School of Public Health, Nantong University, No. 9, Seyuan Road, Nantong 226019, Jiangsu, China.
Department of Laboratory Medicine, Affiliated hospital of Nantong University, No. 20, Xisi Road, Nantong 226001, Jiangsu, China.
J Hazard Mater. 2022 Aug 15;436:129210. doi: 10.1016/j.jhazmat.2022.129210. Epub 2022 May 21.
The biofilm resistance of microorganisms has severe economic and environmental implications, especially the contamination of facilities associated with human life, including medical implants, air-conditioning systems, water supply systems, and food-processing equipment, resulting in the prevalence of infectious diseases. Once bacteria form biofilms, their antibiotic resistance can increase by 10-1,000-fold, posing a great challenge to the treatment of related diseases. In order to overcome the contamination of bacterial biofilm, destroying the biofilm's matrix so as to solve the penetration depth dilemma of antibacterial agents is the most effective way. Here, a magnetically controlled multifunctional micromotor was developed by using HO as the fuel and MnO as the catalyst to treat bacterial biofilm infection. In the presence of HO, the as-prepared motors could be self-propelled by the generated oxygen microbubbles. Thereby, the remotely controlled motors could drill into the EPS of biofilm and disrupt them completely with the help of bubbles. Finally, the generated highly toxic •OH could efficiently kill the unprotected bacteria. This strategy combined the mechanical damage, highly toxic •OH, and precise magnetic guidance in one system, which could effectively eliminate biologically infectious fouling in microchannels within 10 min, possessing a wide range of practical application prospects especially in large scale and complex infection sites.
微生物的生物膜耐药性具有严重的经济和环境影响,特别是与人类生活相关的设施受到污染,包括医疗植入物、空调系统、供水系统和食品加工设备,导致传染病的流行。一旦细菌形成生物膜,它们的抗生素耐药性可以增加 10-1000 倍,这给相关疾病的治疗带来了巨大挑战。为了克服细菌生物膜的污染,破坏生物膜的基质,以解决抗菌剂的渗透深度困境,是最有效的方法。在这里,使用 HO 作为燃料和 MnO 作为催化剂,开发了一种磁控多功能微马达,用于治疗细菌生物膜感染。在 HO 的存在下,所制备的马达可以通过生成的氧气微泡自行推进。因此,在气泡的帮助下,远程控制的马达可以钻入生物膜的 EPS 并将其完全破坏。最后,生成的高毒性·OH 可以有效地杀死没有保护的细菌。这种策略将机械损伤、高毒性·OH 和精确的磁导向结合在一个系统中,可以在 10 分钟内有效地消除微通道中的生物感染性污垢,具有广泛的实际应用前景,特别是在大规模和复杂的感染部位。