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Long-Term Spatially Defined Coculture Within Three-Dimensional Photopatterned Hydrogels

机译:三维光图案化水凝胶中的长期空间定义共培养

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摘要

Spatially controlled coculture in three-dimensional environments that appropriately mimic in vivo tissue architecture is a highly desirable goal in basic scientific studies of stem cell physiological processes (e.g., proliferation, matrix production, and tissue repair) and in enhancing the development of novel stem-cell-based clinical therapies for a variety of ailments. This study describes a novel fabrication system for photopatterning and assembling cell-laden oligo(polyethylene glycol)-fumarate:poly(ethylene glycol)-diacrylate hydrogels with high spatial fidelity and thickness using a controlled, inert nitrogen environment without the need for expensive precision equipment. Cross-linking was performed using Irgacure-2959 photoinitiator and 365-nm light (∼7 mW/cm2) to form gels ranging from 0.9 to 3 mm in width. Employing a nitrogen environment increased gel thickness up to 240%, generating gels >1 mm thick before swelling. This technique was further applied for spatially controlled patterning of primary tendon/ligament fibroblasts and marrow stromal cells in a single 1.5-mm-thick laminated hydrogel construct. Cells encapsulated using this technique maintained viability over 14 days in culture. This system potentially enables better understanding of paracrine effects on a range of stem cell functions and therefore may be useful as an in vitro model system for a wide array of regenerative medicine applications.
机译:在干细胞生理过程(例如,增殖,基质产生和组织修复)的基础科学研究中,以及在促进新型干细胞发育的基础科学研究中,在三维环境中适当模拟体内组织结构的空间受控共培养是一个非常理想的目标。基于细胞的多种疾病的临床疗法。这项研究描述了一种新颖的制造系统,该系统可使用受控的惰性氮气环境,对具有高空间保真度和厚度的充满细胞的低聚(聚乙二醇)-富马酸酯:聚(乙二醇)-二丙烯酸酯水凝胶进行光致图案化和组装,而无需昂贵的精密设备。使用Irgacure-2959光引发剂和365 nm光(约7 mW / cm2)进行交联,以形成宽度范围为0.9至3毫米的凝胶。在氮气环境下,凝胶厚度增加了240%,在溶胀之前产生了厚度大于1mm的凝胶。将该技术进一步应用于在单个1.5毫米厚的层压水凝胶构建体中主肌腱/韧带成纤维细胞和骨髓基质细胞的空间控制图案化。使用该技术封装的细胞在培养中可以保持生存超过14天。该系统潜在地使人们能够更好地理解旁分泌对一系列干细胞功能的影响,因此可以用作体外模型系统,用于各种再生医学应用。

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