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首页> 外文期刊>SIAM journal on applied dynamical systems >Three-Dimensional Tissue Models Constructed by Cells with Nanometer- or Micrometer-Sized Films on the Surfaces
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Three-Dimensional Tissue Models Constructed by Cells with Nanometer- or Micrometer-Sized Films on the Surfaces

机译:用纳米或微米型薄膜在表面上构造的三维组织模型

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Living tissues or organ modules consist of different types of highly organized cells and extracellular matrices (ECMs) in a hierarchical manner, such as the multilayered structure of blood vessels and the radial structures of hepatic lobules. Due to animal examinations being banned in the EU since 2013 and a shortage in the demand for tissue repair or organ transplantation, the creation of artificial 3D tissues possessing specific structures and functions similar to natural tissues are key challenges in tissue engineering. To date, we have developed a simple but unique bottom-up approach, a hierarchical cell manipulation technique, with a nanometer-sized ECM matrix consisting of fibronectin (FN) and gelatin (G) on cell surfaces. About 10 nm thick FN/G ECM films on cell surfaces were coated successfully by using layer-by-layer coating methodology. Various 3D constructs with higher cell density with different types of cells were successfully constructed. In addition to the construction of tissues with higher cell densities, other tissues, such as cartilage or skin tissues, with different cell densities are also important tissue models for tissue engineering and pharmaceutical industries. Thus, we recently developed other methodologies, the collagen coating method and multiple coating method, to fabricate micrometer-sized level ECM layers on cell surfaces. Various micro- or millimeter-sized 3D constructs with lower cell densities were constructed successfully. By using these two methods, cell distances in 2D or 3D views can be controlled by different thicknesses of ECM layers on cell surfaces at the single-cell level. Both FN/G and the collagen coating method resulted in homogenous 3D tissues with a controlled layer numbers, cell type, cell location, and properties; these will be promising to achieve different goals in tissue engineering.
机译:活组织或器官模块以分层方式由不同类型的高度有组织细胞和细胞外基质(ECMS)组成,例如血管的多层结构和肝小叶的径向结构。由于自2013年以来禁止在欧盟禁止动物检查和组织修复或器官移植的需求短缺,具有与自然组织类似的特定结构和功能的人造3D组织的创建是组织工程中的关键挑战。迄今为止,我们开发了一种简单但独特的自下而上的方法,分层细胞操纵技术,具有由细胞表面上的纤连蛋白(Fn)和明胶(G)组成的纳米大小的ECM矩阵。通过使用层涂覆方法成功地涂覆细胞表面上的约10nm厚的Fn / g ECM膜。成功构建了具有不同类型细胞的细胞密度较高的各种3D构建体。除了具有更高细胞密度的组织的构建之外,其他组织,如软骨或皮肤组织,具有不同细胞密度也是组织工程和制药行业的重要组织模型。因此,我们最近开发了其他方法,胶原涂料方法和多种涂覆方法,在细胞表面上制造微米大小的ECM层。成功地构建了具有较低细胞密度的各种微型或毫米大小的3D构建体。通过使用这两种方法,可以通过在单个单元水平的单元表面上的电池表面上的不同厚度控制2D或3D视图中的单元距离。 Fn / g和胶原涂层方法均导致均匀的3D组织,具有受控层数,细胞型,细胞位置和性质;这些将有希望在组织工程中实现不同的目标。

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