TY - JOUR
T1 - Magnetoresponsive nanozyme
T2 - magnetic stimulation on the nanozyme activity of iron oxide nanoparticles
AU - He, Yuan
AU - Chen, Xiaoyong
AU - Zhang, Ye
AU - Wang, Yanyun
AU - Cui, Mengyao
AU - Li, Galong
AU - Liu, Xiaoli
AU - Fan, Haiming
N1 - Publisher Copyright:
© 2021, Science China Press and Springer-Verlag GmbH Germany, part of Springer Nature.
PY - 2022/1
Y1 - 2022/1
N2 - The iron oxide nanoparticles (IONPs) that combine the nanozyme activity and magnetothermal properties have attracted significant interest for various biomedical applications. However, the effect of magnetic stimulation in fine-tuning the nanozyme activities remains unclear. Here, we have constructed a series of IONPs with different magneto-thermal conversion abilities, and systematically study the effect of magnetic field stimulation on the peroxidase (POD) activity of IONPs. The results show that POD activity is effectively amplified via an in situ alternating magnetic field (AMF) stimulation with no solution temperature rise, and the degree of activity enhancement is closely related to the magnetic heating ability of the IONPs, confirming the origin of activity enhancement arises from the local magnetothermal effect. As the first report to prove magnetothermal regulation on nanozyme activity and to shed lights on the underlying correlation between activity enhancement and the intrinsic specific absorption rate (SAR), this work is expected to provide important support for future design of new magnetoresponsive nanozymes in various practical applications.
AB - The iron oxide nanoparticles (IONPs) that combine the nanozyme activity and magnetothermal properties have attracted significant interest for various biomedical applications. However, the effect of magnetic stimulation in fine-tuning the nanozyme activities remains unclear. Here, we have constructed a series of IONPs with different magneto-thermal conversion abilities, and systematically study the effect of magnetic field stimulation on the peroxidase (POD) activity of IONPs. The results show that POD activity is effectively amplified via an in situ alternating magnetic field (AMF) stimulation with no solution temperature rise, and the degree of activity enhancement is closely related to the magnetic heating ability of the IONPs, confirming the origin of activity enhancement arises from the local magnetothermal effect. As the first report to prove magnetothermal regulation on nanozyme activity and to shed lights on the underlying correlation between activity enhancement and the intrinsic specific absorption rate (SAR), this work is expected to provide important support for future design of new magnetoresponsive nanozymes in various practical applications.
KW - activity regulation
KW - magnetic stimulation
KW - magnetoresponsive nanozyme
KW - specific absorption rate
UR - https://www.scopus.com/pages/publications/85106755076
U2 - 10.1007/s11427-020-1907-6
DO - 10.1007/s11427-020-1907-6
M3 - 文章
C2 - 34047912
AN - SCOPUS:85106755076
SN - 1674-7305
VL - 65
SP - 184
EP - 192
JO - Science China Life Sciences
JF - Science China Life Sciences
IS - 1
ER -