TY - JOUR
T1 - Stabilizing DNAzymes through Encapsulation in a Metal–Organic Framework
AU - Zhong, Huiye
AU - Lo, Wei Shang
AU - Man, Tiantian
AU - Williams, Benjamin P.
AU - Li, Dan
AU - Chen, Sheng Yu
AU - Pei, Hao
AU - Li, Li
AU - Tsung, Chia Kuang
N1 - Publisher Copyright:
© 2020 Wiley-VCH GmbH
PY - 2020/10/9
Y1 - 2020/10/9
N2 - DNAzymes are a promising class of bioinspired catalyst; however, their structural instability limits their potential. Herein, a method to stabilize DNAzymes by encapsulating them in a metal–organic framework (MOF) host is reported. This biomimetic mineralization process makes DNAzymes active under a wider range of conditions. The concept is demonstrated by encapsulating hemin-G-quadruplex (Hemin-G4) into zeolitic imidazolate framework-90 (ZIF-90), which indeed increases the DNAzyme's structural stability. The stabilized DNAzymes show activities in the presence of Exonuclease I, organic solvents, or high temperature. Owing to its elevated stability and heterogeneous nature, it is possible to perform catalysis under continuous-flow conditions, and the DNAzyme can be reactivated in situ by introducing K+. Moreover, it is found that the encapsulated DNAzyme maintains its high enantiomer selectivity, demonstrated by the sulfoxidation of thioanisole to (S)-methyl phenyl sulfoxide. This concept of stabilizing DNAzymes expands their potential application in chemical industry.
AB - DNAzymes are a promising class of bioinspired catalyst; however, their structural instability limits their potential. Herein, a method to stabilize DNAzymes by encapsulating them in a metal–organic framework (MOF) host is reported. This biomimetic mineralization process makes DNAzymes active under a wider range of conditions. The concept is demonstrated by encapsulating hemin-G-quadruplex (Hemin-G4) into zeolitic imidazolate framework-90 (ZIF-90), which indeed increases the DNAzyme's structural stability. The stabilized DNAzymes show activities in the presence of Exonuclease I, organic solvents, or high temperature. Owing to its elevated stability and heterogeneous nature, it is possible to perform catalysis under continuous-flow conditions, and the DNAzyme can be reactivated in situ by introducing K+. Moreover, it is found that the encapsulated DNAzyme maintains its high enantiomer selectivity, demonstrated by the sulfoxidation of thioanisole to (S)-methyl phenyl sulfoxide. This concept of stabilizing DNAzymes expands their potential application in chemical industry.
KW - DNAzymes
KW - continuous-flow conditions
KW - metal–organic frameworks
KW - reactivation
KW - stabilization
UR - https://www.scopus.com/pages/publications/85091001553
U2 - 10.1002/chem.202002178
DO - 10.1002/chem.202002178
M3 - 文章
C2 - 32374926
AN - SCOPUS:85091001553
SN - 0947-6539
VL - 26
SP - 12931
EP - 12935
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 57
ER -