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Surface acoustic waves induced micropatterning of cells in gelatin methacryloyl (GelMA) hydrogels

机译:表面声波诱导明胶甲基丙烯酰基(GELMA)水凝胶中细胞的微图案

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摘要

Acoustic force patterning is an emerging technology that provides a platform to control the spatial location of cells in a rapid, accurate, yet contactless manner. However, very few studies have been reported on the usage of acoustic force patterningfor the rapid arrangement of biological objects, such as cells, in a three-dimensional (3D) environment. In this study, we report on a bio-acoustic force patterning technique, which uses surface acoustic waves (SAWs) for the rapid arrangement of cells within an extracellular matrix-based hydrogel such as gelatin methacryloyl (GelMA). A proof-of-principle was achieved through both simulations and experiments based on the in-house fabricated piezoelectric SAW transducers, which enabled us to explore the effects of various parameters on the performance of the built construct. The SAWs were applied in a fashion that generated standing SAWs (SSAWs) on the substrate, the energy of which subsequently was transferred into the gel, creating a rapid, and contactless alignment of the cells (< 10 s, based on the experimental conditions). Following ultraviolet radiation induced photo-crosslinking of the cell encapsulated GelMA pre-polymer solution, the patterned cardiac cells readily spread after alignment in theGelMA hydrogel and demonstrated beating activity in 5-7 days. The described acoustic force assembly method can be utilized not only to control the spatial distribution of the cells inside a 3D construct, but can also preserve the viability and functionality of the patterned cells (e.g. beating rates of cardiac cells). This platform can be potentially employed in a diverse range of applications, whether it is for tissue engineering, in vitro cell studies, or creating 3D biomimetic tissue structures.
机译:声压图案化是一种新兴技术,提供了一种以快速,准确但无接触的方式控制细胞的空间位置的平台。然而,已经报道了很少有研究关于在三维(3D)环境中的生物物体(例如细胞)的快速排列的声学力图案化的使用。在这项研究中,我们报告了一种生物声学力图案化技术,其使用表面声波(锯)用于快速排列细胞内基基水凝胶中的细胞,例如明胶甲基丙烯酰基(GELMA)。通过基于内部制造的压电锯传感器的模拟和实验来实现原则上,使我们能够探索各种参数对内置结构的性能的影响。以时尚施加锯,将驻扎在基板上的驻始锯(SSAW),随后将其转移到凝胶中的能量,产生快速,并且基于实验条件,<10s的无接触的对准) 。在紫外线辐射诱导的细胞包封的牙龈预聚物溶液中,在凝胶Mather凝胶的比对中易于扩散的图案化心脏细胞,并在5-7天内显示出搏动活性。所描述的声学力组件方法不仅可以控制3D构建体内的电池的空间分布,而且还可以保留图案化电池的可行性和功能(例如,心脏细胞的跳动率)。该平台可以在各种应用中使用,无论是用于组织工程,体外细胞研究,还是产生3D仿生组织结构。

著录项

  • 来源
    《Biofabrication》 |2017年第1期|共11页
  • 作者单位

    Biomaterials Innovation Research Center Division of Biomedical Engineering Brigham Women's Hospital Harvard Medical School Cambridge MA 02139 United States;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Brigham Women's Hospital Harvard Medical School Cambridge MA 02139 United States;

    Biomaterials Innovation Research Center Division of Biomedical Engineering Brigham Women's Hospital Harvard Medical School Cambridge MA 02139 United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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