4.8 Review

Effects of electrically conductive nano-biomaterials on regulating cardiomyocyte behavior for cardiac repair and regeneration

期刊

ACTA BIOMATERIALIA
卷 139, 期 -, 页码 141-156

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2021.11.022

关键词

Myocardial infarction; Electrical conductivity; Nanomaterials; Biomaterials; Tissue engineering; Cardiac remodeling

资金

  1. AHA Innovative Project Award [19IPLOI34660079]
  2. Gillian Reny Stepping Strong Center for Trauma Innovation
  3. Brigham Research Institute Innovation Evergreen Fund (IEF)
  4. Deputyship for Research & Innovation, Ministry of Education in Saudi Arabia

向作者/读者索取更多资源

Myocardial infarction (MI) is a prevalent cardiovascular disease with high death rates worldwide. Utilizing biomaterials, especially nano-sized hydrogels with unique properties, shows great potential in cardiac repair and regeneration, promoting healing on cardiac injury models and enhancing heart regeneration by manipulating cardiomyocyte behavior.
Myocardial infarction (MI) represents one of the most prevalent cardiovascular diseases, with a highly relevant and impactful role in public health. Despite the therapeutic advances of the last decades, MI still begets extensive death rates around the world. The pathophysiology of the disease correlates with cardiomyocyte necrosis, caused by an imbalance in the demand of oxygen to cardiac tissues, resulting from obstruction of the coronary flow. To alleviate the severe effects of MI, the use of various biomaterials exhibit vast potential in cardiac repair and regeneration, acting as native extracellular matrices. These hydrogels have been combined with nano sized or functional materials which possess unique electrical, mechanical, and topographical properties that play important roles in regulating phenotypes and the contractile function of cardiomyocytes even in adverse microenvironments. These nano-biomaterials' differential properties have led to substantial healing on in vivo cardiac injury models by promoting fibrotic scar reduction, hemodynamic function preservation, and benign cardiac remodeling. In this review, we discuss the interplay of the unique physical properties of electrically conductive nano-biomaterials, are able to manipulate the phenotypes and the electrophysiological behavior of cardiomyocytes in vitro, and can enhance heart regeneration in vivo . Consequently, the understanding of the decisive roles of the nano-biomaterials discussed in this review could be useful for designing novel nano-biomaterials in future research for cardiac tissue engineering and regeneration.Statement of significanceThis study introduced and deciphered the understanding of the role of multimodal cues in recent advances of electrically conductive nano-biomaterials on cardiac tissue engineering. Compared with other review papers, which mainly describe these studies based on various types of electrically conductive nano-biomaterials, in this review paper we mainly discussed the interplay of the unique physical properties (electrical conductivity, mechanical properties, and topography) of electrically conductive nanobiomaterials, which would allow them to manipulate phenotypes and the electrophysiological behavior of cardiomyocytes in vitro and to enhance heart regeneration in vivo . Consequently, understanding the de- cisive roles of the nano-biomaterials discussed in the review could help design novel nano-biomaterials in future research for cardiac tissue engineering and regeneration. (c) 2021 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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