Lin Qianyu, Guo Qiong, Zhu Mingchao, Zhang Juanli, Chen Bei, Wu Tingting, Jiang Wei, Tang Wenxue
Department of Molecular Pathology, Application Center for Precision Medicine, The Second Affiliated Hospital of Zhengzhou University, Zhengzhou, China.
Center for Precision Medicine, Academy of Medical Sciences, Zhengzhou University, Zhengzhou, China.
Front Bioeng Biotechnol. 2022 Feb 11;9:809443. doi: 10.3389/fbioe.2021.809443. eCollection 2021.
The treatment of inner ear disorders always remains a challenge for researchers. The presence of various physiological barriers, primarily the blood-labyrinth barrier (BLB), limits the accessibility of the inner ear and hinders the efficacy of various drug therapies. Yet despite recent advances in the cochlea for repair and regeneration, there are currently no pharmacological or biological interventions for hearing loss. Current research focuses on the localized drug-, gene-, and cell-based therapies. Drug delivery based on nanotechnology represents an innovative strategy to improve inner ear treatments. Materials with specific nanostructures not only exhibit a unique ability to encapsulate and transport therapeutics to the inner ear but also endow specific targeting properties to auditory hair cells as well as the stabilization and sustained drug release. Along with this, some alternative routes, like intratympanic drug delivery, can also offer a better means to access the inner ear without exposure to the BLB. This review discusses a variety of nano-based drug delivery systems to the ear for treating inner ear diseases. The main factors affecting the curative efficacy of nanomaterials are also discussed. With a deeper understanding of the link between these crucial factors and the clinical effect of nanomaterials, it paves the way for the optimization of the therapeutic activity of nanocarriers.
内耳疾病的治疗一直是研究人员面临的挑战。各种生理屏障的存在,主要是血迷路屏障(BLB),限制了内耳的可及性,并阻碍了各种药物治疗的效果。然而,尽管最近在耳蜗修复和再生方面取得了进展,但目前尚无针对听力损失的药理学或生物学干预措施。当前的研究集中在基于局部药物、基因和细胞的疗法上。基于纳米技术的药物递送是一种改善内耳治疗的创新策略。具有特定纳米结构的材料不仅具有独特的能力来包裹治疗药物并将其输送到内耳,还赋予听觉毛细胞特定的靶向特性以及稳定和持续的药物释放能力。与此同时,一些替代途径,如鼓室内药物递送,也可以提供一种更好的方法来进入内耳而不接触血迷路屏障。本文综述了多种用于治疗内耳疾病的基于纳米的耳部药物递送系统。还讨论了影响纳米材料治疗效果的主要因素。随着对这些关键因素与纳米材料临床效果之间联系的更深入理解,为优化纳米载体的治疗活性铺平了道路。