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Designer 'blueprint' for vascular trees: morphology evolution of vascular tissue constructs

机译:血管树的设计者“蓝图”:血管组织构造的形态演变

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Organ printing is a variant of the biomedical application of rapid prototyping technology or layer-by-layer additive biofabrication of 3D tissue and organ constructs using selfassembled tissue spheroids as building blocks. Bioengineering of perfusable intraorgan branched vascular trees incorporated into 3D tissue constructs is essential for the survival of bioprinted thick 3D tissues and organs. In order to design the optimal 'blueprint' for digital bioprinting of intraorgan branched vascular trees, the coefficients of tissue retraction associated with post-printing vascular tissue spheroid fusion and remodelling must be determined and incorporated into the original CAD. Using living tissue spheroids assembled into ring-like and tube-like vascular tissue constructs, the coefficient of tissue retraction has been experimentally evaluated. It has been shown that the internal diameter of ring-like and the height of tubular-like tissue constructs are significantly reduced during tissue spheroid fusion. During the tissue fusion process, the individual tissue spheroids also change their shape from ball-like to a conus-like form. A simple formula for the calculation of the necessary number of tissue spheroids for biofabrication of ringlike structures of desirable diameter has been deduced. These data provide sufficient information to design optimal CAD for bioprinted branched vascular trees of desirable final geometry and size.
机译:器官打印是快速原型技术或使用自组装组织球体作为构建块的3D组织和器官构造的逐层附加生物制造的生物医学应用的一种变体。掺入3D组织构建体的可灌输器官内分支血管树的生物工程对于生物打印的厚3D组织和器官的生存至关重要。为了设计对器官内分支的血管树进行数字生物打印的最佳“蓝图”,必须确定与印刷后的血管组织球体融合和重塑相关的组织收缩系数,并将其纳入原始CAD中。使用组装成环状和管状的血管组织构造的活组织球体,已经通过实验评估了组织收缩的系数。已经显示,在组织球体融合过程中,环形的内径和管状的组织构造的高度显着减小。在组织融合过程中,各个组织球体的形状也从球形改变为圆锥形。推导了一个简单的公式,用于计算用于生物制造所需直径的环状结构所需的组织球体的数量。这些数据为设计具有理想最终几何形状和尺寸的生物打印分支血管树提供了最佳的CAD信息。

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