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首页> 外文期刊>RSC Advances >Multidimensional assembly using layer-by-layer deposition for synchronized cardiac macro tissues
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Multidimensional assembly using layer-by-layer deposition for synchronized cardiac macro tissues

机译:用于同步心脏宏组织的二层沉积的多维组件

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摘要

The fabrication of biomimetic structures for tissues and organs is emerging in the fields of biomedical engineering and precision medicine. While current progress in biomedical research provides a number of biofabrication methods, the construction of multi-dimensional cardiac tissue is highly challenging due to difficulties in the maturation and synchronization of cardiomyocytes (CMs) in conjunction with other types of cells, such as myofibroblasts and endothelial cells. Here, we show a simple fabrication methodology to construct multi-dimensional cardiac macro tissue (mCMT) by layer-by-layer (LBL) deposition of cells on micro patterned PDMS. mCMTs formed by LBL deposition of pluripotent stem cell (PSC)-derived cardiomyocytes and cardiac fibroblasts formed 3D patterned structures with synchronized beating characteristics. We also demonstrate that cardiac maturation factors such as the gene expression of MLC2v and cTNI and formation of sarcomeres in mCMTs were significantly enhanced by LBL deposition and growth factors during the maturation process. Fabrication of matured mCMTs with synchronized beating enables providing an efficient platform for evaluating the efficacy and toxicity of drug candidates. These results have important implications because mCMTs are applicable to diverse in vitro studies and drug screening methods that require tissue-like structures and functions in a physiological environment.
机译:生物医学工程和精密药物领域的仿生组织和器官的仿生结构的制造。虽然生物医学研究中的当前进展提供了许多生物制作方法,但由于心肌细胞(CMS)与其他类型的细胞(例如肌纤维素细胞和内皮等)的成熟和同步的困难,多维心脏组织的构建是高度挑战的困难细胞。在这里,我们展示了一种简单的制造方法,以通过层上逐层(LBL)沉积来构建多维心脏宏组织(MCMT)对微图案化的PDMS上的细胞。通过LBL沉积多能干细胞(PSC)的心肌细胞和心肌成纤维细胞形成的MCMT形成3D图案结构具有同步的搏动特性。我们还证明了在成熟过程中LBL沉积和生长因子显着提高了MLC2V和CTNI的基因表达和MLC2V和CTNI的基因表达以及在MCMT中形成的心脏成熟因子和MCMT的形成。具有同步跳动的成熟MCMT的制造能够提供一种有效的平台,用于评估毒品候选者的疗效和毒性。这些结果具有重要意义,因为MCMTS适用于各种体外研究和药物筛选方法,这些方法需要在生理环境中进行组织状结构和功能。

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