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疏水性在超分子聚合物/表面活性剂催化剂中的作用:酶催化的可理解模型。

The role of hydrophobicity in supramolecular polymer/surfactant catalysts: An understandable model for enzymatic catalysis.

机构信息

Department of Chemistry, Universidade Federal de Santa Catarina, Florianópolis 88040-900, SC, Brazil.

Department of Chemistry, University of Cambridge, Cambridge CB2 1EW, UK.

出版信息

J Colloid Interface Sci. 2021 Apr 15;588:456-468. doi: 10.1016/j.jcis.2020.12.081. Epub 2020 Dec 29.

Abstract

Enzymes are highly significant catalysts, essential to biological systems, and a source of inspiration for the design of artificial enzymes. Although many models have been developed describing enzymatic catalysis, a deeper understanding of these biocatalysts remains a major challenge. Herein we detail the formation, characterization, performance, and catalytic mechanisms of a series of bio-inspired supramolecular polymer/surfactant complexes acting as artificial enzymes. The supramolecular complexes were characterized and exhibited exceptional catalytic efficiency for the dephosphorylation of an activated phosphate diester, the reaction rate being highly responsive to: (a) pH, (b) surfactant concentration, and (c) the length of the hydrophobic chain of the surfactant. Under optimal conditions (at pH > 8 for the more hydrophobic systems and at pre-micellar concentrations), enzyme-like rate enhancements of up to 6.0 × 10-fold over the rate of the spontaneous hydrolysis reaction in water were verified. The catalytic performance is a consequence of synergy between the hydrophobicity of the aggregates and the catalytic functionalities of the polymer and the catalytic mechanism is modulated by the nature of the hydrophobic pockets of these catalysts, changing from a general base mechanism to a nucleophilic mechanism as the hydrophobicity increases. Taken as a whole, the present results provide fundamental insights, through an understandable model, which are highly relevant to the design of novel bioinspired enzyme surrogates with multifunctional potentialities for future practical applications.

摘要

酶是非常重要的催化剂,对生物系统至关重要,也是设计人工酶的灵感来源。尽管已经开发出许多描述酶催化的模型,但对这些生物催化剂的更深入理解仍然是一个主要挑战。在此,我们详细介绍了一系列作为人工酶的生物启发超分子聚合物/表面活性剂复合物的形成、表征、性能和催化机制。超分子复合物被表征,并表现出对激活的磷酸二酯的去磷酸化反应的非凡催化效率,该反应速率对以下因素高度敏感:(a) pH 值,(b) 表面活性剂浓度,和 (c) 表面活性剂的疏水性链的长度。在最佳条件下(对于疏水性更强的体系在 pH>8 下,对于预胶束浓度下),与在水中自发水解反应的速率相比,验证了高达 6.0×10 倍的酶样速率增强。催化性能是聚合物体的疏水性与聚合物的催化功能之间协同作用的结果,并且催化机制受这些催化剂的疏水性口袋的性质调制,随着疏水性的增加,从一般碱机制转变为亲核机制。总的来说,这些结果通过可理解的模型提供了基本的见解,这些见解与设计具有多功能潜力的新型生物启发酶类似物高度相关,未来具有实际应用的潜力。

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