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Design tools for patient specific and highly controlled melt electrowritten scaffolds

机译:针对患者的设计工具特定和高度控制的熔化电扫视脚手架

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Melt electrowriting (MEW) has grown in popularity in biofabrication research due to its ability to fabricate complex, high-precision networks of fibres. These fibres can mimic the morphology of a natural extracellular matrix, enabling tissue analogues for transplantation or personalised drug screening. To date, MEW has employed two different collector-plate modalities for the fabrication of constructs. Flat collector plates, typical of traditional 3D printing methods, allow for the layer-by-layer fabrication of 2D structures into complex 3D structures. Alternatively, rotating mandrels can be used for the creation of tubular scaffolds. However, unlike other additive manufacturing techniques that can immediately start and stop the extrusion of material during printing, MEW instead requires a continuous flow of polymer. Consequently, conventional g-code control software packages are unsuitable. To overcome this challenge, a suite of customised pattern generation software tools have been developed to enable the design of MEW scaffolds with highly-controlled geometry, including crosshatch, gradient porosity, tubular, and patient-specific configurations. The high level of design control using this approach enables the production of scaffolds with highly adaptable mechanical properties, as well as the potential to influence biological properties for cell attachment and proliferation.
机译:由于其制造了复杂,高精度的纤维网络,熔化电织(MEW)在生物破旧研究中普及。这些纤维可以模仿天然细胞外基质的形态,使组织类似物用于移植或个性化药物筛选。迄今为止,MEW采用了两种不同的收集板方式来制造构建体。扁平收集器板,典型的传统3D印刷方法,允许将2D结构的逐层制造成复杂的3D结构。或者,旋转心轴可用于产生管状支架。然而,与其他可以立即启动和停止印刷期间材料挤出的其他添加剂制造技术不同,因此MEWENG需要连续的聚合物流动。因此,传统的G代码控制软件包是不合适的。为了克服这一挑战,已经开发了一套定制的模式生成软件工具,以实现具有高度控制的几何形状的MEW脚手架,包括交叉腔,梯度孔隙度,管状和患者特异性配置。使用这种方法的高水平设计控制使得能够产生具有高适应性机械性能的支架,以及影响细胞附着和增殖的生物学性质的可能性。

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