Du Ting, Xiao Zehui, Zhang Guanghui, Wei Lifei, Cao Jiangli, Zhang Zhannuo, Li Xingxing, Song Zhiyong, Wang Wenjing, Liu Jifeng, Du Xinjun, Wang Shuo
State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science and Technology, Tianjin 300457, PR China.
College of Sicence, Huazhong Agricultural University, Wuhan 430070, PR China.
Acta Biomater. 2023 Apr 15;161:112-133. doi: 10.1016/j.actbio.2023.03.008. Epub 2023 Mar 11.
Wound treatment is largely influenced by pre-existing hypoxic microenvironments and biofilms, which can severely diminish the efficacy of phototherapy, suggesting the importance of multifunctional nanoplatforms for synergistic treatment of wound infections. Here, we developed a multifunctional injectable hydrogel (PSPG hydrogel) by loading photothermal sensitive sodium nitroprusside (SNP) into Pt-modified porphyrin metal organic framework (PCN) and in situ modification of gold particles to form a near-infrared (NIR) light-triggered all-in-one phototherapeutic nanoplatform. The Pt-modified nanoplatform exhibits a remarkable catalase-like behavior and promotes the continuous decomposition of endogenous HO into O, thereby enhancing the photodynamic therapy (PDT) effect under hypoxia. Under dual NIR irradiation, PSPG hydrogel can not only produce hyperthermia (η=89.21%) but also generate reactive oxygen species and trigger NO release, contributing jointly to removal of biofilms and disruption of the cell membranes of methicillin-resistant Staphylococcus aureus (MRSA) and Escherichia coli (E. coli). In vivo experiments demonstrated a 99.9% reduction in bacterial burden on wounds. Additionally, PSPG hydrogel can accelerate MRSA-infected and Pseudomonas aeruginosa-infected (P. aeruginosa-infected) wound healing by promoting angiogenesis, collagen deposition, and suppressing inflammatory responses. Furthermore, in vitro and in vivo experiments revealed that PSPG hydrogel has good cytocompatibility. Overall, we proposed an antimicrobial strategy to eliminate bacteria through the synergistic effects of gas-photodynamic-photothermal killing, alleviating hypoxia in the bacterial infection microenvironment, and inhibiting biofilms, offering a new way against antimicrobial resistance and biofilm-associated infections. STATEMENT OF SIGNIFICANCE: The NIR light-triggered multifunctional injectable hydrogel nanoplatform (PSPG hydrogel) based on Pt-decorated gold nanoparticles with sodium nitroprusside (SNP)-loading porphyrin metal organic framework (PCN) as inner templates can efficiently perform photothermal conversion (η=89.21%) to trigger NO release from SNP, while continuously regulating the hypoxic microenvironment at the bacterial infection site through Pt-induced self-oxygenation, achieving efficient sterilization and removal of biofilm by synergistic PDT and PTT phototherapy. In vivo and in vitro experiments demonstrated that the PSPG hydrogel has significant anti-biofilm, antibacterial, and inflammatory regulatory functions. This study proposed an antimicrobial strategy to eliminate bacteria through the synergistic effects of gas-photodynamic-photothermal killing, alleviating hypoxia in the bacterial infection microenvironment, and inhibiting biofilms.
伤口治疗很大程度上受到预先存在的缺氧微环境和生物膜的影响,这会严重降低光疗的效果,这表明多功能纳米平台对于协同治疗伤口感染的重要性。在此,我们通过将光热敏感的硝普钠(SNP)负载到铂修饰的卟啉金属有机框架(PCN)中,并对金颗粒进行原位修饰,开发了一种多功能可注射水凝胶(PSPG水凝胶),以形成近红外(NIR)光触发的一体化光治疗纳米平台。铂修饰的纳米平台表现出显著的过氧化氢酶样行为,并促进内源性HO持续分解为O,从而增强缺氧条件下的光动力疗法(PDT)效果。在双NIR照射下,PSPG水凝胶不仅能产生高热(η=89.21%),还能产生活性氧并触发NO释放,共同有助于去除生物膜以及破坏耐甲氧西林金黄色葡萄球菌(MRSA)和大肠杆菌(E. coli)的细胞膜。体内实验表明伤口处的细菌载量降低了99.9%。此外,PSPG水凝胶可通过促进血管生成、胶原蛋白沉积和抑制炎症反应来加速MRSA感染和铜绿假单胞菌感染(P. aeruginosa感染)的伤口愈合。此外,体外和体内实验表明PSPG水凝胶具有良好的细胞相容性。总体而言,我们提出了一种抗菌策略,通过气体-光动力-光热杀伤的协同作用来消除细菌,减轻细菌感染微环境中的缺氧状况,并抑制生物膜,为对抗抗菌耐药性和生物膜相关感染提供了一种新方法。重要性声明:基于以负载硝普钠(SNP)的卟啉金属有机框架(PCN)为内模板的铂修饰金纳米颗粒的近红外光触发多功能可注射水凝胶纳米平台(PSPG水凝胶)能够有效地进行光热转换(η=89.21%)以触发SNP释放NO,同时通过铂诱导的自氧化作用持续调节细菌感染部位的缺氧微环境,通过协同的PDT和PTT光疗实现高效杀菌和去除生物膜。体内和体外实验表明PSPG水凝胶具有显著的抗生物膜、抗菌和炎症调节功能。本研究提出了一种抗菌策略,通过气体-光动力-光热杀伤的协同作用来消除细菌,减轻细菌感染微环境中的缺氧状况,并抑制生物膜。