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A bilayered hybrid microfibrous PLGA-Acellular matrix scaffold for hollow organ tissue engineering

机译:双层混合微纤维PLGA-Acellular基质支架,用于中空器官组织工程

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Various synthetic and natural biomaterials have been used for regeneration of tissues and hollow organs. However, clinical outcome of reconstructive procedures remained challenging due to the lack of appropriate scaffold materials, supporting the needs of various cell types and providing a barrier function required in hollow organs. To address these problems, we have developed a bilayered hybrid scaffold comprising unique traits of polymeric microfibers and naturally derived acellular matrices and tested its potential for hollow organ regeneration in a rat bladder model. Hybrid scaffolds were fabricated by electrospinning of PLGA microfibers directly onto the abluminal surface of a bladder acellular matrix. Stability of this bilayered construct was established using modified spinning technique. The resulting 3-dimensional framework provided good support for growth, attachment and proliferation of primary bladder smooth muscle cells. Histological analysis in vivo at 4 and 8 weeks post implantation, revealed regeneration of bladder tissue structures consisting of urothelium, smooth muscle and collagen rich layers infiltrated with host cells and micro vessels. Furthermore, hybrid scaffolds maintained normal bladder capacity, whereas BAM recipients showed a significant distension of the bladder. These results demonstrate that this adaptable hybrid scaffold supports bladder regeneration and holds potential for engineering of bladder and other hollow organs.
机译:各种合成和天然生物材料已经用于组织和中空器官的再生。然而,由于缺乏合适的支架材料,支持各种细胞类型的需求并提供中空器官所需的屏障功能,重建程序的临床结果仍然具有挑战性。为了解决这些问题,我们开发了一种双层混合支架,该支架包含聚合物微纤维和天然来源的脱细胞基质的独特特征,并在大鼠膀胱模型中测试了其在中空器官再生中的潜力。杂化支架是通过将PLGA超细纤维直接电纺到膀胱无细胞基质的腔表面上而制成的。使用改进的旋转技术确定了该双层构建体的稳定性。由此产生的三维框架为原代膀胱平滑肌细胞的生长,附着和增殖提供了良好的支持。植入后4周和8周的体内组织学分析显示,膀胱组织结构的再生包括尿路上皮,平滑肌和富含胶原蛋白的层,这些层被宿主细胞和微血管浸润。此外,杂种支架保持正常的膀胱容量,而BAM受体显示膀胱明显扩张。这些结果表明,这种适应性混合支架支持膀胱再生,并具有用于膀胱和其他中空器官工程的潜力。

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