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通过铜@茶多酚纳米颗粒的自组装实现无细胞贴片的交联和功能化。

Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles.

作者信息

Li Qin, Gao Yuan, Zhang Jiajun, Tang Yangfeng, Sun Yangyong, Wu Lujia, Wu Hao, Shen Meifang, Liu Xiaohong, Han Lin, Xu Zhiyun

机构信息

Department of Cardiovascular Lab, Institute of Cardiothoracic Surgery, Changhai Hospital, Shanghai, China.

Institute of Cardiovascular Surgery, Changhai Hospital, Shanghai, China.

出版信息

Regen Biomater. 2022 May 18;9:rbac030. doi: 10.1093/rb/rbac030. eCollection 2022.

Abstract

Decellularization is a promising technique to produce natural scaffolds for tissue engineering applications. However, non-crosslinked natural scaffolds disfavor application in cardiovascular surgery due to poor biomechanics and rapid degradation. Herein, we proposed a green strategy to crosslink and functionalize acellular scaffolds via the self-assembly of copper@tea polyphenol nanoparticles (Cu@TP NPs), and the resultant nanocomposite acellular scaffolds were named as Cu@TP-dBPs. The crosslinking degree, biomechanics, denaturation temperature and resistance to enzymatic degradation of Cu@TP-dBPs were comparable to those of glutaraldehyde crosslinked decellularized bovine pericardias (Glut-dBPs). Furthermore, Cu@TP-dBPs were biocompatible and had abilities to inhibit bacterial growth and promote the formation of capillary-like networks. Subcutaneous implantation models demonstrated that Cu@TP-dBPs were free of calcification and allowed for host cell infiltration at Day 21. Cardiac patch graft models confirmed that Cu@TP-dBP patches showed improved ingrowth of functional blood vessels and remodeling of extracellular matrix at Day 60. These results suggested that Cu@TP-dBPs not only had comparable biomechanics and biostability to Glut-dBPs, but also had several advantages over Glut-dBPs in terms of anticalcification, remodeling and integration capabilities. Particularly, they were functional patches possessing antibacterial and proangiogenic activities. These material properties and biological functions made Cu@TP-dBPs a promising functional acellular patch for cardiovascular applications.

摘要

去细胞化是一种很有前景的技术,可用于生产用于组织工程应用的天然支架。然而,由于生物力学性能差和降解迅速,未交联的天然支架不利于在心血管手术中应用。在此,我们提出了一种绿色策略,通过铜@茶多酚纳米颗粒(Cu@TP NPs)的自组装对脱细胞支架进行交联和功能化,所得的纳米复合脱细胞支架命名为Cu@TP-dBPs。Cu@TP-dBPs的交联度、生物力学性能、变性温度和抗酶降解能力与戊二醛交联的脱细胞牛心包(Glut-dBPs)相当。此外,Cu@TP-dBPs具有生物相容性,能够抑制细菌生长并促进毛细血管样网络的形成。皮下植入模型表明,Cu@TP-dBPs在第21天时无钙化现象,且允许宿主细胞浸润。心脏补片移植模型证实,Cu@TP-dBP补片在第60天时显示出功能性血管向内生长和细胞外基质重塑得到改善。这些结果表明,Cu@TP-dBPs不仅在生物力学和生物稳定性方面与Glut-dBPs相当,而且在抗钙化性能、重塑和整合能力方面比Glut-dBPs具有多个优势。特别是,它们是具有抗菌和促血管生成活性的功能性补片。这些材料特性和生物学功能使Cu@TP-dBPs成为一种有前景的用于心血管应用的功能性脱细胞补片。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3455/9157057/c8f053c88cfe/rbac030f9.jpg

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