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水凝胶在心脏再生中的应用。

Application of Hydrogels in Cardiac Regeneration.

作者信息

Yu Xuejing

机构信息

Division of Cardiology, Department of Internal Medicine, The University of Texas Southwestern Medical Center, 5323 Harry Hines Boulevard, Dallas, TX, 75235, USA.

出版信息

Cardiol Ther. 2023 Dec;12(4):637-674. doi: 10.1007/s40119-023-00339-0. Epub 2023 Nov 18.

Abstract

Myocardial infarction (MI) is a leading cause of death globally. Due to limited cardiac regeneration, infarcted myocardial tissue is gradually replaced by cardiac fibrosis, causing cardiac dysfunction, arrhythmia, aneurysm, free wall rupture, and sudden cardiac death. Thus, the development of effective methods to promote cardiac regeneration is extremely important for MI treatment. In recent years, hydrogels have shown promise in various methods for cardiac regeneration. Hydrogels can be divided into natural and synthetic types. Different hydrogels have different features and can be cross-linked in various ways. Hydrogels are low in toxicity and highly stable. Since they have good biocompatibility, biodegradability, and transformability, moderate mechanical properties, and proper elasticity, hydrogels are promising biomaterials for promoting cardiac regeneration. They can be used not only as scaffolds for migration of stem cells, but also as ideal carriers for delivery of drugs, genetic materials, stem cells, growth factors, cytokines, and small molecules. In this review, the application of hydrogels in cardiac regeneration during or post-MI is discussed in detail. Hydrogels open a promising new area in cardiac regeneration for treating MI.

摘要

心肌梗死(MI)是全球主要的死亡原因之一。由于心脏再生能力有限,梗死心肌组织逐渐被心脏纤维化取代,导致心脏功能障碍、心律失常、动脉瘤、游离壁破裂和心源性猝死。因此,开发有效的促进心脏再生的方法对心肌梗死治疗极为重要。近年来,水凝胶在多种心脏再生方法中显示出前景。水凝胶可分为天然型和合成型。不同的水凝胶具有不同的特性,且能以多种方式交联。水凝胶毒性低且高度稳定。由于它们具有良好的生物相容性、生物降解性和可转化性,适度的机械性能和适当的弹性,水凝胶是促进心脏再生的有前景的生物材料。它们不仅可以用作干细胞迁移的支架,还可以作为药物、基因材料、干细胞、生长因子、细胞因子和小分子递送的理想载体。在本综述中,将详细讨论水凝胶在心肌梗死期间或之后心脏再生中的应用。水凝胶为治疗心肌梗死的心脏再生开辟了一个有前景的新领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e39/10703752/f2d027a298a6/40119_2023_339_Fig1_HTML.jpg

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