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酯键:化学性质不稳定但机械性能稳定。

Ester Bond: Chemically Labile Yet Mechanically Stable.

作者信息

Lei Hai, Ma Quan, Wang Zhangxia, Zhang Di, Huang Xiaoyu, Qin Meng, Ma Haibo, Wang Wei, Cao Yi

机构信息

Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, Department of Physics, Nanjing University, Nanjing 210093, China.

School of Physics, Zhejiang University, Hangzhou 310027, China.

出版信息

ACS Nano. 2023 Sep 12;17(17):16870-16878. doi: 10.1021/acsnano.3c03807. Epub 2023 Aug 30.

Abstract

Due to the dynamic nature of ester linkages, ester-bond-containing materials are well known for their outstanding degradability and stimuli responsiveness. However, whether ester hydrolysis is affected by mechanical forces remains unclear. Here, we develop a single-molecule assay to quantitatively study the force-dependent ester hydrolysis using an engineered circular permutant protein with a caged ester bond as a model. Our single-molecule force spectroscopy results show that the ester hydrolysis rate is surprisingly insensitive to forces, with a ∼7 s dissociation rate that remains almost unchanged in the force range of 80 to 200 pN. Quantum calculations reveal that the ester hydrolysis involves an intermediate state formed by either HO- or OH-bonded tetrahedral intermediates. The measured ester-hydrolysis kinetics at the single-molecule level may primarily correspond to the rupture of these intermediate states. However, the rate-limiting step appears to be the formation of the tetrahedral intermediates, which cannot be quantitatively characterized in our experiments. Nonetheless, based on the quantum calculations, this step is also insensitive to applied forces. Altogether, our study suggests that the ester bond is chemically labile yet mechanically stable, serving as the basis for the design of responsive materials using ester bonds as mechanically inert units.

摘要

由于酯键的动态特性,含酯键的材料以其出色的可降解性和刺激响应性而闻名。然而,酯水解是否受机械力影响仍不清楚。在此,我们开发了一种单分子测定法,以笼蔽酯键的工程化环形排列蛋白为模型,定量研究力依赖型酯水解。我们的单分子力谱结果表明,酯水解速率对力出奇地不敏感,解离速率约为7秒,在80至200皮牛的力范围内几乎保持不变。量子计算表明,酯水解涉及由HO键合或OH键合的四面体中间体形成的中间状态。在单分子水平上测得的酯水解动力学可能主要对应于这些中间状态的断裂。然而,限速步骤似乎是四面体中间体的形成,这在我们的实验中无法定量表征。尽管如此,基于量子计算,这一步骤对施加的力也不敏感。总之,我们的研究表明,酯键在化学上不稳定但在机械上稳定,这为使用酯键作为机械惰性单元设计响应材料奠定了基础。

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