各向异性胶原水凝胶的培养皿行声和驻声辅助制备

IF 4.7 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yingshan Du, Jiali Li, Chongpeng Qiu, Liang Shen, Teng Li, Bowen Cai, Luyu Bo and Zhenhua Tian
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引用次数: 0

摘要

含有定向胶原纤维的各向异性生物材料在伤口敷料、角膜移植、仿生微环境中癌细胞侵袭研究等诸多生物医学研究领域显示出巨大的潜力。为了制造这种各向异性的生物材料,以前的研究在制造过程中使用了电、微流体、磁和机械方法来排列胶原纤维。在这项研究中,我们提出了基于行声波和驻声波的方法,使得在培养皿中快速制造含有声学排列的胶原纤维的各向异性生物材料成为可能。为了开发这些方法,我们研究了行声波和驻声波对胶原蛋白自组装的影响以及制备的胶原基生物材料的微/纳米尺度结构。我们的研究结果表明,行声波诱导的流体流动可以运输胶原蛋白分子,从而影响胶原蛋白的自组装过程,而驻声波可以积累自组装的胶原纤维,增加其在周期性分布的声势谷中的浓度。利用我们的声学辅助方法,我们成功地制造了含有排列的胶原纤维的各向异性胶原水凝胶,为细胞生长和发育提供了各向异性的微环境。值得注意的是,我们证明了这些制备的各向异性胶原水凝胶在促进细胞沿着声学排列的胶原纤维延伸方面的功能。与以前的方法相比,我们基于声学的方法易于操作,不需要定制加载胶原蛋白的腔室,并且能够直接在商业培养皿中快速制造各向异性胶原蛋白水凝胶,从而使我们的方法易于集成到现有的实验室工作流程中,并与其他测试方案相结合。从长远来看,我们希望这项工作能够激发有用工具的开发,这些工具将使从事组织工程、再生医学、生物材料和生物打印的生物医学研究人员受益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

In-Petri-dish traveling and standing acoustic wave-assisted fabrication of anisotropic collagen hydrogels

In-Petri-dish traveling and standing acoustic wave-assisted fabrication of anisotropic collagen hydrogels

Anisotropic biomaterials containing oriented collagen fibers have shown great potential for various biomedical research areas, such as wound dressing, corneal grafting, and the study of cancer cell invasion in biomimetic microenvironments. To fabricate such anisotropic biomaterials, previous studies have used electric, microfluidic, magnetic, and mechanical methods to align collagen fibers during the fabrication process. In this study, we put forward traveling and standing acoustic wave-based approaches that enable the rapid in-Petri-dish fabrication of anisotropic biomaterials containing acoustically arranged collagen fibers. To develop these approaches, we investigated the effects of traveling and standing acoustic waves on collagen self-assembly and the micro/nanoscale architectures of the fabricated collagen-based biomaterials. Our results reveal that traveling acoustic wave-induced fluid streaming can transport collagen molecules, thereby influencing the collagen self-assembly process, while standing acoustic waves can accumulate self-assembled collagen fibers, increasing their concentrations in acoustic potential valleys periodically distributed. Using our acoustics-assisted approach, we successfully manufactured anisotropic collagen hydrogels containing aligned collagen fibers, which provide anisotropic microenvironments for cell growth and development. Notably, we demonstrated the functionality of these fabricated anisotropic collagen hydrogels in facilitating cell elongation along the acoustically aligned collagen fibers. Compared to previous methods, our acoustics-based approaches are easy to operate without requiring customized chambers for loading collagen and are capable of rapidly fabricating anisotropic collagen hydrogels directly in commercial Petri dishes, thus allowing our approaches to be readily integrated into existing laboratory workflows and combined with other test protocols. In the long run, we expect this work to inspire the development of useful tools that will benefit biomedical researchers working in tissue engineering, regenerative medicine, biomaterials, and bioprinting.

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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
发文量
665
审稿时长
5 weeks
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