Lv Hanlin, Xia Xiaomin, Sun Sa, Niu Zhaojun, Liu Jie, Li Xue
Department of Stomatology, The Affiliated Hospital of Qingdao University, Qingdao, China.
School of Stomatology, Qingdao University, Qingdao, China.
Front Microbiol. 2024 Apr 22;15:1375956. doi: 10.3389/fmicb.2024.1375956. eCollection 2024.
Wound infection caused by multidrug-resistant bacteria poses a serious threat to antibiotic therapy. Therefore, it is of vital importance to find new methods and modes for antibacterial therapy. The cerium nitrogen co-doped titanium dioxide nanoparticles (N-TiO, 0.05Ce-N-TiO, 0.1Ce-N-TiO, and 0.2Ce-N-TiO) were synthesized using the hydrothermal method in this study. Subsequently, electrospinning was employed to fabricate polylactic acid (PLA) electrospun membranes loaded with the above-mentioned nanoparticles (PLA-N, PLA-0.05, PLA-0.1, and PLA-0.2). The results indicated that cerium and nitrogen co-doping tetrabutyl titanate enhanced the visible light photocatalytic efficiency of TiO nanoparticles and enabled the conversion of ultraviolet light into harmless visible light. The photocatalytic reaction under visible light irradiation induced the generation of ROS, which could effectively inhibit the bacterial growth. The antibacterial assay showed that it was effective in eliminating and and the survival rates of two types of bacteria under 30 min of irradiation were significantly below 20% in the PLA-0.2 experimental group. Moreover, the bactericidal membranes also have excellent biocompatibility performance. This bio-friendly and biodegradable membrane may be applied to skin trauma and infection in future to curb drug-resistant bacteria and provide more alternative options for antimicrobial therapy.
耐多药细菌引起的伤口感染对抗生素治疗构成严重威胁。因此,寻找新的抗菌治疗方法和模式至关重要。本研究采用水热法合成了铈氮共掺杂二氧化钛纳米颗粒(N-TiO、0.05Ce-N-TiO、0.1Ce-N-TiO和0.2Ce-N-TiO)。随后,采用静电纺丝法制备了负载上述纳米颗粒的聚乳酸(PLA)静电纺丝膜(PLA-N、PLA-0.05、PLA-0.1和PLA-0.2)。结果表明,铈和氮共掺杂钛酸四丁酯提高了TiO纳米颗粒的可见光光催化效率,并使紫外光转化为无害的可见光。可见光照射下的光催化反应诱导了ROS的产生,从而有效抑制细菌生长。抗菌试验表明,该材料对消除两种细菌有效,在PLA-0.2实验组中,30分钟照射下两种细菌的存活率显著低于20%。此外,杀菌膜还具有优异的生物相容性。这种生物友好且可生物降解的膜未来可能应用于皮肤创伤和感染,以抑制耐药细菌,并为抗菌治疗提供更多替代选择。