Chitosan-Based Scaffolds for the Treatment of Myocardial Infarction: A Systematic Review

被引:25
作者
Acosta, Bryan Beleno [1 ]
Advincula, Rigoberto C. C. [2 ,3 ]
Grande-Tovar, Carlos David [1 ]
机构
[1] Univ Atlantico, Grp Invest Fotoquim & Fotobiol, Quim, Carrera 30 Numero 8-49, Puerto Colombia 081008, Colombia
[2] Univ Tennessee, Dept Chem & Biomol Engn, Knoxville, TN 37996 USA
[3] Oak Ridge Natl Lab, Ctr Nanophase Mat Sci CNMS, Oak Ridge, TN 37830 USA
关键词
biopolymers; chitosan scaffolds; cardiac tissue engineering; natural polysaccharide; heart attack; CARDIAC-FUNCTION; NANOFIBROUS SCAFFOLD; IN-VITRO; HYDROGEL; BIOMATERIALS; FABRICATION; PREVENTION; THICKNESS; COLLAGEN; MATRIX;
D O I
10.3390/molecules28041920
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Cardiovascular diseases (CVD), such as myocardial infarction (MI), constitute one of the world's leading causes of annual deaths. This cardiomyopathy generates a tissue scar with poor anatomical properties and cell necrosis that can lead to heart failure. Necrotic tissue repair is required through pharmaceutical or surgical treatments to avoid such loss, which has associated adverse collateral effects. However, to recover the infarcted myocardial tissue, biopolymer-based scaffolds are used as safer alternative treatments with fewer side effects due to their biocompatibility, chemical adaptability and biodegradability. For this reason, a systematic review of the literature from the last five years on the production and application of chitosan scaffolds for the reconstructive engineering of myocardial tissue was carried out. Seventy-five records were included for review using the "preferred reporting items for systematic reviews and meta-analyses" data collection strategy. It was observed that the chitosan scaffolds have a remarkable capacity for restoring the essential functions of the heart through the mimicry of its physiological environment and with a controlled porosity that allows for the exchange of nutrients, the improvement of the electrical conductivity and the stimulation of cell differentiation of the stem cells. In addition, the chitosan scaffolds can significantly improve angiogenesis in the infarcted tissue by stimulating the production of the glycoprotein receptors of the vascular endothelial growth factor (VEGF) family. Therefore, the possible mechanisms of action of the chitosan scaffolds on cardiomyocytes and stem cells were analyzed. For all the advantages observed, it is considered that the treatment of MI with the chitosan scaffolds is promising, showing multiple advantages within the regenerative therapies of CVD.
引用
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页数:31
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共 181 条
[81]
Composite poly(lactic acid)/chitosan nanofibrous scaffolds for cardiac tissue engineering [J].
Liu, Yaowen ;
Wang, Shuyao ;
Zhang, Rong .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2017, 103 :1130-1137
[82]
Biomimetic macroporous hydrogel with a triple-network structure for full-thickness skin regeneration [J].
Long, Xiaojun ;
Xu, Xiao ;
Sun, Deshun ;
Hong, Yi ;
Wen, Caining ;
Xie, Yixin ;
Yan, Bing ;
Zhang, Huawei ;
Ge, Qi ;
Li, Wencu ;
Duan, Li ;
Ouyang, Hongwei ;
Wang, Daping .
APPLIED MATERIALS TODAY, 2022, 27
[83]
N-cadherin overexpression enhances the reparative potency of human-induced pluripotent stem cell-derived cardiac myocytes in infarcted mouse hearts [J].
Lou, Xi ;
Zhao, Meng ;
Fan, Chengming ;
Fast, Vladimir G. ;
Valarmathi, Mani T. ;
Zhu, Wuqiang ;
Zhang, Jianyi .
CARDIOVASCULAR RESEARCH, 2020, 116 (03) :671-685
[84]
Natural Biomaterials for Cardiac Tissue Engineering: A Highly Biocompatible Solution [J].
Majid, Qasim A. ;
Fricker, Annabelle T. R. ;
Gregory, David A. ;
Davidenko, Natalia ;
Cruz, Olivia Hernandez ;
Jabbour, Richard J. ;
Owen, Thomas J. ;
Basnett, Pooja ;
Lukasiewicz, Barbara ;
Stevens, Molly ;
Best, Serena ;
Cameron, Ruth ;
Sinha, Sanjay ;
Harding, Sian E. ;
Roy, Ipsita .
FRONTIERS IN CARDIOVASCULAR MEDICINE, 2020, 7
[85]
Tuning polylactic acid scaffolds for tissue engineering purposes by incorporating graphene oxide-chitosan nano-hybrids [J].
Majidi, Hoomaan Joz ;
Babaei, Amir ;
Kazemi-Pasarvi, Sina ;
Arab-Bafrani, Zahra ;
Amiri, Mehrasa .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2021, 32 (04) :1654-1666
[86]
Adult mesenchymal stem cells and their exosomes: Sources, characteristics, and application in regenerative medicine [J].
Maqsood, Maria ;
Kang, Mingzhu ;
Wu, Xiaotao ;
Chen, Jinghua ;
Teng, Liping ;
Qiu, Lipeng .
LIFE SCIENCES, 2020, 256
[87]
Cardiovascular Disease Prevention in Focus: Highlights from the 2019 American Heart Association Scientific Sessions [J].
Mehta, Anurag ;
Mahtta, Dhruv ;
Gulati, Martha ;
Sperling, Laurence S. ;
Blumenthal, Roger S. ;
Virani, Salim S. .
CURRENT ATHEROSCLEROSIS REPORTS, 2020, 22 (01)
[88]
Biocompatibility of Human Auricular Chondrocytes Cultured onto a Chitosan/Polyvynil Alcohol/Epichlorohydrin-Based Hydrogel for Tissue Engineering Application [J].
Melgarejo-Ramirez, Yaaziel ;
Sanchez-Sanchez, Roberto ;
Garcia-Carvajal, Zaira ;
Garcia-Lopez, Julieta ;
Gutierrez-Gomez, Claudia ;
Luna-Barcenas, Gabriel ;
Ibarra, Clemente ;
Velasquillo, Cristina .
INTERNATIONAL JOURNAL OF MORPHOLOGY, 2014, 32 (04) :1347-1356
[89]
Electroactive Polymeric Composites to Mimic the Electromechanical Properties of Myocardium in Cardiac Tissue Repair [J].
Meyers, Kaylee ;
Lee, Bruce P. ;
Rajachar, Rupak M. .
GELS, 2021, 7 (02)
[90]
Ticagrelor versus clopidogrel in East Asian patients with acute coronary syndrome: Systematic review and meta-analysis [J].
Misumida, Naoki ;
Aoi, Shunsuke ;
Kim, Sun Moon ;
Ziada, Khaled M. ;
Abdel-Latif, Ahmed .
CARDIOVASCULAR REVASCULARIZATION MEDICINE, 2018, 19 (06) :689-694