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Rational Tailoring of Substrate and Inhibitor Affinity via ATRP Polymer-Based Protein Engineering

机译:通过基于ATRP聚合物的蛋白质工程合理调整底物和抑制剂的亲和力

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Atom transfer radical polymerization (ATRP)-based protein engineering of chymotrypsin with a cationic polymer was used to tune the substrate specificity and inhibitor binding. Poly(quaternary ammonium) was grown from the surface of the enzyme using ATRP after covalent attachment of a protein reactive, water-soluble ATRP-initiator, This "grafting from" conjugation approach generated a high density of cationic ammonium ions around the biocatalytic core. Modification increased the surface area of the protein over 40-fold, and the density of modification oh the protein surface was approximately one chain per 4 nm~2. After modification, bioactivity was increased at low pH relative to the activity of the native enzyme. In addition, the affinity of the enzyme for a peptide substrate was increased over a wide pH range. The massively cationic chymotrypsin, which included up to 2000 additional positive charges per molecule of enzyme, was also more stable at extremes,of temperature and pH. Most interestingly, we were able to rationally control the binding of two oppositely charged polypeptide protease inhibitors, aprotinin and the Bowman—Birk trypsin—chymotrypsin inhibitor from Glycine max, to the cationic derivative of chymotrypsin. This study expands upon our efforts to use polymer-based protein engineering to predictably engineer enzyme properties without the need for molecular biology.
机译:胰凝乳蛋白酶与阳离子聚合物的基于原子转移自由基聚合(ATRP)的蛋白质工程用于调节底物特异性和抑制剂结合。共价附接蛋白质反应性水溶性ATRP引发剂后,使用ATRP从酶的表面生长聚季铵盐。这种“接枝”偶联方法在生物催化核心周围产生了高密度的阳离子铵离子。修饰使蛋白质的表面积增加了40倍以上,蛋白质表面的修饰密度约为每4 nm〜2个链。修饰后,相对于天然酶的活性,在低pH下生物活性增加。另外,在宽的pH范围内,酶对肽底物的亲和力增加。巨大的阳离子胰凝乳蛋白酶,每分子酶最多包含2000个正电荷,在极端温度和pH值下也更稳定。最有趣的是,我们能够合理地控制两种带相反电荷的多肽蛋白酶抑制剂,抑肽酶和来自Glycine max的Bowman-Birk胰蛋白酶-胰凝乳蛋白酶抑制剂与胰凝乳蛋白酶的阳离子衍生物的结合。这项研究扩展了我们在不使用分子生物学的情况下使用基于聚合物的蛋白质工程来可预测地工程化酶性质的努力。

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