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用于角膜组织工程应用的具有可定制刚度和降解性的顺序交联生物活性水凝胶纳米图案化基底。

Sequentially-crosslinked bioactive hydrogels as nano-patterned substrates with customizable stiffness and degradation for corneal tissue engineering applications.

机构信息

Department of Biomedical Engineering, National University of Singapore, Singapore; Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A*STAR), Singapore.

Tissue Engineering and Stem Cell Group, Singapore Eye Research Institute, Singapore; Duke-NUS Graduate Medical School, Singapore.

出版信息

Biomaterials. 2017 Mar;120:139-154. doi: 10.1016/j.biomaterials.2016.12.026. Epub 2016 Dec 23.

Abstract

Naturally-bioactive hydrogels like gelatin provide favorable properties for tissue-engineering but lack sufficient mechanical strength for use as implantable tissue engineering substrates. Complex fabrication or multi-component additives can improve material strength, but often compromises other properties. Studies have shown gelatin methacrylate (GelMA) as a bioactive hydrogel with diverse tissue growth applications. We hypothesize that, with suitable material modifications, GelMA could be employed for growth and implantation of tissue-engineered human corneal endothelial cell (HCEC) monolayer. Tissue-engineered HCEC monolayer could potentially be used to treat corneal blindness due to corneal endothelium dysfunction. Here, we exploited a sequential hybrid (physical followed by UV) crosslinking to create an improved material, named as GelMA+, with over 8-fold increase in mechanical strength as compared to regular GelMA. The presence of physical associations increased the subsequent UV-crosslinking efficiency resulting in robust materials able to withstand standard endothelium insertion surgical device loading. Favorable biodegradation kinetics were also measured in vitro and in vivo. We achieved hydrogels patterning with nano-scale resolution by use of oxygen impermeable stamps that overcome the limitations of PDMS based molding processes. Primary HCEC monolayers grown on GelMA+ carrier patterned with pillars of optimal dimension demonstrated improved zona-occludin-1 expression, higher cell density and cell size homogeneity, which are indications of functionally-superior transplantable monolayers. The hybrid crosslinking and fabrication approach offers potential utility for development of implantable tissue-engineered cell-carrier constructs with enhanced bio-functional properties.

摘要

像明胶这样的天然生物活性水凝胶为组织工程提供了有利的特性,但缺乏足够的机械强度,无法用作可植入的组织工程支架。复杂的制造工艺或多组分添加剂可以提高材料强度,但往往会损害其他性能。研究表明,甲基丙烯酰化明胶(GelMA)是一种具有多种组织生长应用的生物活性水凝胶。我们假设,通过适当的材料改性,GelMA 可以用于组织工程人角膜内皮细胞(HCEC)单层的生长和植入。组织工程 HCEC 单层可能有潜力用于治疗由于角膜内皮功能障碍引起的角膜盲。在这里,我们利用顺序杂化(物理交联随后进行 UV 交联)来创建一种改进的材料,称为 GelMA+,与常规 GelMA 相比,其机械强度提高了 8 倍以上。物理交联的存在提高了随后的 UV 交联效率,从而产生了能够承受标准内皮插入手术设备负载的坚固材料。还在体外和体内测量了有利的降解动力学。我们通过使用不透氧的模具实现了具有纳米级分辨率的水凝胶图案化,克服了基于 PDMS 的成型工艺的限制。在 GelMA+载体上生长的原代 HCEC 单层进行了图案化,其支柱具有最佳尺寸,其表现出 zona-occludin-1 表达增强、细胞密度更高和细胞大小均匀性提高,这表明具有更好移植性能的功能性单层。杂化交联和制造方法为开发具有增强的生物功能特性的可植入组织工程细胞载体构建体提供了潜力。

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