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用于内耳药物递送的纳米载体:物理化学关键参数、生物分布、安全性和功效。

Nanocarriers for drug delivery to the inner ear: Physicochemical key parameters, biodistribution, safety and efficacy.

机构信息

Université Paris-Saclay, CNRS, Institut Galien Paris-Saclay, 5 rue J-B Clément, 92296 Châtenay-Malabry, France.

Inserm/Institut Pasteur, Institut de l'audition, Technologie et thérapie génique pour la surdité, 63 rue de Charenton, 75012 Paris, France; Sorbonne Université, AP-HP, GHU Pitié-Salpêtrière, DMU ChIR, Service ORL, GRC Robotique et Innovation Chirurgicale, Paris, France.

出版信息

Int J Pharm. 2021 Jan 5;592:120038. doi: 10.1016/j.ijpharm.2020.120038. Epub 2020 Nov 4.

Abstract

Despite the high incidence of inner ear disorders, there are still no dedicated medications on the market. Drugs are currently administered by the intratympanic route, the safest way to maximize drug concentration in the inner ear. Nevertheless, therapeutic doses are ensured for only a few minutes/hours using drug solutions or suspensions. The passage through the middle ear barrier strongly depends on drug physicochemical characteristics. For the past 15 years, drug encapsulation into nanocarriers has been developed to overcome this drawback. Nanocarriers are well known to sustain drug release and protect it from degradation. In this review, in vivo studies are detailed concerning nanocarrier biodistribution, their pathway mechanisms in the inner ear and the resulting drug pharmacokinetics. Key parameters influencing nanocarrier biodistribution are identified and discussed: nanocarrier size, concentration, surface composition and shape. Recent advanced strategies that combine nanocarriers with hydrogels, specific tissue targeting or modification of the round window permeability (cell-penetrating peptide, magnetic delivery) are explored. Most of the nanocarriers appear to be safe for the inner ear and provide a significant efficacy over classic formulations in animal models. However, many challenges remain to be overcome for future clinical applications.

摘要

尽管内耳疾病的发病率很高,但目前市场上仍没有专门的药物。药物目前通过鼓室内途径给药,这是将药物浓度最大化在内耳的最安全方法。然而,使用药物溶液或混悬剂仅能确保几分钟/几小时的治疗剂量。药物通过中耳屏障的能力强烈取决于药物的物理化学特性。在过去的 15 年中,已经开发出将药物包封到纳米载体中以克服这一缺点。纳米载体众所周知可以持续释放药物并保护其免受降解。在这篇综述中,详细介绍了有关纳米载体体内分布、在内耳中的途径机制以及由此产生的药物药代动力学的体内研究。确定并讨论了影响纳米载体体内分布的关键参数:纳米载体的大小、浓度、表面组成和形状。还探讨了将纳米载体与水凝胶、特定组织靶向或修饰圆窗通透性(穿透肽、磁递药)相结合的最新先进策略。大多数纳米载体似乎对内耳是安全的,并在动物模型中提供了比经典制剂更显著的疗效。然而,未来的临床应用仍有许多挑战需要克服。

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