先进心血管组织工程的跨学科方法:基于ecm的生物材料,生物3D打印及其评估

IF 5 Q1 ENGINEERING, BIOMEDICAL Progress in biomedical engineering (Bristol, England) Pub Date : 2020-09-24 DOI:10.1088/2516-1091/abb211
U. Yong, Sooyeon Lee, Seungman Jung, Jinah Jang
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引用次数: 8

摘要

心血管疾病作为一类具有代表性的顽固性疾病,是全球最常见的死亡原因,每年约有1790万人死亡。在疾病阶段结束时,由于心血管组织的再生能力有限,不可避免地需要进行心血管(CV)组织置换手术。然而,目前可用的方法(如自体移植物、同种异体移植物、异种移植物、假体)由于供体短缺、免疫移植排斥反应、抗凝治疗和耐久性较差,治疗效果有限。为了克服这些限制,CV组织工程技术已被广泛探索,以开发用于体内移植的可替代组织和器官。此外,3D组织模型也被研究用于体外机制研究和治疗筛选。为了实现这一目标,在研究各种CV组织特异性生物材料和先进的3D生物打印技术以增强工程CV组织的生理和解剖相关性方面取得了巨大进展。此外,已经研究了各种评估方法,以验证工程CV组织的独特结构特性和电活性,从而在三维体积结构中进行无创或微创的实时评估。在这篇综述中,我们系统地介绍和讨论了CV组织特异性生物材料、3D生物打印技术以及有助于实时监测的评估方法的优势和应用。对心血管组织工程先进策略的深入了解可用于指导下一代心血管疾病治疗方法的工作。
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Interdisciplinary approaches to advanced cardiovascular tissue engineering: ECM-based biomaterials, 3D bioprinting, and its assessment
As a class of representative intractable diseases, cardiovascular disease (CVD) is the most common cause of global mortality, accounting for approximately 17.9 million deaths each year. At the end of the disease stage, surgery for replacement of cardiovascular (CV) tissue is inevitably required due to the limited regeneration capacity of CV tissue. However, the currently available methods (e.g. autografts, allografts, xenografts, prostheses) have limited therapeutic efficacy because of donor shortage, immunological transplant rejection, anticoagulant therapy, and less durability. To overcome these limitations, CV tissue engineering technology has been extensively explored to develop replaceable tissue and organs for in vivo transplantation. In addition, 3D tissue models are also studied for in vitro mechanistic study and therapeutic screening. To accomplish this, there has been tremendous progress in studying various CV tissue-specific biomaterials and advanced 3D bioprinting techniques to enhance the physiological and anatomical relevance of engineered CV tissues. Moreover, a variety of evaluation methods have been investigated to validate the unique structural properties and electrical activity of the engineered CV tissues towards non- or less-invasive and real-time assessments in 3D volumetric structures. In this review, we systemically present and discuss the advantages and applications of CV tissue-specific biomaterials, 3D bioprinting techniques, and assessment methods that can facilitate real-time monitoring. A thorough understanding of advanced strategies in CV tissue engineering can be utilized to guide work on next-generation therapeutics for CVD.
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