霉亲和素SAVSBPM18,其可以通过分泌从枯草芽孢杆菌中以功能形式重组产生。为了形成完整的结合袋以紧密结合SBP,需要四聚链霉亲和素中的两个对角取向的亚基。 SAVSBPM18在溶液中稳定为四聚体状态至关重要。使用HPLC /激光光散射系统证实了这一点。 SAVSBPM18保留对SBP的高结合亲和力,但具有可逆的生物素结合能力。 SAVSBPM18基质可用于以可重复使用的方式亲和纯化SBP标签的蛋白质或生物素化分子,使其同质化,回收率高。温和的洗涤步骤足以使基质再生,可重复使用多次。其他应用包括开发自动化蛋白质纯化系统,芯片实验室微型设备,可重复使用的生物传感器,生物反应器和微阵列以及用于各种印迹的可剥离检测剂等也是可能的。

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    Sau-Ching Wu; Sui-Lam Wong;

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  • 年(卷),期 -1(8),7
  • 年度 -1
  • 页码 e69530
  • 总页数 10
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