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首页> 外文期刊>Biofabrication >Contact guidance for cardiac tissue engineering using 3D bioprinted gelatin patterned hydrogel
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Contact guidance for cardiac tissue engineering using 3D bioprinted gelatin patterned hydrogel

机译:心脏组织工程的联系指导使用3D Bioplint Gelatin图案水凝胶

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摘要

Here, we have developed a 3D bioprinted microchanneled gelatin hydrogel that promotes human mesenchymal stem cell (hMSC) myocardial commitment and supports native cardiomyocytes (CMs) contractile functionality. Firstly, we studied the effect of bioprinted microchanneled hydrogel on the alignment, elongation, and differentiation of hMSC. Notably, the cells displayed well defined F-actin anisotropy and elongated morphology on the microchanneled hydrogel, hence showing the effects of topographical control over cell behavior. Furthermore, the aligned stem cells showed myocardial lineage commitment, as detected using mature cardiac markers. The fluorescence-activated cell sorting analysis also confirmed a significant increase in the commitment towards myocardial tissue lineage. Moreover, seeded CMs were found to be more aligned and demonstrated synchronized beating on microchanneled hydrogel as compared to the unpatterned hydrogel. Overall, our study proved that microchanneled hydrogel scaffold produced by 3D bioprinting induces myocardial differentiation of stem cells as well as supports CMs growth and contractility. Applications of this approach may be beneficial for generating in vitro cardiac model systems to physiological and cardiotoxicity studies as well as in vivo generating custom designed cell impregnated constructs for tissue engineering and regenerative medicine applications.
机译:在这里,我们开发了一种3D生物印刷型微沟细凝胶水凝胶,其促进人间充质干细胞(HMSC)心肌承诺,并支持天然心肌细胞(CMS)收缩功能。首先,我们研究了生物印刷微内通水凝胶对HMSC的对准,伸长和分化的影响。值得注意的是,细胞在微通道水凝胶上显示出明确定义的F-actin各向异性和细长形态,因此显示了地形控制对细胞行为的影响。此外,如使用成熟心脏标志物检测到,对齐的干细胞显示心肌谱系的承诺。荧光激活的细胞分选分析还证实了对心肌组织谱系的承诺的显着增加。此外,发现接种的CMS在微内通孔水凝胶上更加对准并在微通道水凝胶上表现出同步的振动。总体而言,我们的研究证明,通过3D Bioplinting产生的微孔水凝胶支架诱导干细胞的心肌分化,并支持CMS生长和收缩性。这种方法的应用可能是有益于产生体外心脏模型系统,以生理和心脏毒性研究以及用于组织工程和再生医学应用的体内生成定制设计的细胞浸渍构建体。

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