Department of Ophthalmology, Shanghai Aier Eye Hospital, Shanghai, P. R. China.
Department of Ophthalmology, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, Shanghai Jiao Tong University, Shanghai, 200233, China.
Adv Healthc Mater. 2024 Oct;13(26):e2304448. doi: 10.1002/adhm.202304448. Epub 2024 Jul 16.
Bacterial biofilm formation protects bacteria from antibiotics and the immune system, excessive inflammation further complicates treatment. Here, iron-based metal-organic framework (MIL-101)-loaded riboflavin nanoparticles are designed for the therapeutic challenge of biofilm infection and hyperinflammation in bacterial keratitis. Specifically, MIL-101 produces a thermal effect under exogenous near-infrared light irradiation, which synergizes with ferroptosis-like bacterial death induced by iron ions to exert an effective biofilm infection eradication effect. On the other hand, the disintegration of MIL-101 sustains the release of riboflavin, which inhibits the pro-inflammatory response of macrophage over-activation by modulating their phenotypic switch. In addition, to solve the problems of short residence time, poor permeability, and low bioavailability of corneal medication, the MR@MN microneedle patch is further prepared by loading nanoparticles into SilMA hydrogel, which ultimately achieves painless, transepithelial, and highly efficient drug delivery. In vivo and ex vivo experiments demonstrate the effectiveness of this approach in eliminating bacterial infection and promoting corneal healing. Therefore, the MRMN patch, acting as an ocular drug delivery system with the ability of rapid corneal healing, promises a cost-effective solution for the treatment of bacterial keratitis, which may also lead to a new approach for treating bacterial keratitis in clinics.
细菌生物膜的形成使细菌能够抵御抗生素和免疫系统的攻击,过度的炎症反应进一步使治疗变得复杂。在这里,设计了负载核黄素纳米粒子的基于铁的金属有机骨架(MIL-101),以应对细菌性角膜炎中生物膜感染和过度炎症的治疗挑战。具体来说,MIL-101 在外部近红外光照射下产生热效应,与铁离子诱导的类铁死亡协同作用,发挥有效的生物膜感染消除效果。另一方面,MIL-101 的崩解持续释放核黄素,通过调节其表型转换来抑制巨噬细胞过度激活引起的促炎反应。此外,为了解决角膜药物停留时间短、渗透性差和生物利用度低的问题,进一步将纳米颗粒装载到 SilMA 水凝胶中制备了 MR@MN 微针贴片,最终实现了无痛、经上皮和高效的药物传递。体内和体外实验证明了这种方法在消除细菌感染和促进角膜愈合方面的有效性。因此,作为一种具有快速角膜愈合能力的眼用药物传递系统,MRMN 贴片有望为治疗细菌性角膜炎提供一种具有成本效益的解决方案,也可能为临床治疗细菌性角膜炎带来新的方法。