化学
超分子化学
纳米载体
纳米技术
催化作用
酶
超分子组装
氢键
基质(水族馆)
自组装
化学工程
组合化学
分子
有机化学
材料科学
药物输送
工程类
地质学
海洋学
作者
Siming Huang,Jiansheng Li,Yuhong Lin,Linjing Tong,Ningyi Zhong,Anlian Huang,Xiaomin Ma,Shuyao Huang,Wei Yi,Yong Shen,Guosheng Chen,Gangfeng Ouyang
摘要
Engineering nanotraps to immobilize fragile enzymes provides new insights into designing stable and sustainable biocatalysts. However, the trade-off between activity and stability remains a long-standing challenge due to the inevitable diffusion barrier set up by nanocarriers. Herein, we report a synergetic interfacial activation strategy by virtue of hydrogen-bonded supramolecular encapsulation. The pore wall of the nanotrap, in which the enzyme is encapsulated, is modified with methyl struts in an atomically precise position. This well-designed supramolecular pore results in a synergism of hydrogen-bonded and hydrophobic interactions with the hosted enzyme, and it can modulate the catalytic center of the enzyme into a favorable configuration with high substrate accessibility and binding capability, which shows up to a 4.4-fold reaction rate and 4.9-fold conversion enhancements compared to free enzymes. This work sheds new light on the interfacial activation of enzymes using supramolecular engineering and also showcases the feasibility of interfacial assembly to access hierarchical biocatalysts featuring high activity and stability simultaneously.
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