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논문 기본 정보

자료유형
학술저널
저자정보
Mei‑Xian Li (Fiber Composites for Safety and Protection National and Local Joint Engineering Research Center of Technical Nantong University) Qian‑Qi Wei (Institute of Special Environmental Medicine Nantong University) Hui‑Lin Mo (School of Textile and Clothing Nantong University) Yu Ren (Fiber Composites for Safety and Protection National and Local Joint Engineering Research Center of Technical Nantong University) Wei Zhang (Fiber Composites for Safety and Protection National and Local Joint Engineering Research Center of Technical Nantong University) Huan‑Jun Lu (Center for Biomaterials Biomedical Research Institute Korea Institute of Science and Technology) 정윤기 (한국과학기술연구원)
저널정보
한국생체재료학회 생체재료학회지 생체재료학회지 제27권
발행연도
2023.3
수록면
1,520 - 1,541 (22page)
DOI
https://doi.org/10.1186/s40824-023-00399-2

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The arterial occlusive disease is one of the leading causes of cardiovascular diseases, often requiring revascularization. Lack of suitable small-diameter vascular grafts (SDVGs), infection, thrombosis, and intimal hyperplasia associated with synthetic vascular grafts lead to a low success rate of SDVGs (< 6 mm) transplantation in the clinical treatment of cardiovascular diseases. The development of fabrication technology along with vascular tissue engineering and regenerative medicine technology allows biological tissue-engineered vascular grafts to become living grafts, which can integrate, remodel, and repair the host vessels as well as respond to the surrounding mechanical and biochemical stimuli. Hence, they potentially alleviate the shortage of existing vascular grafts. This paper evaluates the current advanced fabrication technologies for SDVGs, including electrospinning, molding, 3D printing, decellularization, and so on. Various characteristics of synthetic polymers and surface modification methods are also introduced. In addition, it also provides interdisciplinary insights into the future of small-diameter prostheses and discusses vital factors and perspectives for developing such prostheses in clinical applications. We propose that the performance of SDVGs can be improved by integrating various technologies in the near future.

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