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DNA Framework-Programmed Nanoscale Enzyme Assemblies

delete2024-04-02
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PRE
AI
N
Nan Cao
R
Ruiyan Guo
宋萍 cover
宋萍 (Ping Song)
S
Shaopeng Wang
G
Gang Liu
J
Jiye Shi
王立华 (Lihua Wang)
李敏 cover
李敏 (Min Li)
Z
Zuo, Xiaolei
Y
Yang, Xiurong
樊春海 cover
樊春海 (Chunhai Fan)
李明强 cover
李明强 (Li, Mingqiang) *
Y
Yueyue Zhang *
DOI:10.1021/acs.nanolett.4c01137delete
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Abstract

Abstract

En 中文
Multienzyme assemblies mediated by multivalent interaction play a crucial role in cellular processes. However, the three-dimensional (3D) programming of an enzyme complex with defined enzyme activity in vitro remains unexplored, primarily owing to limitations in precisely controlling the spatial topological configuration. Herein, we introduce a nanoscale 3D enzyme assembly using a tetrahedral DNA framework (TDF), enabling the replication of spatial topological configuration and maintenance of an identical edge-to-edge distance akin to natural enzymes. Our results demonstrate that 3D nanoscale enzyme assemblies in both two-enzyme systems (glucose oxidase (GOx)/horseradish peroxidase (HRP)) and three-enzyme systems (amylglucosidase (AGO)/GOx/HRP) lead to enhanced cascade catalytic activity compared to the low-dimensional structure, resulting in similar to 5.9- and similar to 7.7-fold enhancements over homogeneous diffusional mixtures of free enzymes, respectively. Furthermore, we demonstrate the enzyme assemblies for the detection of the metabolism biomarkers creatinine and creatine, achieving a low limit of detection, high sensitivity, and broad detection range.
Keywords:
DNA Framework
Nanoscale Phase Separation
3D Multienzyme Assemblies
Enzyme Cascade
ActivityEnhancement

Journal

Nano Letters cover
Nano Letters
IF:
9.1
Papers:
2.7W
Citations:
16.5W

Organization

S
shanghai jiao tong university
Scholars:
15.2W
Papers: 11.5W
Citations: 159