In situ densification and heparin immobilization of bacterial cellulose vascular patch for potential vascular applications

原位 脐静脉 细菌纤维素 粘附 血管移植 纤维素 化学 生物医学工程 肝素 材料科学 生物物理学 生物化学 体外 生物 复合材料 医学 有机化学
作者
Zhiwei Yang,Yichuan Zhang,Yuqin Chen,Ling Fu,Yanan Sun,Zhengzhao Yang,Teng Cui,Jie Wang,Yizao Wan
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:270: 132181-132181 被引量:2
标识
DOI:10.1016/j.ijbiomac.2024.132181
摘要

Nowadays, developing vascular grafts (e.g., vascular patches and tubular grafts) is challenging. Bacterial cellulose (BC) with 3D fibrous network has been widely investigated for vascular applications. In this work, different from BC vascular patch cultured with the routine culture medium, dopamine (DA)-containing culture medium is employed to in situ synthesize dense BC fibrous structure with significantly increased fiber diameter and density. Simultaneously, BC fibers are modified by DA during in situ synthesis process. Then DA on BC fibers can self-polymerize into polydopamine (PDA) accompanied with the removal of bacteria in NaOH solution, obtaining PDA-modified dense BC (PDBC) vascular patch. Heparin (Hep) is subsequently covalently immobilized on PDBC fibers to form Hep-immobilized PDBC (Hep@PDBC) vascular patch. The obtained results indicate that Hep@PDBC vascular patch exhibits remarkable tensile and burst strength due to its dense fibrous structure. More importantly, compared with BC and PDBC vascular patches, Hep@PDBC vascular patch not only displays reduced platelet adhesion and improved anticoagulation activity, but also promotes the proliferation, adhesion, spreading, and protein expression of human umbilical vein endothelial cells, contributing to the endothelialization process. The combined strategy of in situ densification and Hep immobilization provides a feasible guidance for the construction of BC-based vascular patches.
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