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胃酸碱稳定和黏蛋白结合酶聚合物偶联物的设计。

Design of Stomach Acid-Stable and Mucin-Binding Enzyme Polymer Conjugates.

机构信息

Center for Polymer-Based Protein Engineering, ‡Department of Biomedical Engineering, §Disruptive Health Technology Institute, and ∥Department of Chemistry, Carnegie Mellon University , Pittsburgh, Pennsylvania 15213, United States.

出版信息

Biomacromolecules. 2017 Feb 13;18(2):576-586. doi: 10.1021/acs.biomac.6b01723. Epub 2017 Jan 31.

Abstract

The reduced immunogenicity and increased stability of protein-polymer conjugates has made their use in therapeutic applications particularly attractive. However, the physicochemical interactions between polymer and protein, as well as the effect of this interaction on protein activity and stability, are still not fully understood. In this work, polymer-based protein engineering was used to examine the role of polymer physicochemical properties on the activity and stability of the chymotrypsin-polymer conjugates and their degree of binding to intestinal mucin. Four different chymotrypsin-polymer conjugates, each with the same polymer density, were synthesized using "grafting-from" atom transfer radical polymerization. The influence of polymer charge on chymotrypsin-polymer conjugate mucin binding, bioactivity, and stability in stomach acid was determined. Cationic polymers covalently attached to chymotrypsin showed high mucin binding, while zwitterionic, uncharged, and anionic polymers showed no mucin binding. Cationic polymers also increased chymotrypsin activity from pH 6-8, while zwitterionic polymers had no effect, and uncharged and anionic polymers decreased enzyme activity. Lastly, cationic polymers decreased the tendency of chymotrypsin to structurally unfold at extremely low pH, while uncharged and anionic polymers induced unfolding more quickly. We hypothesized that when polymers are covalently attached to the surface of a protein, the degree to which those polymers interact with the protein surface is the predominant determinant of whether the polymer will stabilize or inactivate the protein. Preferential interactions between the polymer and the protein lead to removal of water from the surface of the protein, and this, we believe, inactivates the enzyme.

摘要

蛋白质-聚合物缀合物的免疫原性降低和稳定性增加,使其在治疗应用中特别有吸引力。然而,聚合物和蛋白质之间的物理化学相互作用,以及这种相互作用对蛋白质活性和稳定性的影响,仍未完全了解。在这项工作中,使用基于聚合物的蛋白质工程来研究聚合物物理化学性质对糜蛋白酶-聚合物缀合物的活性和稳定性及其与肠粘液结合程度的影响。使用“从接枝”原子转移自由基聚合合成了四种不同的糜蛋白酶-聚合物缀合物,每种缀合物的聚合物密度相同。确定了聚合物电荷对糜蛋白酶-聚合物缀合物粘蛋白结合、生物活性和在胃酸中稳定性的影响。共价连接到糜蛋白酶的阳离子聚合物表现出高粘蛋白结合,而两性离子、不带电和阴离子聚合物则没有粘蛋白结合。阳离子聚合物还增加了糜蛋白酶在 pH 6-8 之间的活性,而两性离子聚合物没有影响,不带电和阴离子聚合物则降低了酶活性。最后,阳离子聚合物降低了糜蛋白酶在极低 pH 下结构展开的趋势,而不带电和阴离子聚合物则更快地诱导展开。我们假设,当聚合物共价连接到蛋白质表面时,聚合物与蛋白质表面相互作用的程度是决定聚合物是否稳定或使蛋白质失活的主要因素。聚合物与蛋白质之间的优先相互作用会导致蛋白质表面的水分被去除,我们认为这会使酶失活。

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