三维打印具有组织再生功能性表面结构的坚韧水凝胶支架

IF 26.6 1区 材料科学 Q1 Engineering
Ke Yao, Gaoying Hong, Ximin Yuan, Weicheng Kong, Pengcheng Xia, Yuanrong Li, Yuewei Chen, Nian Liu, Jing He, Jue Shi, Zihe Hu, Yanyan Zhou, Zhijian Xie, Yong He
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引用次数: 0

摘要

水凝胶支架在组织工程领域有许多潜在应用。然而,在体内植入坚韧的水凝胶支架却鲜有报道,因为很难在生物相容性和高机械性能之间取得平衡。受中国拉面的启发,我们提出了一种通用的韧性水凝胶支架制造方法(打印-P、训练-T、交联-C、PTC & PCT),以填补这一空白。首先,三维打印制造出具有所需结构(P)的水凝胶支架。然后,通过盐析辅助循环机械训练(T),使支架具有超高的机械性能和功能性表面结构。最后,通过光交联处理固定训练结果(C)。这种坚韧的明胶水凝胶支架具有出色的拉伸强度,达到 6.66 兆帕(未处理时为 622 倍),并具有良好的生物相容性。此外,这种支架具有从纳米到微米再到毫米的功能性表面结构,可有效诱导细胞定向生长。有趣的是,通过改变盐的种类,这种策略可以生产出机械性能为 10 kPa-10 MPa 的仿生人体组织,而且许多水凝胶(如明胶和蚕丝)都可以通过 PTC 或 PCT 策略进行改良。动物实验表明,这种支架能在4周内有效促进肌纤维、血管和神经的新生,促使大体积肌肉缺损损伤的快速再生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

3D Printing of Tough Hydrogel Scaffolds with Functional Surface Structures for Tissue Regeneration

3D Printing of Tough Hydrogel Scaffolds with Functional Surface Structures for Tissue Regeneration

Hydrogel scaffolds have numerous potential applications in the tissue engineering field. However, tough hydrogel scaffolds implanted in vivo are seldom reported because it is difficult to balance biocompatibility and high mechanical properties. Inspired by Chinese ramen, we propose a universal fabricating method (printing-P, training-T, cross-linking-C, PTC & PCT) for tough hydrogel scaffolds to fill this gap. First, 3D printing fabricates a hydrogel scaffold with desired structures (P). Then, the scaffold could have extraordinarily high mechanical properties and functional surface structure by cycle mechanical training with salting-out assistance (T). Finally, the training results are fixed by photo-cross-linking processing (C). The tough gelatin hydrogel scaffolds exhibit excellent tensile strength of 6.66 MPa (622-fold untreated) and have excellent biocompatibility. Furthermore, this scaffold possesses functional surface structures from nanometer to micron to millimeter, which can efficiently induce directional cell growth. Interestingly, this strategy can produce bionic human tissue with mechanical properties of 10 kPa-10 MPa by changing the type of salt, and many hydrogels, such as gelatin and silk, could be improved with PTC or PCT strategies. Animal experiments show that this scaffold can effectively promote the new generation of muscle fibers, blood vessels, and nerves within 4 weeks, prompting the rapid regeneration of large-volume muscle loss injuries.

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来源期刊
Nano-Micro Letters
Nano-Micro Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
32.60
自引率
4.90%
发文量
981
审稿时长
1.1 months
期刊介绍: Nano-Micro Letters is a peer-reviewed, international, interdisciplinary, and open-access journal published under the SpringerOpen brand. Nano-Micro Letters focuses on the science, experiments, engineering, technologies, and applications of nano- or microscale structures and systems in various fields such as physics, chemistry, biology, material science, and pharmacy.It also explores the expanding interfaces between these fields. Nano-Micro Letters particularly emphasizes the bottom-up approach in the length scale from nano to micro. This approach is crucial for achieving industrial applications in nanotechnology, as it involves the assembly, modification, and control of nanostructures on a microscale.
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