Inexpensive bioprinting on a microscope using liquid crystal displays and visible light

Q1 Computer Science
Santiago O. Correa , Elizabeth G. Staten , George Nehmetallah , Christopher B. Raub
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引用次数: 0

Abstract

Patterned photocrosslinking has several uses in the biofabrication of microstructurally complex tissue constructs, through both photolithography of scaffolds and photoconjugation of cell adhesive and instructive moieties. Often the polymers used are modified by methacrylation while photoactivation requires ultraviolet light. In contrast, this study aimed to design, build and evaluate a low-cost platform to place photocrosslink patterns into unmodified collagen and gelatin hydrogels using visible light and ruthenium-mediated tyrosine crosslinking in a way compatible with cell culture and inverted microscopes commonly used in biological laboratories. A photoprinting module was constructed above an inverted microscope sample stage to be confocal with the imaging system. The module consists of a blue light emitting diode array, light pipe, diffuser, microelectronically controlled liquid crystal display as photomask, and focusing objective. Resulting Ruthenium-mediated photocrosslink patterns were visible in unmodified collagen and gelatin hydrogels due to altered local polymer network density and optical contrast. Green fluorescent protein was conjugated in patterns to both gelatin and collagen gels, dependent on light exposure, intensity, and polymer network density. Pattern resolution varied from 2.0 ± 0.5 μm to 102 ± 33 μm (mean ± standard deviation) dependent on the focusing objective magnification and the pattern used (display pixel versus diode element). Further, photocrosslink patterns placed in collagen hydrogels and incubated without rinsing in serum-containing media swelled over 20–48 h, breaking the collagen network and forming ∼50 μm diameter holes. Fibroblasts cultured in photopatterned collagen hydrogels aligned and moved on and around crosslinked regions, consistent with durotaxis and contact guidance. The platform for photocrosslinking described in this study will impact several research fields, notably bioprinting of microstructurally and mechanically complex tissue constructs.

利用液晶显示器和可见光在显微镜上进行廉价的生物打印
模式化光交联在微结构复杂组织结构的生物制造中有几种用途,包括支架的光刻和细胞粘附和指导部分的光偶联。通常使用的聚合物通过甲基丙烯酸修饰,而光活化需要紫外光。相比之下,本研究旨在设计、构建和评估一个低成本的平台,利用可见光和钌介导的酪氨酸交联,以一种与生物实验室常用的细胞培养和倒置显微镜兼容的方式,将光交联模式放置在未修饰的胶原蛋白和明胶水凝胶中。在倒置显微镜样品台上构建光打印模块,与成像系统共聚焦。该模块由蓝色发光二极管阵列、光管、漫射器、作为掩模的微电子控制液晶显示器和聚焦物镜组成。由于改变了局部聚合物网络密度和光学对比度,在未修饰的胶原蛋白和明胶水凝胶中可以看到钌介导的光交联模式。绿色荧光蛋白以模式结合到明胶和胶原蛋白凝胶,依赖于光暴露,强度和聚合物网络密度。图案分辨率从2.0±0.5 μm到102±33 μm(平均值±标准差)取决于聚焦物镜放大率和使用的图案(显示像素与二极管元件)。此外,将光交联模式置于胶原水凝胶中,在含血清的培养基中孵育而不冲洗,在20-48小时内膨胀,破坏胶原网络并形成直径约50 μm的孔。在光模式胶原水凝胶中培养的成纤维细胞在交联区域周围排列并移动,与硬度和接触引导一致。本研究中描述的光交联平台将影响几个研究领域,特别是微观结构和机械复杂组织结构的生物打印。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bioprinting
Bioprinting Computer Science-Computer Science Applications
CiteScore
11.50
自引率
0.00%
发文量
72
审稿时长
68 days
期刊介绍: Bioprinting is a broad-spectrum, multidisciplinary journal that covers all aspects of 3D fabrication technology involving biological tissues, organs and cells for medical and biotechnology applications. Topics covered include nanomaterials, biomaterials, scaffolds, 3D printing technology, imaging and CAD/CAM software and hardware, post-printing bioreactor maturation, cell and biological factor patterning, biofabrication, tissue engineering and other applications of 3D bioprinting technology. Bioprinting publishes research reports describing novel results with high clinical significance in all areas of 3D bioprinting research. Bioprinting issues contain a wide variety of review and analysis articles covering topics relevant to 3D bioprinting ranging from basic biological, material and technical advances to pre-clinical and clinical applications of 3D bioprinting.
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