State Key Laboratory of Food Science and Technology, School of Food Science and Technology, National Engineering Research Center for Functional Food, School of Food Science Synergetic Innovation Center of Food Safety and Nutrition, Jiangnan University, Jiangsu, Wuxi 214122, PR China.
State Key Laboratory of Food Science and Technology, School of Food Science and Technology, National Engineering Research Center for Functional Food, School of Food Science Synergetic Innovation Center of Food Safety and Nutrition, Jiangnan University, Jiangsu, Wuxi 214122, PR China.
J Hazard Mater. 2021 Mar 15;406:124330. doi: 10.1016/j.jhazmat.2020.124330. Epub 2020 Oct 20.
Antibacterial hydrogels have received attention for preventing infections and for their biomedical applications. However, traditional antibiotics-containing and metal nanoparticle-containing hydrogels often cause bacterial resistance, exhibit low biocompatibility, and lack real-time monitoring capability. Here, a fluorescent antibacterial hydrogel with antibacterial ability, excellent optical performance, and high biocompatibility was developed based on cationic carbon dots (CDs), pectin, and acrylic acid triggered construction of the hydrogel network by cross-linker. The antibacterial high-cationic CDs (+51.20 mV) were synthesized by a simple hydrothermal method and released from hydrogel in response to broken hydrogen bonds due to a change in the ambient environment caused by the growing bacteria. The hydrogel showed long-term potent broad-spectrum antibacterial ability (even drug-resistant bacteria) due to the bacterial membrane seriously damaged by the released CDs. The inhibitory capability of this hydrogel was 108.5-fold higher than the other hydrogel. After implantation or incubation with cells, no obvious cytotoxicity or tissue toxicity was observed for the antibacterial hydrogel. This hydrogel enhanced both the application of CDs in vivo and the biosafety of hydrogel. Furthermore, the multicolor fluorescence emission produced by CD provides a potential idea for the development of dual-function hydrogels with in situ monitoring and prevention of bacterial infections to treat wounds.
抗菌水凝胶因其抗感染能力和在生物医学领域的应用而受到关注。然而,传统的含抗生素和含金属纳米粒子的水凝胶往往会导致细菌耐药性、生物相容性差,并且缺乏实时监测能力。在这里,我们基于阳离子碳点(CDs)、果胶和丙烯酸,通过交联剂触发水凝胶网络的构建,开发了一种具有抗菌能力、优异光学性能和高生物相容性的荧光抗菌水凝胶。通过简单的水热法合成了具有高正电荷(+51.20 mV)的抗菌 CDs,并在环境发生变化时从水凝胶中释放出来,这是由于细菌生长导致氢键断裂。由于释放的 CDs 严重破坏了细菌膜,水凝胶表现出长期有效的广谱抗菌能力(甚至包括耐药菌)。该水凝胶的抑制能力比其他水凝胶高 108.5 倍。植入或孵育细胞后,抗菌水凝胶没有明显的细胞毒性或组织毒性。这种水凝胶增强了 CD 在体内的应用和水凝胶的生物安全性。此外,CD 产生的多色荧光发射为开发具有原位监测和预防细菌感染功能的双重功能水凝胶提供了一个潜在的思路,可用于治疗伤口。