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3D culture model of fibroblast-mediated collagen creep to identify abnormal cell behaviour

机译:成纤维细胞介导的胶原蛋白蠕变的3D培养模型以识别异常细胞行为

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Native collagen gels are important biomimetic cell support scaffolds, and a plastic compression process can now be used to rapidly remove fluid to any required collagen density, producing strong 3D tissue-like models. This study aimed to measure the mechanical creep properties of such scaffolds and to quantify any enhanced creep occurring in the presence of cells (cell-mediated creep). The test rig developed applies constant creep tension during culture and measures real-time extension due to cell action. This was used to model extracellular matrix creep, implicated in the transversalis fascia (TF) in inguinal hernia. Experiments showed that at an applied tension equivalent to 15 % break strength, cell-mediated creep over 24-h culture periods was identified at creep rates of 0.46 and 0.38 %/h for normal TF and human dermal fibroblasts, respectively. However, hernia TF fibroblasts produced negligible cell-mediated creep levels under the same conditions. Raising the cell culture temperature from 4 to was used to demonstrate live cell dependence of this creep. This represents the first in vitro demonstration of TF cell-mediated collagen creep and to our knowledge the first demonstration of a functional, hernia-related cell abnormality.
机译:天然胶原蛋白凝胶是重要的仿生细胞支持支架,现在可以使用塑料压缩过程将流体快速去除至任何所需的胶原蛋白密度,从而生成强大的3D组织样模型。这项研究旨在测量此类支架的机械蠕变特性,并量化在细胞存在下发生的任何增强的蠕变(细胞介导的蠕变)。开发的测试装置在培养过程中施加恒定的蠕变张力,并测量由于细胞作用引起的实时延伸。这用于模拟腹股沟疝的横筋膜(TF)涉及的细胞外基质蠕变。实验表明,在相当于15%断裂强度的外加张力下,正常TF和人真皮成纤维细胞的蠕变速率分别为0.46和0.38%/ h,在24小时的培养期内,细胞介导的蠕变被确定。但是,在相同条件下,疝气TF成纤维细胞产生的细胞介导的蠕变水平可忽略不计。将细胞培养温度从4升高到1可以证明这种蠕变对活细胞有依赖性。这代表了TF细胞介导的胶原蛋白蠕变的首次体外演示,并且据我们所知,是功能性疝相关细胞异常的首次演示。

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