化学
过氧化氢
羟基自由基
活性氧
伤口愈合
硫化氢
生物膜
细菌
巨噬细胞
细胞内
微生物学
细胞毒性
重编程
抗菌剂
细菌细胞结构
介孔二氧化硅
细胞
吞噬作用
抗生素
细胞迁移
谷胱甘肽
细胞生物学
光动力疗法
炎症
激进的
生物物理学
硫化物
癌症研究
超氧化物
硫酸盐还原菌
生物化学
药理学
硫化氢钠
细胞生长
作者
Jun Zhao,Jun Zhao,Yangfeng Du,Wanqin Cai,Pei Zhang,Xi‐Ling Song,Wenxuan Ye,Yi Peng,Jianfu Zhao,Jianfu Zhao,Siming Yu
标识
DOI:10.1021/acsanm.5c03513
摘要
Nowadays, bacterial infection-associated diseases pose significant threats to human public health. Developing alternative strategies for the highly efficient treatment of bacterial infections is in urgent demand. It is well-known that hydroxyl radical (•OH) exhibits strong antibacterial activity and is widely used for chemodynamic therapy (CDT), while hydrogen sulfide (H2S) displays the ability to promote wound healing for gas therapy (GT). In the present work, a multifunctional nanozyme with pH and GSH dual-responsive sequentially releasing •OH and H2S properties was rationally designed for high-efficiency wound infection treatment via bimodal CDT and GT therapy. Herein, dendritic mesoporous organic silica (DMOS) nanoparticles were prepared and used as the carrier for in situ copper peroxide (CP) nanodots growth, obtaining nanozyme of DMOS@CP. In the acidic condition, CP decorated on DMOS was first decomposed by generating •OH via the Fenton-like reaction, which was able to effectively inhibit bacterial growth, as well as eradicate bacterial biofilms, by disrupting the bacterial cell membrane, increasing intracellular ROS generation, and damaging bacterial DNA. Subsequently, DMOS can be further dissociated by GSH to release a substantial amount of H2S to promote bacterial wound healing. The mechanism study revealed that H2S was capable of first reversing the inflammatory microenvironment of the wound by reprogramming M2-type macrophage polarization, followed by upregulating expressions of hypoxia-inducible factor-1α, vascular endothelial growth factor, and CD31 to promote cell migration and angiogenesis.
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