Rapid and Inexpensive Image-Guided Grayscale Biomaterial Customization via LCD Printing

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Ryan M. Francis, Irina Kopyeva, Nicholas Lai, Shiyu Yang, Jeremy R. Filteau, Xinru Wang, David Baker, Cole A. DeForest
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Abstract

Hydrogels are an important class of biomaterials that permit cells to be cultured and studied within engineered microenvironments of user-defined physical and chemical properties. Though conventional 3D extrusion and stereolithographic (SLA) printing readily enable homogeneous and multimaterial hydrogels to be formed with specific macroscopic geometries, strategies that further afford spatiotemporal customization of the underlying gel physicochemistry in a non-discrete manner would be profoundly useful toward recapitulating the complexity of native tissue in vitro. Here, we demonstrate that grayscale control over local biomaterial biochemistry and mechanics can be rapidly achieved across large constructs using an inexpensive (~$300) and commercially available liquid crystal display (LCD)-based printer. Template grayscale images are first processed into a “height-extruded” 3D object, which is then printed on a standard LCD printer with an immobile build head. As the local height of the 3D object corresponds to the final light dosage delivered at the corresponding xy-coordinate, this method provides a route toward spatially specifying the extent of various dosage-dependent and biomaterial, forming/modifying photochemistries. Demonstrating the utility of this approach, we photopattern the grayscale polymerization of poly(ethylene glycol) (PEG) diacrylate gels, biochemical functionalization of agarose- and PEG-based gels via oxime ligation, and the controlled 2D adhesion and 3D growth of cells in response to a de novo-designed α5β1-modulating protein via thiol-norbornene click chemistry. Owing to the method's low cost, simple implementation, and high compatibility with many biomaterial photochemistries, we expect this strategy will prove useful toward fundamental biological studies and functional tissue engineering alike.

Abstract Image

快速和廉价的图像引导灰度生物材料定制通过LCD打印
水凝胶是一类重要的生物材料,它允许细胞在用户定义的物理和化学性质的工程微环境中培养和研究。虽然传统的3D挤出和立体光刻(SLA)打印可以很容易地形成具有特定宏观几何形状的均质和多材料水凝胶,但以非离散方式进一步提供潜在凝胶物理化学的时空定制的策略将对体外再现天然组织的复杂性非常有用。在这里,我们证明了对局部生物材料生物化学和力学的灰度控制可以通过使用廉价(约300美元)和市售的液晶显示器(LCD)打印机快速实现大型结构。模板灰度图像首先被处理成一个“高度挤压”的3D对象,然后在一个标准的LCD打印机上打印一个固定的构建头。由于三维物体的局部高度对应于相应xy坐标处传递的最终光剂量,因此该方法为在空间上指定各种剂量依赖性和生物材料的程度,形成/修改光化学提供了途径。为了证明这种方法的实用性,我们对聚乙二醇(PEG)二丙烯酸酯凝胶的灰度聚合、琼脂糖和聚乙二醇凝胶通过肟连接的生化功能化以及通过巯基-降冰片烯点击化学对新设计的α5β1调节蛋白的响应进行了二维粘附和三维生长的控制。由于该方法成本低,实现简单,并且与许多生物材料光化学具有很高的兼容性,我们期望该策略将被证明对基础生物学研究和功能组织工程都很有用。
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来源期刊
Journal of biomedical materials research. Part A
Journal of biomedical materials research. Part A 工程技术-材料科学:生物材料
CiteScore
10.40
自引率
2.00%
发文量
135
审稿时长
3.6 months
期刊介绍: The Journal of Biomedical Materials Research Part A is an international, interdisciplinary, English-language publication of original contributions concerning studies of the preparation, performance, and evaluation of biomaterials; the chemical, physical, toxicological, and mechanical behavior of materials in physiological environments; and the response of blood and tissues to biomaterials. The Journal publishes peer-reviewed articles on all relevant biomaterial topics including the science and technology of alloys,polymers, ceramics, and reprocessed animal and human tissues in surgery,dentistry, artificial organs, and other medical devices. The Journal also publishes articles in interdisciplinary areas such as tissue engineering and controlled release technology where biomaterials play a significant role in the performance of the medical device. The Journal of Biomedical Materials Research is the official journal of the Society for Biomaterials (USA), the Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Articles are welcomed from all scientists. Membership in the Society for Biomaterials is not a prerequisite for submission.
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