Institute of Chemical Technology, Department of Pharmaceutical Science and Technology, Nathalal Parekh Marg, Matunga, Mumbai 400019, India.
Institute of Chemical Technology, Department of Pharmaceutical Science and Technology, Nathalal Parekh Marg, Matunga, Mumbai 400019, India.
Ann Pharm Fr. 2022 Sep;80(5):603-616. doi: 10.1016/j.pharma.2021.11.009. Epub 2021 Dec 9.
The limitations of non-biodegradable polymers have paved the way for biodegradable polymers in the pharmaceutical and biomedical sciences over the years. Poly (lactic-co-glycolic acid) (PLGA), also known as "Smart polymer", is one of the most successfully developed biodegradable polymers due to its favorable properties, such as biodegradability, biocompatibility, controllable drug release profile, and ability to alter surface with targeting agents for diagnosis and treatment. The release behavior of drugs from PLGA delivery devices is influenced by the physicochemical properties of PLGA. In this review, the current state of the art of PLGA, its synthesis, physicochemical properties, and degradation are discussed to enunciate the boundaries of future research in terms of its applicability with the optimized design in today's modern age. The fundamental objective of this review is to highlight the significance of PLGA as a polymer in the field of cancer, cardiovascular diseases, neurological disorders, dentistry, orthopedics, vaccine therapy, theranostics and lastly emerging epidemic diseases like COVID-19. Furthermore, the coverage of recent PLGA-based drug delivery systems including nanosystems, microsystems, scaffolds, hydrogels, etc. has been summarized. Overall, this review aims to disseminate the PLGA-driven revolution of the drug delivery arena in the pharmaceutical and biomedical industry and bridge the lacunae between material research, preclinical experimentation, and clinical reality.
多年来,不可生物降解聚合物的局限性为药物和生物医学科学中的可生物降解聚合物铺平了道路。聚(乳酸-共-乙醇酸)(PLGA),也称为“智能聚合物”,是最成功开发的可生物降解聚合物之一,因为它具有良好的特性,如生物降解性、生物相容性、可控制药物释放特性,以及能够改变表面与靶向剂进行诊断和治疗的能力。PLGA 给药装置中药物的释放行为受 PLGA 的物理化学性质的影响。在这篇综述中,讨论了 PLGA 的最新研究现状、其合成、物理化学性质和降解,以阐明其在当今现代优化设计方面的适用性的未来研究的界限。本综述的基本目的是强调 PLGA 作为癌症、心血管疾病、神经退行性疾病、牙科、骨科、疫苗治疗、治疗学以及最后 COVID-19 等新兴传染病领域聚合物的重要性。此外,还总结了最近基于 PLGA 的药物输送系统,包括纳米系统、微系统、支架、水凝胶等。总的来说,本综述旨在传播药物输送领域中由 PLGA 驱动的药物输送革命,并弥合材料研究、临床前实验和临床现实之间的差距。