Bioscaffolds of graphene based-polymeric hybrid materials for myocardial tissue engineering.

IF 2.2 4区 工程技术 Q3 PHARMACOLOGY & PHARMACY Bioimpacts Pub Date : 2024-01-01 Epub Date: 2023-08-12 DOI:10.34172/bi.2023.27684
Nazanin Amiryaghoubi, Marziyeh Fathi
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Abstract

Introduction: Biomaterials currently utilized for the regeneration of myocardial tissue seem to associate with certain restrictions, including deficiency of electrical conductivity and sufficient mechanical strength. These two factors play an important role in cardiac tissue engineering and regeneration. The contractile property of cardiomyocytes depends on directed signal transmission over the electroconductive systems that happen inside the innate myocardium. Because of their distinctive electrical behavior, electroactive materials such as graphene might be used for the regeneration of cardiac tissue.

Methods: In this review, we aim to provide deep insight into the applications of graphene and graphene derivative-based hybrid polymeric scaffolds in cardiomyogenic differentiation and cardiac tissue regeneration.

Results: Synthetic biodegradable polymers are considered as a platform because their degradation can be controlled over time and easily functionalized. Therefore, graphene-polymeric hybrid scaffolds with anisotropic electrical behavior can be utilized to produce organizational and efficient constructs for macroscopic cardiac tissue engineering. In cardiac tissue regeneration, natural polymer based-scaffolds such as chitosan, gelatin, and cellulose can provide a permissive setting significantly supporting the differentiation and growth of the human induced pluripotent stem cells -derived cardiomyocytes, in large part due to their negligible immunogenicity and suitable biodegradability.

Conclusion: Cardiac tissue regeneration characteristically utilizes an extracellular matrix (scaffold), cells, and growth factors that enhance cell adhesion, growth, and cardiogenic differentiation. From the various evaluated electroactive polymeric scaffolds for cardiac tissue regeneration in the past decade, graphene and its derivatives-based materials can be utilized efficiently for cardiac tissue engineering.

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用于心肌组织工程的石墨烯基聚合物杂化材料生物支架
引言:目前用于心肌组织再生的生物材料似乎有某些限制,包括缺乏导电性和足够的机械强度。这两个因素在心脏组织工程和再生中起着重要作用。心肌细胞的收缩特性取决于先天心肌内部导电系统的定向信号传输。由于其独特的电学行为,石墨烯等电活性材料可能用于心脏组织的再生。方法:在这篇综述中,我们旨在深入了解基于石墨烯和石墨烯衍生物的杂化聚合物支架在心肌分化和心脏组织再生中的应用。结果:合成的生物可降解聚合物被认为是一种平台,因为它们的降解可以随着时间的推移得到控制,并且容易功能化。因此,具有各向异性电学行为的石墨烯-聚合物杂化支架可用于生产用于宏观心脏组织工程的组织和有效的构建体。在心脏组织再生中,基于天然聚合物的支架,如壳聚糖、明胶和纤维素,可以提供一种允许的环境,显著支持人类诱导的多能干细胞衍生的心肌细胞的分化和生长,这在很大程度上是由于其可忽略的免疫原性和合适的生物降解性。结论:心脏组织再生的特点是利用细胞外基质(支架)、细胞和生长因子来增强细胞粘附、生长和心源性分化。从过去十年中评估的用于心脏组织再生的各种电活性聚合物支架来看,石墨烯及其衍生物基材料可以有效地用于心脏组织工程。
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来源期刊
Bioimpacts
Bioimpacts Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
4.80
自引率
7.70%
发文量
36
审稿时长
5 weeks
期刊介绍: BioImpacts (BI) is a peer-reviewed multidisciplinary international journal, covering original research articles, reviews, commentaries, hypotheses, methodologies, and visions/reflections dealing with all aspects of biological and biomedical researches at molecular, cellular, functional and translational dimensions.
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