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Tuning Butyrylcholinesterase Inactivation and Reactivation by Polymer‐Based Protein Engineering

机译:通过基于聚合物的蛋白质工程技术调节丁酰胆碱酯酶的失活和再激活

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摘要

Organophosphate nerve agents rapidly inhibit cholinesterases thereby destroying the ability to sustain life. Strong nucleophiles, such as oximes, have been used as therapeutic reactivators of cholinesterase‐organophosphate complexes, but suffer from short half‐lives and limited efficacy across the broad spectrum of organophosphate nerve agents. Cholinesterases have been used as long‐lived therapeutic bioscavengers for unreacted organophosphates with limited success because they react with organophosphate nerve agents with one‐to‐one stoichiometries. The chemical power of nucleophilic reactivators is coupled to long‐lived bioscavengers by designing and synthesizing cholinesterase‐polymer‐oxime conjugates using atom transfer radical polymerization and azide‐alkyne “click” chemistry. Detailed kinetic studies show that butyrylcholinesterase‐polymer‐oxime activity is dependent on the electrostatic properties of the polymers and the amount of oxime within the conjugate. The covalent coupling of oxime‐containing polymers to the surface of butyrylcholinesterase slows the rate of inactivation of paraoxon, a model nerve agent. Furthermore, when the enzyme is covalently inhibited by paraoxon, the covalently attached oxime induced inter‐ and intramolecular reactivation. Intramolecular reactivation will open the door to the generation of a new class of nerve agent scavengers that couple the speed and selectivity of biology to the ruggedness and simplicity of synthetic chemicals.
机译:有机磷酸神经药会迅速抑制胆碱酯酶,从而破坏维持生命的能力。强大的亲核试剂(例如肟)已被用作胆碱酯酶-有机磷酸酯复合物的治疗性激活剂,但半衰期短且在广泛的有机磷酸酯神经毒剂中功效有限。胆碱酯酶已被用作未反应的有机磷酸酯的长寿命治疗性生物清除剂,但由于其与有机磷酸酯神经毒剂具有一对一的化学计量比,因此它们的作用有限。通过使用原子转移自由基聚合和叠氮化物-炔烃“点击”化学方法设计和合成胆碱酯酶-聚合物-肟共轭物,亲核活化剂的化学能力与长寿命的生物清除剂偶联。详细的动力学研究表明,丁酰胆碱酯酶-聚合物-肟的活性取决于聚合物的静电性质和结合物中肟的含量。含肟的聚合物与丁酰胆碱酯酶表面的共价偶联减慢了对神经毒物对氧磷的失活速率。此外,当酶被对氧磷共价抑制时,共价附着的肟会诱导分子间和分子内再激活。分子内的活化将为新一代的神经毒气清除剂的产生打开大门,这种清除剂将生物学的速度和选择性与合成化学药品的坚固性和简单性相结合。

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