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基于滑环结构的双网络水凝胶,具有增强的拉伸性和韧性,可用于 3D 生物打印及其作为人工小直径血管的潜在应用。

Slide-Ring Structure-Based Double-Network Hydrogel with Enhanced Stretchability and Toughness for 3D-Bio-Printing and Its Potential Application as Artificial Small-Diameter Blood Vessels.

机构信息

School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Hefei 230026, China.

CAS Key Laboratory for Nano-Bio Interface, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou 215123, China.

出版信息

ACS Appl Bio Mater. 2021 Dec 20;4(12):8597-8606. doi: 10.1021/acsabm.1c01052. Epub 2021 Nov 28.

DOI:10.1021/acsabm.1c01052
PMID:35005952
Abstract

Artificial small-diameter blood vessels (SDBVs) are extremely limited in their thrombosis and still present significant clinical challenges worldwide. In recent years, 3D-bio-printing has offered a powerful technique to fabricate vessel channels in tissue engineering applications. Hydrogels are attractive bio-inks for SDBVs 3D-bio-printing, but they usually present weak mechanical properties. To overcome the weak mechanical properties of hydrogel bio-inks, a printable human umbilical vein endothelial cell (HUVEC)-laden polyrotaxane-alginate (PR-Alg) double-network (DN) hydrogel was fabricated. The PR-Alg DN hydrogel consists of a Ca cross-linked alginate network to form the first network rapidly, and a photo-cross-linked slide-ring network was designed as the second network. By combining special hydrogel structures of slide-ring (SR) and double network (DN), we significantly improved the mechanical properties of hydrogels. The PR-Alg DN hydrogel provides excellent stress (199 ± 20 kPa) and strain (1239 ± 58%), and the fracture energy reaches 668 ± 80 J/m. Additionally, due to the presence of biocompatible materials and the gentle 3D-bio-printing process, the 3D-bio-printed channels showed outstanding biocompatibility, particularly in HUVECs' survival and proliferation. We anticipate that this work will expand the application of hydrogels with improved mechanical properties in biomedicine, particularly for artificial SDBVs.

摘要

人工小直径血管(SDBV)极易形成血栓,这仍然是全世界面临的重大临床挑战。近年来,3D 生物打印技术为组织工程应用中制造血管通道提供了一种强大的技术手段。水凝胶是 SDBV 3D 生物打印的理想生物墨水,但它们通常表现出较弱的机械性能。为了克服水凝胶生物墨水的机械性能较弱的问题,制备了一种可打印的人脐静脉内皮细胞(HUVEC)负载聚轮烷-海藻酸钠(PR-Alg)双重网络(DN)水凝胶。PR-Alg DN 水凝胶由 Ca 交联的海藻酸钠网络快速形成第一网络,设计了光交联滑动环网络作为第二网络。通过结合滑动环(SR)和双网络(DN)的特殊水凝胶结构,我们显著提高了水凝胶的机械性能。PR-Alg DN 水凝胶提供了优异的应力(199±20 kPa)和应变(1239±58%),断裂能达到 668±80 J/m。此外,由于存在生物相容性材料和温和的 3D 生物打印工艺,3D 生物打印通道表现出优异的生物相容性,特别是在 HUVEC 的存活和增殖方面。我们预计这项工作将扩展具有改善的机械性能的水凝胶在生物医学中的应用,特别是在人工 SDBV 方面。

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