Hu Shaorun, Liang Yu, Chen Jinxiang, Gao Xiaojun, Zheng Youkun, Wang Liqun, Jiang Jun, Zeng Min, Luo Mao
Basic Medicine Research Innovation Center for Cardiometabolic Diseases, Ministry of Education, Southwest Medical University, Luzhou, Sichuan, China.
Laboratory for Cardiovascular Pharmacology, Department of Pharmacology, School of Pharmacy, Southwest Medical University, Luzhou, Sichuan, China.
J Tissue Eng. 2024 Jul 31;15:20417314241265897. doi: 10.1177/20417314241265897. eCollection 2024 Jan-Dec.
Hydrogels, composed of three-dimensional polymer networks, are excellent delivery carriers and have been extensively employed in the biomedical field. Inflammation acts as a protective mechanism to prevent harmful substances from entering living organisms, but chronic, long-lasting inflammation can cause oxidative stress, which damages tissue and organs and adversely affects patients' quality of life. The aberrant expression of microRNAs (miRNAs) has been found to play a significant part in the etiology and progression of inflammatory diseases, as suggested by growing evidence. Numerous hydrogels that can act as gene carriers for the intracellular delivery of miRNA have been described during ongoing research into innovative hydrogel materials. MiRNA hydrogel delivery systems, which are loaded with exogenous miRNA inhibitors or mimics, enable targeted miRNA intervention in inflammatory diseases and effectively prevent environmental stressors from degrading or inactivating miRNA. In this review, we summarize the classification of miRNA hydrogel delivery systems, the basic strategies and mechanisms for loading miRNAs into hydrogels, highlight the biomedical applications of miRNA hydrogel delivery systems in inflammatory diseases, and share our viewpoints on potential opportunities and challenges in the promising region of miRNA delivery systems. These findings may provide a new theoretical basis for the prevention and treatment of inflammation-related diseases and lay the foundation for clinical translation.
水凝胶由三维聚合物网络组成,是优良的递送载体,已在生物医学领域广泛应用。炎症是一种防止有害物质进入生物体的保护机制,但慢性、持续性炎症会导致氧化应激,损害组织和器官,并对患者的生活质量产生不利影响。越来越多的证据表明,微小RNA(miRNA)的异常表达在炎症性疾病的病因和进展中起重要作用。在对创新水凝胶材料的持续研究中,已描述了许多可作为miRNA细胞内递送基因载体的水凝胶。装载有外源性miRNA抑制剂或模拟物的miRNA水凝胶递送系统,能够对炎症性疾病进行靶向miRNA干预,并有效防止环境应激因素使miRNA降解或失活。在本综述中,我们总结了miRNA水凝胶递送系统的分类、将miRNA装载到水凝胶中的基本策略和机制,突出了miRNA水凝胶递送系统在炎症性疾病中的生物医学应用,并分享了我们对miRNA递送系统这一有前景领域中潜在机遇和挑战的观点。这些发现可能为炎症相关疾病的预防和治疗提供新的理论依据,并为临床转化奠定基础。