Lin Yi-Chun, Shih Cheng-Ping, Chen Hsin-Chien, Chou Ying-Liang, Sytwu Huey-Kang, Fang Mei-Cho, Lin Yuan-Yung, Kuo Chao-Yin, Su Hsiao-Han, Hung Chia-Lien, Chen Hang-Kang, Wang Chih-Hung
National Defense Medical Center, Graduate Institute of Medical Sciences, Taipei, Taiwan.
Department of Otolaryngology-Head and Neck Surgery, Tri-Service General Hospital, National Defense Medical Center, Taipei, Taiwan.
Front Pharmacol. 2021 Jun 28;12:689032. doi: 10.3389/fphar.2021.689032. eCollection 2021.
The application of ultrasound microbubbles (USMBs) enhances the permeability of the round window membrane (RWM) and improves drug delivery to the inner ear. In this study, we investigated the efficiency of USMB-aided delivery of chitosan-coated gold nanoparticles (CS-AuNPs) and the mechanism of USMB-mediated enhancement of RMW permeability. We exposed mouse inner ears to USMBs at an intensity of 2 W/cm and then filled the tympanic bulla with CS-AuNPs or fluorescein isothiocyanate-decorated CS-AuNPs (FITC-CS-AuNPs). The membrane uptake of FITC-CS-AuNPs and their depth of permeation into the three-layer structure of the RWM, with or without prior USMB treatment, were visualized by z-stack confocal laser scanning microscopy. Ultrastructural changes in the RWM due to USMB-mediated cavitation appeared as sunburn-like peeling and various degrees of depression in the RWM surface, with pore-like openings forming in the outer epithelium. This disruption of the outer epithelium was paralleled by a transient reduction in tight junction (TJ)-associated protein levels in the RWM and an enhanced delivery of FITC-CS-AuNPs into the RWM. Without prior USMB exposure, the treatment with CS-AuNPs also caused a noticeable reduction in TJ proteins of the RWM. Our findings indicated that the combined treatment with USMBs and CS-AuNPs represents a promising and efficient drug and gene delivery vehicle for a -RWM approach for inner ear therapy. The outer epithelial layer of the RWM plays a decisive role in controlling the transmembrane transport of substances such as CS-AuNPs following the administration of USMBs. Most importantly, the enhanced permeation of AuNPs involved the transient disruption of the TJ-created paracellular barrier in the outer epithelium of the RWM.
超声微泡(USMBs)的应用可增强圆窗膜(RWM)的通透性,并改善药物向内耳的递送。在本研究中,我们研究了USMB辅助递送壳聚糖包被的金纳米颗粒(CS-AuNPs)的效率以及USMB介导的RMW通透性增强的机制。我们以2W/cm的强度将小鼠内耳暴露于USMBs,然后用CS-AuNPs或异硫氰酸荧光素修饰的CS-AuNPs(FITC-CS-AuNPs)填充鼓泡。通过z-stack共聚焦激光扫描显微镜观察有无预先USMB处理的情况下,FITC-CS-AuNPs的膜摄取及其向RWM三层结构的渗透深度。USMB介导的空化作用导致RWM的超微结构变化表现为晒伤样剥落以及RWM表面不同程度的凹陷,在外层上皮中形成孔状开口。外层上皮的这种破坏与RWM中紧密连接(TJ)相关蛋白水平的短暂降低以及FITC-CS-AuNPs向RWM的递送增强平行。在没有预先暴露于USMB的情况下,用CS-AuNPs处理也导致RWM的TJ蛋白明显减少。我们的研究结果表明,USMBs与CS-AuNPs的联合治疗代表了一种有前景且高效的药物和基因递送载体,用于内耳治疗的-RWM方法。RWM的外层上皮在控制USMB给药后诸如CS-AuNPs等物质的跨膜转运中起决定性作用。最重要的是,AuNPs通透性的增强涉及RWM外层上皮中TJ形成的细胞旁屏障的短暂破坏。