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Tissue-in-a-Tube: three-dimensional in vitro tissue constructs with integrated multimodal environmental stimulation

机译:组织 - 内管:三维体外组织构建体具有集成多峰环境刺激

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摘要

Three-dimensional (3D) in vitro tissue models are superior to two-dimensional (2D) cell cultures in replicating natural physiological/pathological conditions by recreating the cellular and cell-matrix interactions more faithfully. Nevertheless, current 3D models lack either the rich multicellular environment or fail to provide appropriate biophysical stimuli both of which are required to properly recapitulate the dynamic in vivo microenvironment of tissues and organs. Here, we describe the rapid construction of multicellular, tubular tissue constructs termed Tissue-in-a-Tube using self-assembly process in tubular molds with the ability to incorporate a variety of biophysical stimuli such as electrical field, mechanical deformation, and shear force of the fluid flow. Unlike other approaches, this method is simple, requires only oxygen permeable silicone tubing that molds the tissue construct and thin stainless-steel pins inserted in it to anchor the construct and could be used to provide electrical and mechanical stimuli, simultaneously. The annular region between the tissue construct and the tubing is used for perfusion. Highly stable, macroscale, and robust constructs anchored to the pins form as a result of self-assembly of the extracellular matrix (ECM) and cells in the bioink that is filled into the tubing. We demonstrate patterning of grafts containing cell types in the constructs in axial and radial modes with clear interface and continuity between the layers. Different environmental factors affecting cell behavior such as compactness of the structure and size of the constructs can be controlled through parameters such as initial cell density, ECM content, tubing size, as well as the distance between anchor pins. Using connectors, network of tubing can be assembled to create complex macrostructured tissues (centimeters length) such as fibers that are bifurcated or columns with different axial thicknesses which can then be used as building blocks for biomimetic constructs or tissue regeneration. The method is versatile and compatible with various cell types including endothelial, epithelial, skeletal muscle cells, osteoblast cells, and neuronal cells. As an example, long mature skeletal muscle and neuronal fibers as well as bone constructs were fabricated with cellular alignment dictated by the applied electrical field. The versatility, speed, and low cost of this method is suited for widespread application in tissue engineering and regenerative medicine.
机译:三维(3D)体外组织模型是由更忠实地重现细胞和细胞 - 基质相互作用复制自然的生理/病理状况优于二维(2D)细胞培养物。然而,目前的3D模型既缺乏丰富的多环境或者不能提供这两者都需要适当概括在组织和器官的体内微动力生物物理适当的刺激。在这里,我们称之为使用组织功能于一对管自组装过程中管状模具与能力纳入多种生物物理刺激如电场,机械变形和剪切力的描述多,管状组织构建体的快速施工的流体流动。不像其他的方法,该方法是简单的,只需要透氧硅胶管使得插入在它的模具的组织构建和薄不锈钢销锚定构建体和可用于提供电和机械刺激,同时。该组织构建和所述管之间的环形区域被用于灌注。高度稳定的,宏观尺度,并且锚定在销健壮构建体形成如图的自组装,其填充到管中的细胞外基质(ECM)和细胞在生物油墨的结果。我们证明含有图案化的细胞类型中与该层之间的界面清晰和连续性的轴向和径向的模式构建移植物。如所述结构的紧凑性和大小的构建体的影响细胞行为的不同的环境因素可通过参数进行控制,如初始细胞密度,ECM的内容,管道大小,以及固定销之间的距离。使用连接器,管道网络可以被组装以创建复杂的宏观结构的组织(厘米长度),例如被分叉纤维或列与随后可被用作构建块仿生构建体或组织再生不同的轴向厚度。该方法是通用的,并用各种细胞类型包括内皮细胞,上皮细胞,骨骼肌细胞,成骨细胞和神经元细胞相容。作为示例,长成熟骨骼肌和神经元纤维以及骨结构与由决定蜂窝对准被制造施加的电场。多功能性,速度快,而且这种方法成本低,适用于在组织工程和再生医学的广泛应用。

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