TY - JOUR
T1 - In Situ Structure Transformation of a Sprayed Gel for pH-Ultrasensitive Nano-Catalytic Antibacterial Therapy
AU - Niu, Zhihui
AU - Xie, Mingxiao
AU - Wei, Zicheng
AU - Guo, Yang
AU - Han, Mengxuan
AU - Ding, Yingying
AU - Huang, Jianyu
AU - Zheng, Kang
AU - Zhang, Yao
AU - Song, Yuanda
AU - Niu, Dechao
AU - Li, Yongsheng
AU - Wen, Guangwu
AU - Li, Xiaowei
AU - Shi, Jianlin
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2023/4/17
Y1 - 2023/4/17
N2 - Nano-catalytic bacterial killing provides new opportunities to address ever-increasing antibiotic resistance. However, the intrinsic catalytic activity usually depends on a much lower pH conditions (pH = 2–5) than that in the weakly acidic bacterial microenvironments (pH = 6–7) for reactive oxygen species production by Fenton reactions. Herein, a MnSiO3-based pH-ultrasensitive “in situ structure transformation” is first reported to significantly promote the adhesion between material and bacteria, and shorten the diffusion distance (<20 nm) to compensate ultra-short life (<200 ns) of ·OH generated by Mn2+-mediated Fenton-like reaction, finally enhancing its nano-catalytic antibacterial performance in weakly acidic conditions. A separated spray bottle is further designed to achieve in situ gelation at the wound site, which demonstrates excellent shape adaptability to complicated and rough surfaces of wounds, allowing for long-term nano-catalyst release. As a result, bacterial-infected wound healing is efficiently promoted. Herein, the in situ sprayed nano-catalytic antibacterial gel presents a promising paradigm for bacterial infection treatment.
AB - Nano-catalytic bacterial killing provides new opportunities to address ever-increasing antibiotic resistance. However, the intrinsic catalytic activity usually depends on a much lower pH conditions (pH = 2–5) than that in the weakly acidic bacterial microenvironments (pH = 6–7) for reactive oxygen species production by Fenton reactions. Herein, a MnSiO3-based pH-ultrasensitive “in situ structure transformation” is first reported to significantly promote the adhesion between material and bacteria, and shorten the diffusion distance (<20 nm) to compensate ultra-short life (<200 ns) of ·OH generated by Mn2+-mediated Fenton-like reaction, finally enhancing its nano-catalytic antibacterial performance in weakly acidic conditions. A separated spray bottle is further designed to achieve in situ gelation at the wound site, which demonstrates excellent shape adaptability to complicated and rough surfaces of wounds, allowing for long-term nano-catalyst release. As a result, bacterial-infected wound healing is efficiently promoted. Herein, the in situ sprayed nano-catalytic antibacterial gel presents a promising paradigm for bacterial infection treatment.
KW - bacterial infection treatment
KW - nano-catalytic therapy
KW - pH-ultrasensitivity
KW - sprayed gels
KW - structure transformation
UR - https://www.scopus.com/pages/publications/85146347290
U2 - 10.1002/adhm.202202441
DO - 10.1002/adhm.202202441
M3 - 文章
C2 - 36577136
AN - SCOPUS:85146347290
SN - 2192-2640
VL - 12
JO - Advanced Healthcare Materials
JF - Advanced Healthcare Materials
IS - 10
M1 - 2202441
ER -