Mechanisms of hydrogel-based microRNA delivery systems and its application strategies in targeting inflammatory diseases

Author:

Hu Shaorun123,Liang Yu4,Chen Jinxiang123,Gao Xiaojun123,Zheng Youkun123,Wang Liqun123,Jiang Jun56,Zeng Min7,Luo Mao123ORCID

Affiliation:

1. Basic Medicine Research Innovation Center for Cardiometabolic Diseases, Ministry of Education, Southwest Medical University, Luzhou, Sichuan, China

2. Laboratory for Cardiovascular Pharmacology, Department of Pharmacology, School of Pharmacy, Southwest Medical University, Luzhou, Sichuan, China

3. Municipal Key Laboratory of Thrombosis and Vascular Biology, Luzhou, Sichuan, China

4. Integrated Traditional Chinese and Western Medicine, Affiliated Hospital of Traditional Chinese Medicine, Southwest Medical University, Luzhou, Sichuan, China

5. Department of General Surgery (Thyroid Surgery), The Affiliated Hospital, Southwest Medical University, Luzhou, Sichuan, China

6. Metabolic Vascular Diseases Key Laboratory of Sichuan Province, Luzhou, Sichuan, China

7. Department of Pharmacy, The Affiliated Hospital, Southwest Medical University, Luzhou, Sichuan, China

Abstract

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.

Funder

sichuan province science and technology support program

National Natural Science Foundation of China

Natural Science Foundation of Sichuan Province

Publisher

SAGE Publications

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