DNA
连接器
渠化
纳米结构
DNA纳米技术
纳米技术
共价键
分子
纳米尺度
基质(水族馆)
分子机器
材料科学
化学
组合化学
计算机科学
生物
生物化学
有机化学
离子
操作系统
生态学
作者
Jinglin Fu,Yuhe Yang,Alexander Johnson-Buck,Minghui Liu,Yan Liu,Nils G. Walter,Neal W. Woodbury,Hao Yan
标识
DOI:10.1038/nnano.2014.100
摘要
Swinging arms are a key functional component of multistep catalytic transformations in many naturally occurring multi-enzyme complexes. This arm is typically a prosthetic chemical group that is covalently attached to the enzyme complex via a flexible linker, allowing the direct transfer of substrate molecules between multiple active sites within the complex. Mimicking this method of substrate channelling outside the cellular environment requires precise control over the spatial parameters of the individual components within the assembled complex. DNA nanostructures can be used to organize functional molecules with nanoscale precision and can also provide nanomechanical control. Until now, protein-DNA assemblies have been used to organize cascades of enzymatic reactions by controlling the relative distance and orientation of enzymatic components or by facilitating the interface between enzymes/cofactors and electrode surfaces. Here, we show that a DNA nanostructure can be used to create a multi-enzyme complex in which an artificial swinging arm facilitates hydride transfer between two coupled dehydrogenases. By exploiting the programmability of DNA nanostructures, key parameters including position, stoichiometry and inter-enzyme distance can be manipulated for optimal activity.
科研通智能强力驱动
Strongly Powered by AbleSci AI