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Directed, Strong, and Reversible Immobilization of Proteins Tagged with a β-Trefoil Lectin Domain: A Simple Method to Immobilize Biomolecules on Plain Agarose Matrixes

机译:定向,强和可逆的固定化带有β-三叶凝集素域的蛋白质的固定:一种简单的方法将生物分子固定在普通琼脂糖基质上

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摘要

A highly stable lipase from Geobacillus thermocatenolatus (BTL2) and the enhanced green fluorescent protein from Aquorea victoria (EGFP) were recombinantly produced N-terminally tagged to the lectin domain of the hemolytic pore-forming toxin LSLa from the mushroom Laetiporus sulphureus. Such a domain (LSL_(150)), recently described as a novel fusion tag, is based on a β-trefoil scaffold with two operative binding sites for galactose or galactose-containing derivatives. The fusion proteins herein analyzed have enabled us to characterize the binding mode of LSL_(150) to polymeric and solid substrates such as agarose beads. The lectin-fusion proteins are able to be quantitatively bound to both cross-linked and non-cross-linked agarose matrixes in a very rapid manner, resulting in a surprisingly dynamic protein distribution inside the porous beads that evolves from heterogeneous to homogeneous along the postimmobilization time. Such dynamic distribution can be related to the reversible nature of the LSL_(150)-agarose interaction. Furthermore, this latter interaction is temperature dependent since it is 4-fold stronger when the immobilization takes place at 25 °C than when it does at 4 °C. The strongest lectin-agarose interaction is also quite stable under a survey of different conditions such as high temperatures (up to 60 °C) or high organic solvent concentrations (up to 60% of acetonitrile). Notably, the use of cross-linked agarose would endow the system with more robustness due to its better mechanical properties compared to the noncross-linked one. The stability of the LSL_(150)-agarose interaction would prevent protein leaching during the operation process unless high pH media are used. In summary, we believe that the LSL_(150) lectin domain exhibits interesting structural features as an immobilization domain that makes it suitable to reversibly immobilize industrially relevant enzymes in very simple carriers as agarose.
机译:重组产生了来自热嗜热地芽孢杆菌(BTL2)的高度稳定的脂肪酶和维克多Aquorea victoria的增强的绿色荧光蛋白(EGFP),在N末端重组标记了来自蘑菇Laetiporus sulfureus的溶血成孔毒素LSLa的凝集素域。最近被描述为新型融合标签的这种结构域(LSL_(150))是基于β-三叶支架,该支架具有两个半乳糖或含半乳糖衍生物的有效结合位点。本文分析的融合蛋白使我们能够表征LSL_(150)与聚合和固体底物(如琼脂糖珠)的结合模式。凝集素融合蛋白能够以非常快速的方式定量地结合到交联和未交联的琼脂糖基质上,从而导致多孔珠粒内部的蛋白质动态惊人地分布,沿着固定化过程从异质演变为均质时间。这种动态分布可能与LSL_(150)-琼脂糖相互作用的可逆性有关。此外,后一种相互作用是温度依赖性的,因为当在25°C进行固定时,其相互作用要比在4°C进行的固化强4倍。在不同条件(例如高温(最高60°C)或高有机溶剂浓度(最高60%的乙腈))的调查中,最强的凝集素-琼脂糖相互作用也非常稳定。值得注意的是,与非交联的琼脂糖相比,使用交联的琼脂糖具有更好的机械性能,因为它具有更好的机械性能。除非使用高pH介质,否则LSL_(150)-琼脂糖相互作用的稳定性将防止蛋白质在操作过程中浸出。总之,我们认为LSL_(150)凝集素结构域显示出有趣的结构特征,如固定化结构域,使其适合可逆地固定工业相关酶在非常简单的载体(如琼脂糖)中。

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