Xiong Tao, Ning Fangrui, Chen Yingchao, Gu Mingrui, Li Mingle, Chen Xiaoqiang, Wang Lei, Fan Jiangli, Peng Xiaojun
State Key Laboratory of Fine Chemicals, College of Materials Science and Engineering, Shenzhen University, Shenzhen 518055, China.
Frontiers Science Center for Transformative Molecules, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
ACS Nano. 2025 Jan 21;19(2):2822-2833. doi: 10.1021/acsnano.4c15730. Epub 2025 Jan 7.
Biofilm-induced chronic bacterial infections represent a significant challenge in modern medicine due to their resistance to conventional antibiotic treatments. Although photodynamic therapy (PDT) has emerged as a promising antibiotic-free antibacterial strategy, the hypoxic condition within biofilms and the lack of an effective local drug delivery system have limited the clinical effectiveness of photosensitizer (PS) agents. Herein, we propose a type of charge regulation-enhanced type I PS-loaded hydrogel dressing for treating biofilm infection. The charge regulation enables the multiple alkylation Nile blue (EB series) to exhibit substantially improved absorbance (∼2-fold), alkaline tolerance, and superoxide anion yield (2.2-4.2-fold) compared to the representative type I PS, sulfur-substituted Nile blue. Specifically, the enhanced electronic push-pull capabilities promote a more efficient electron recycling process, significantly boosting the efficiency of type I PDT. The superior PDT effect and enhanced bacterial uptake via charge regulation render the EB series more pronounced in hypoxic bacterial inhibition under red light or sunlight irradiation. Moreover, the hydrogel, constructed from oxidized dextran and quaternized chitosan, facilitates the localization and sustained retention of type I PSs, accelerating the healing of biofilm-infected wounds. This type I PS-based hydrogel could provide an efficient and user-friendly wound dressing for the clinical treatment and prevention of biofilm infections.
生物膜引起的慢性细菌感染对现代医学构成了重大挑战,因为它们对传统抗生素治疗具有抗性。尽管光动力疗法(PDT)已成为一种有前景的无抗生素抗菌策略,但生物膜内的缺氧状况以及缺乏有效的局部给药系统限制了光敏剂(PS)药物的临床疗效。在此,我们提出了一种用于治疗生物膜感染的电荷调节增强型负载I型PS的水凝胶敷料。与代表性的I型PS硫代尼罗蓝相比,电荷调节使多重烷基化尼罗蓝(EB系列)表现出显著提高的吸光度(约2倍)、耐碱性和超氧阴离子产率(2.2 - 4.2倍)。具体而言,增强的电子推挽能力促进了更有效的电子循环过程,显著提高了I型PDT的效率。通过电荷调节实现的卓越PDT效果和增强的细菌摄取,使得EB系列在红光或阳光照射下对缺氧细菌的抑制作用更加显著。此外,由氧化葡聚糖和季铵化壳聚糖构建的水凝胶有助于I型PS的定位和持续保留,加速生物膜感染伤口的愈合。这种基于I型PS的水凝胶可为生物膜感染的临床治疗和预防提供一种高效且用户友好的伤口敷料。