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Optimized single-step affinity purification with a self-cleaving linker applied to human acidic fibroblast growth factor (SEP)

机译:使用适用于人酸性成纤维细胞生长因子(SEP)的自裂解接头优化一步亲和纯化

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To reduce the number of recovery steps during downstream processing and to overcome the limitations of presnet fusion-based affinity separations, a controllable linker (self-splicing protein element or mini-intein) was used to optimize the recovery of proteins for both batch and flow purification strategies. The ability to recovery purified proteins was demonstrated using a novel tripartite fusion consisting of a maltose binding domain, a truncated intein as a controllable linker molecule, and the protein of interest. The characterize expression level, solubility, cleavage rates, pH and temperature controllability, and protein activity, recombinant human acidic fibroblast growth factor (aFGF) was used as a model protein. A simple mass transport model, based on cleavage reaction-limited mass transfer and constant dispersion, was successfully used to predict product concentration and peak shape in relation to critical parameters (with no fitting parameters). Insight into the nature of the cleavage reaction and its regulation was obtained via temperature- and pH-dependent kinetic data.
机译:为了减少下游加工过程中的回收步骤数量并克服基于presnet融合的亲和分离的局限性,使用了可控制的连接子(自拼合蛋白元件或微型内含肽)来优化批料和流动料的蛋白回收率纯化策略。使用由麦芽糖结合结构域,截短的内含蛋白作为可控制的连接分子以及目标蛋白组成的新型三方融合体,证明了回收纯化蛋白的能力。为了表征表达水平,溶解度,切割速率,pH和温度可控性以及蛋白质活性,将重组人酸性成纤维细胞生长因子(aFGF)用作模型蛋白质。基于裂解反应受限的传质和恒定分散的简单传质模型已成功用于预测与关键参数(无拟合参数)相关的产物浓度和峰形。通过取决于温度和pH的动力学数据,洞悉了裂解反应的性质及其调控。

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