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Prolonged Culture of Aligned Skeletal Myotubes on Micromolded Gelatin Hydrogels

机译:在微模塑的明胶水凝胶上长期培养对齐的骨骼肌管

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摘要

In vitro models of skeletal muscle are critically needed to elucidate disease mechanisms, identify therapeutic targets, and test drugs pre-clinically. However, culturing skeletal muscle has been challenging due to myotube delamination from synthetic culture substrates approximately one week after initiating differentiation from myoblasts. In this study, we successfully maintained aligned skeletal myotubes differentiated from C2C12 mouse skeletal myoblasts for three weeks by utilizing micromolded (μmolded) gelatin hydrogels as culture substrates, which we thoroughly characterized using atomic force microscopy (AFM). Compared to polydimethylsiloxane (PDMS) microcontact printed (μprinted) with fibronectin (FN), cell adhesion on gelatin hydrogel constructs was significantly higher one week and three weeks after initiating differentiation. Delamination from FN-μprinted PDMS precluded robust detection of myotubes. Compared to a softer blend of PDMS μprinted with FN, myogenic index, myotube width, and myotube length on μmolded gelatin hydrogels was similar one week after initiating differentiation. However, three weeks after initiating differentiation, these parameters were significantly higher on μmolded gelatin hydrogels compared to FN-μprinted soft PDMS constructs. Similar results were observed on isotropic versions of each substrate, suggesting that these findings are independent of substrate patterning. Our platform enables novel studies into skeletal muscle development and disease and chronic drug testing in vitro.
机译:迫切需要骨骼肌的体外模型来阐明疾病机制,确定治疗靶标并在临床前测试药物。然而,由于从成肌细胞开始分化后约一周,由于合成管中肌管从合成培养基质上脱层,因此培养骨骼肌一直具有挑战性。在这项研究中,我们成功地利用微成型(μmolded)明胶水凝胶作为培养基质,将与C2C12小鼠骨骼成肌细胞分化的对齐的骨骼肌管维持了三周,我们使用原子力显微镜(AFM)对其进行了全面表征。与用纤连蛋白(FN)微接触印刷(μprinted)的聚二甲基硅氧烷(PDMS)相比,明胶水凝胶构建体在开始分化后1周和3周的细胞粘附力明显更高。 FN-μprintedPDMS的分层妨碍了对肌管的可靠检测。与用FN打印的PDMS的较软混合物相比,在开始分化的一周后,在μmoled明胶水凝胶上的肌原性指数,肌管宽度和肌管长度相似。然而,在开始分化的三周后,与FN-μ打印的软PDMS构建体相比,μ模塑明胶水凝胶的这些参数明显更高。在各基板的各向同性版本上观察到相似的结果,表明这些发现与基板图案无关。我们的平台可对骨骼肌的发育和疾病进行新颖的研究,并在体外进行慢性药物测试。

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