TY - JOUR
T1 - A closed-loop catalytic nanoreactor system on a transistor
AU - Wang, Xuejun
AU - Xia, Binbin
AU - Hao, Zhuang
AU - Kang, Hua
AU - Liu, Wentao
AU - Chen, Yiheng
AU - Jiang, Qunfeng
AU - Liu, Jingyuan
AU - Gou, Jian
AU - Dong, Baijun
AU - Wee, Andrew Thye Shen
AU - Liu, Yunqi
AU - Wei, Dacheng
N1 - Publisher Copyright:
Copyright © 2023 The Authors,
PY - 2023
Y1 - 2023
N2 - Precision chemistry demands miniaturized catalytic systems for sophisticated reactions with well-defined pathways. An ideal solution is to construct a nanoreactor system functioning as a chemistry laboratory to execute a full chemical process with molecular precision. However, existing nanoscale catalytic systems fail to in situ control reaction kinetics in a closed-loop manner, lacking the precision toward ultimate reaction efficiency. We find an inter-electrochemical gating effect when operating DNA framework-constructed enzyme cascade nanoreactors on a transistor, enabling in situ closed-loop reaction monitoring and modulation electrically. Therefore, a comprehensive system is developed, encapsulating nanoreactors, analyzers, and modulators, where the gate potential modulates enzyme activity and switches cascade reaction “ON” or “OFF.” Such electric field-effect property enhances catalytic efficiency of enzyme by 343.4-fold and enables sensitive sarcosine assay for prostate cancer diagnoses, with a limit of detection five orders of magnitude lower than methodologies in clinical laboratory. By coupling with solid-state electronics, this work provides a perspective to construct intelligent nano-systems for precision chemistry.
AB - Precision chemistry demands miniaturized catalytic systems for sophisticated reactions with well-defined pathways. An ideal solution is to construct a nanoreactor system functioning as a chemistry laboratory to execute a full chemical process with molecular precision. However, existing nanoscale catalytic systems fail to in situ control reaction kinetics in a closed-loop manner, lacking the precision toward ultimate reaction efficiency. We find an inter-electrochemical gating effect when operating DNA framework-constructed enzyme cascade nanoreactors on a transistor, enabling in situ closed-loop reaction monitoring and modulation electrically. Therefore, a comprehensive system is developed, encapsulating nanoreactors, analyzers, and modulators, where the gate potential modulates enzyme activity and switches cascade reaction “ON” or “OFF.” Such electric field-effect property enhances catalytic efficiency of enzyme by 343.4-fold and enables sensitive sarcosine assay for prostate cancer diagnoses, with a limit of detection five orders of magnitude lower than methodologies in clinical laboratory. By coupling with solid-state electronics, this work provides a perspective to construct intelligent nano-systems for precision chemistry.
UR - https://www.scopus.com/pages/publications/85171812147
U2 - 10.1126/sciadv.adj0839
DO - 10.1126/sciadv.adj0839
M3 - 文章
C2 - 37729411
AN - SCOPUS:85171812147
SN - 2375-2548
VL - 9
JO - Science Advances
JF - Science Advances
IS - 38
M1 - eadj0839
ER -