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新型硫醇-降冰片烯功能化明胶水凝胶用于间充质干细胞的生物打印评价。

Evaluation of a Novel Thiol-Norbornene-Functionalized Gelatin Hydrogel for Bioprinting of Mesenchymal Stem Cells.

机构信息

Department of Plastic and Hand Surgery, Faculty of Medicine, Medical Center, University of Freiburg, Freiburg, Hugstetter Strasse 55, 79106 Freiburg, Germany.

Laboratory for MEMS Applications, IMTEK-Department of Microsystems Engineering, University of Freiburg, Georges-Koehler-Allee 103, 79110 Freiburg, Germany.

出版信息

Int J Mol Sci. 2022 Jul 19;23(14):7939. doi: 10.3390/ijms23147939.

Abstract

Three-dimensional bioprinting can be considered as an advancement of the classical tissue engineering concept. For bioprinting, cells have to be dispersed in hydrogels. Recently, a novel semi-synthetic thiolene hydrogel system based on norbornene-functionalized gelatin (GelNB) and thiolated gelatin (GelS) was described that resulted in the photoclick hydrogel GelNB/GelS. In this study, we evaluated the printability and biocompatibility of this hydrogel system towards adipose-tissue-derived mesenchymal stem cells (ASCs). GelNB/GelS was synthesized with three different crosslinking densities (low, medium and high), resulting in different mechanical properties with moduli of elasticity between 206 Pa and 1383 Pa. These hydrogels were tested for their biocompatibility towards ASCs in terms of their viability, proliferation and differentiation. The extrusion-based bioprinting of ASCs in GelNB/GelS-high was performed to manufacture three-dimensional cubic constructs. All three hydrogels supported the viability, proliferation and chondrogenic differentiation of ASCs to a similar extent. The adipogenic differentiation of ASCs was better supported by the softer hydrogel (GelNB/GelS-low), whereas the osteogenic differentiation was more pronounced in the harder hydrogel (GelNB/GelS-high), indicating that the differentiation fate of ASCs can be influenced via the adaption of the mechanical properties of the GelNB/GelS system. After the ex vivo chondrogenic differentiation and subcutaneous implantation of the bioprinted construct into immunocompromised mice, the production of negatively charged sulfated proteoglycans could be observed with only minimal inflammatory signs in the implanted material. Our results indicate that the GelNB/GelS hydrogels are very well suited for the bioprinting of ASCs and may represent attractive hydrogels for subsequent in vivo tissue engineering applications.

摘要

三维生物打印可以被视为经典组织工程概念的进步。对于生物打印,细胞必须分散在水凝胶中。最近,描述了一种基于降冰片烯功能化明胶(GelNB)和硫醇化明胶(GelS)的新型半合成硫烯水凝胶系统,导致光点击水凝胶 GelNB/GelS。在这项研究中,我们评估了该水凝胶系统对脂肪组织来源间充质干细胞(ASCs)的可打印性和生物相容性。GelNB/GelS 是用三种不同的交联密度(低、中、高)合成的,导致弹性模量在 206 Pa 和 1383 Pa 之间的不同机械性能。这些水凝胶在细胞活力、增殖和分化方面被测试了对 ASCs 的生物相容性。通过基于挤出的生物打印将 ASCs 打印到 GelNB/GelS-高中来制造三维立方结构。所有三种水凝胶都在相似程度上支持 ASCs 的活力、增殖和软骨分化。更柔软的水凝胶(GelNB/GelS-低)更有利于 ASCs 的脂肪分化,而更硬的水凝胶(GelNB/GelS-高)则更有利于 ASCs 的成骨分化,这表明可以通过适应 GelNB/GelS 系统的机械性能来影响 ASCs 的分化命运。在体外软骨分化和免疫缺陷小鼠皮下植入生物打印结构后,可以观察到负电荷硫酸软骨素蛋白聚糖的产生,植入材料中只有最小的炎症迹象。我们的结果表明,GelNB/GelS 水凝胶非常适合 ASCs 的生物打印,并且可能是用于后续体内组织工程应用的有吸引力的水凝胶。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aab3/9321464/ab64bed5c7ba/ijms-23-07939-g001.jpg

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