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

被引:3
作者
Amiryaghoubi, Nazanin [1 ]
Fathi, Marziyeh [1 ]
机构
[1] Tabriz Univ Med Sci, Biomed Inst, Res Ctr Pharmaceut Nanotechnol, Tabriz, Iran
关键词
Biomaterials; Cardiac vascular; Graphene-polymer; bioscaffolds; Tissue engineering; MESENCHYMAL STEM-CELLS; FOCAL ADHESION KINASE; CARDIOVASCULAR-DISEASE; CARDIOMYOGENIC DIFFERENTIATION; IN-VITRO; OXIDE; SCAFFOLDS; HYDROGELS; BIOCOMPATIBILITY; DESIGN;
D O I
10.34172/bi.2023.27684
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
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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页数:16
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共 94 条
  • [11] Recent advances in polymeric scaffolds containing carbon nanotube and graphene oxide for cartilage and bone regeneration
    Amiryaghoubi, Nazanin
    Fathi, Marziyeh
    Barzegari, Abolfazl
    Barar, Jaleh
    Omidian, Hossein
    Omidi, Yadollah
    [J]. MATERIALS TODAY COMMUNICATIONS, 2021, 26
  • [12] Bioactive polymeric scaffolds for osteogenic repair and bone regenerative medicine
    Amiryaghoubi, Nazanin
    Fathi, Marziyeh
    Pesyan, Nader Noroozi
    Samiei, Mohammad
    Barar, Jaleh
    Omidi, Yadollah
    [J]. MEDICINAL RESEARCH REVIEWS, 2020, 40 (05) : 1833 - 1870
  • [13] Electrically conductive nanomaterials for cardiac tissue engineering
    Ashtari, Khadijeh
    Nazari, Hojjatollah
    Ko, Hyojin
    Tebon, Peyton
    Akhshik, Masoud
    Akbari, Mohsen
    Alhosseini, Sanaz Naghavi
    Mozafari, Masoud
    Mehravi, Bita
    Soleimani, Masoud
    Ardehali, Reza
    Warkiani, Majid Ebrahimi
    Ahadian, Samad
    Khademhosseini, Ali
    [J]. ADVANCED DRUG DELIVERY REVIEWS, 2019, 144 : 162 - 179
  • [14] Rho GTPases as regulators of morphological neuroplasticity
    Auer, Maria
    Hausott, Barbara
    Klimaschewski, Lars
    [J]. ANNALS OF ANATOMY-ANATOMISCHER ANZEIGER, 2011, 193 (04) : 259 - 266
  • [15] Three-dimensional graphene foam as a conductive scaffold for cardiac tissue engineering
    Bahrami, Sajad
    Baheiraei, Nafiseh
    Mohseni, Majid
    Razavi, Mehdi
    Ghaderi, Atefeh
    Azizi, Behnam
    Rabiee, Navid
    Karimi, Mahdi
    [J]. JOURNAL OF BIOMATERIALS APPLICATIONS, 2019, 34 (01) : 74 - 85
  • [16] Benjamin EJ, 2017, CIRCULATION, V135, pE146, DOI [10.1161/CIR.0000000000000558, 10.1161/CIR.0000000000000485, 10.1161/CIR.0000000000000530]
  • [17] RGD and YIGSR synthetic peptides facilitate cellular adhesion identical to that of laminin and fibronectin but alter the physiology of neonatal cardiac myocytes
    Boateng, SY
    Lateef, SS
    Mosley, W
    Hartman, TJ
    Hanley, L
    Russell, B
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2005, 288 (01): : C30 - C38
  • [18] The cardiac fibroblast: Therapeutic target in myocardial remodeling and failure
    Brown, RD
    Ambler, SK
    Mitchell, MD
    Long, CS
    [J]. ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, 2005, 45 : 657 - 687
  • [19] Hydrogels for cardiac tissue engineering
    Camci-Unal, Gulden
    Annabi, Nasim
    Dokmeci, Mehmet R.
    Liao, Ronglih
    Khademhosseini, Ali
    [J]. NPG ASIA MATERIALS, 2014, 6 : e99 - e99
  • [20] In vitro toxicity evaluation of graphene oxide on A549 cells
    Chang, Yanli
    Yang, Sheng-Tao
    Liu, Jia-Hui
    Dong, Erya
    Wang, Yanwen
    Cao, Aoneng
    Liu, Yuanfang
    Wang, Haifang
    [J]. TOXICOLOGY LETTERS, 2011, 200 (03) : 201 - 210