Patel Bhaumik, Manne Ravi, Patel Devang B, Gorityala Shashank, Palaniappan Arunkumar, Kurakula Mallesh
Product Development, Cure Pharmaceutical Corporation, Los Angeles, CA 90025, USA.
Chemtex Environmental Laboratory, Quality Control, and Assurance Department, Port Arthur, TX 77642, USA.
Gels. 2021 Dec 9;7(4):253. doi: 10.3390/gels7040253.
Cardiovascular diseases are a leading cause of mortality across the globe, and transplant surgeries are not always successful since it is not always possible to replace most of the damaged heart tissues, for example in myocardial infarction. Chitosan, a natural polysaccharide, is an important biomaterial for many biomedical and pharmaceutical industries. Based on the origin, degree of deacetylation, structure, and biological functions, chitosan has emerged for vital tissue engineering applications. Recent studies reported that chitosan coupled with innovative technologies helped to load or deliver drugs or stem cells to repair the damaged heart tissue not just in a myocardial infarction but even in other cardiac therapies. Herein, we outlined the latest advances in cardiac tissue engineering mediated by chitosan overcoming the barriers in cardiac diseases. We reviewed in vitro and in vivo data reported dealing with drug delivery systems, scaffolds, or carriers fabricated using chitosan for stem cell therapy essential in cardiac tissue engineering. This comprehensive review also summarizes the properties of chitosan as a biomaterial substrate having sufficient mechanical stability that can stimulate the native collagen fibril structure for differentiating pluripotent stem cells and mesenchymal stem cells into cardiomyocytes for cardiac tissue engineering.
心血管疾病是全球主要的死亡原因,而移植手术并不总是成功的,因为在心肌梗死等情况下,并不总是能够替换大部分受损的心脏组织。壳聚糖是一种天然多糖,是许多生物医学和制药行业的重要生物材料。基于其来源、脱乙酰度、结构和生物学功能,壳聚糖已在重要的组织工程应用中崭露头角。最近的研究报告称,壳聚糖与创新技术相结合,有助于装载或递送药物或干细胞,不仅可修复心肌梗死中的受损心脏组织,甚至还可用于其他心脏治疗。在此,我们概述了壳聚糖介导的心脏组织工程的最新进展,这些进展克服了心脏疾病中的障碍。我们回顾了体外和体内数据,这些数据涉及使用壳聚糖制造的用于心脏组织工程中至关重要的干细胞治疗的药物递送系统、支架或载体。这篇全面的综述还总结了壳聚糖作为生物材料基质的特性,其具有足够的机械稳定性,可刺激天然胶原纤维结构,将多能干细胞和间充质干细胞分化为心肌细胞用于心脏组织工程。