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纳米系统在眼部药物输送中的进展:以小儿视网膜母细胞瘤为重点。

Advancements in Nanosystems for Ocular Drug Delivery: A Focus on Pediatric Retinoblastoma.

机构信息

Department of Surgery, Division of Ophthalmology, University of Sherbrooke, Sherbrooke, QC J1G 2E8, Canada.

Faculty of Medicine and Health Sciences, McGill University, Montreal, QC H3T 1J4, Canada.

出版信息

Molecules. 2024 May 11;29(10):2263. doi: 10.3390/molecules29102263.

Abstract

The eye's complex anatomical structures present formidable barriers to effective drug delivery across a range of ocular diseases, from anterior to posterior segment pathologies. Emerging as a promising solution to these challenges, nanotechnology-based platforms-including but not limited to liposomes, dendrimers, and micelles-have shown the potential to revolutionize ophthalmic therapeutics. These nanocarriers enhance drug bioavailability, increase residence time in targeted ocular tissues, and offer precise, localized delivery, minimizing systemic side effects. Focusing on pediatric ophthalmology, particularly on retinoblastoma, this review delves into the recent advancements in functionalized nanosystems for drug delivery. Covering the literature from 2017 to 2023, it comprehensively examines these nanocarriers' potential impact on transforming the treatment landscape for retinoblastoma. The review highlights the critical role of these platforms in overcoming the unique pediatric eye barriers, thus enhancing treatment efficacy. It underscores the necessity for ongoing research to realize the full clinical potential of these innovative drug delivery systems in pediatric ophthalmology.

摘要

眼睛的复杂解剖结构对各种眼部疾病的有效药物输送构成了巨大的障碍,从前段到后段的病理都存在这种情况。为了应对这些挑战,新兴的基于纳米技术的平台——包括但不限于脂质体、树枝状大分子和胶束——显示出了改变眼科治疗的潜力。这些纳米载体提高了药物的生物利用度,增加了在靶向眼部组织中的停留时间,并提供了精确的局部递送,最大限度地减少了全身副作用。本文聚焦于儿科眼科学,特别是视网膜母细胞瘤,深入探讨了用于药物输送的功能化纳米系统的最新进展。本综述涵盖了 2017 年至 2023 年的文献,全面考察了这些纳米载体在改变视网膜母细胞瘤治疗格局方面的潜在影响。本综述强调了这些平台在克服儿童眼睛独特障碍方面的关键作用,从而提高了治疗效果。它强调了需要进行持续的研究,以实现这些创新药物输送系统在儿科眼科学中的全部临床潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec9b/11123804/e93082873f0d/molecules-29-02263-g001.jpg

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