Biodegradable microspheres come into sight: A promising biomaterial for delivering drug to the posterior segment of the eyeball

微球 药物输送 眼球后段 生物医学工程 生物利用度 纳米技术 材料科学 医学 外科 药理学 工程类 化学工程
作者
Rongyue Xue,Hao Wu,Siyu Li,Ning Pu,Wei Dong,Na Zhao,Yongheng Cui,Haoyan Li,Zongming Song,Ye Tao
出处
期刊:Materials today bio [Elsevier]
卷期号:27: 101126-101126
标识
DOI:10.1016/j.mtbio.2024.101126
摘要

Posterior segment disease acts as a major cause of irreversible visual impairments. Successful treatment of posterior segment disease requires the efficient delivery of therapeutic substances to the targeted lesion. However, the complex ocular architecture makes the bioavailability of topically applied drugs extremely low. Invasive delivery approaches like intravitreal injection may cause adverse complications. To enhance the efficiency, several biomedical engineering systems have been developed to increase the penetration efficiency and improve the bioavailability of drugs at the posterior segments. Advantageously, biodegradable microspheres are found to deliver the therapeutic agents in a controlled fashion. The microspheres prepared from novel biomaterials can realize the prolonged release at the posterior segment with minimum side effects. Moreover, it will be degraded automatically into products that are non-toxic to the human body without the necessity of secondary operation to remove the residual polymer matrix. Additionally, biodegradable microspheres have decent thermoplasticity, adjustable hydrophilicity, controlled crystallinity, and high tensile strength, which make them suitable for intraocular delivery. In this review, we introduce the latest advancements in microsphere production technology and elaborate on the biomaterials that are used to prepare microspheres. We discuss systematically the pharmacological characteristics of biodegradable microspheres and compare their potential advantages and limitations in the treatment of posterior segment diseases. These findings would enrich our knowledge of biodegradable microspheres and cast light into the discovery of effective biomaterials for ocular drug delivery.
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