Bioinspired, Anticoagulative, 19F MRI‐Visualizable Bilayer Hydrogel Tubes as High Patency Small‐Diameter Vascular Grafts

Author:

Li Shuangyang1,Zhao Feng2,Tang Yipeng2,Zhang Yiqun1,Rong Hui1,Liu Lingyuan1,Gao Rui3,Liu Xiang1,Huangfu Yini1,Bai Yunpeng2,Feng Zujian3,Guo Zhigang2,Dong Anjie14,Wang Weiwei3ORCID,Kong Deling5,Huang Pingsheng3

Affiliation:

1. Department of Polymer Science and Engineering Key Laboratory of Systems Bioengineering (Ministry of Education) School of Chemical Engineering and Technology Tianjin University Tianjin 300072 China

2. Chest hospital Tianjin University Tianjin 300222 China

3. Tianjin Key Laboratory of Biomaterial Research Institute of Biomedical Engineering Chinese Academy of Medical Sciences and Peking Union Medical College Tianjin 300192 China

4. Frontiers Science Center for Synthetic Biology Key Laboratory of Systems Bioengineering(MOE) Tianjin University Tianjin 300072 China

5. State Key Laboratory of Medicinal Chemical Biology College of Life Sciences Nankai University Tianjin 300071 China

Abstract

AbstractThe clinical patency of small‐diameter vascular grafts (SDVGs) (ID < 6 mm) is limited, with the formation of mural thrombi being a major threat of this limitation. Herein, a bilayered hydrogel tube based on the essential structure of native blood vessels is developed by optimizing the relation between vascular functions and the molecular structure of hydrogels. The inner layer of the SDVGs comprises a zwitterionic fluorinated hydrogel, avoiding the formation of thromboinflammation‐induced mural thrombi. Furthermore, the position and morphology of the SDVGs can be visualized via 19F/1H magnetic resonance imaging. The outer poly(N‐acryloyl glycinamide) hydrogel layer of SDVGs provides matched mechanical properties with native blood vessels through the multiple and controllable intermolecular hydrogen‐bond interactions, which can withstand the accelerated fatigue test under pulsatile radial pressure for 380 million cycles (equal to a service life of 10 years in vivo). Consequently, the SDVGs exhibit higher patency (100%) and more stable morphology following porcine carotid artery transplantation for 9 months and rabbit carotid artery transplantation for 3 months. Therefore, such a bioinspired, antithrombotic, and visualizable SDVG presents a promising design approach for long‐term patency products and great potential of helping patients with cardiovascular diseases.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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