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首页> 外文期刊>Journal of biomedical materials research, Part A >Diffusion of Bioactive Molecules Through The Walls of The Medial Tissue-Engineered Hybrid ePTFE Grafts For Applications in Designs of Vascular Tissue Regeneration
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Diffusion of Bioactive Molecules Through The Walls of The Medial Tissue-Engineered Hybrid ePTFE Grafts For Applications in Designs of Vascular Tissue Regeneration

机译:生物活性分子通过组织工程化混合ePTFE接枝壁的扩散,用于血管组织再生设计

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Strategies of better vascular tissue engineering may require delivery of soluble bioactive signals in cell culture medium to the cells in tissue-regenerating constructs. We measured the diffusivity and permeability of model tissue-engineering bioactive molecules such as water and heparin through the walls of both a hybrid ePTFE graft and a porcine carotid artery, a model vascular tissue. While diffusivities of H~3-water and H~3-heparin were measured as 3.9 x 10~(-6) and 1.6 x 10~(-6) cm~2/s in the artery, respectively, under diffusional circulation of cell culture medium through the lumens of the carotid arteries, their corresponding permeabilities were 4.7 x 1CT5 and 2.0 x 10~(-5) cm/s. On the other hand, diffusivities of H~3-water and H3-heparin were also measured as 5.1 x 10~(-6) and 4.7 x10~(-6) cm~2/s, respectively, in the tissue-engineered hybrid ePTFE grafts; their corresponding permeabilities were 5.1 x 10~(-5) and 3.7 x 10~(-5) cm/s. The hybrid graft tissues were engineered by replacing the biodegradable, porous poly(lactide-co-glycolide) layers coated on the ePTFE surfaces with smooth muscle cell-derived tissues for 6 weeks. We analyzed the morphologies of the artery and the engineered hybrid ePTFE tissues with scanning electron microscopy and H&E stains. While the artery had its typical structure properties with layers of intima, media and adventitia, the tissue-engineered ePTFE hybrid graft had two layers of engineered tissues on the inner and outer surfaces of the ePTFE. There were no significant differences among the luminal tissue morphologies of the test samples from the effects of diffusion flow applications, with minor changes on their luminal surfaces. The results of water and heparin diffusion experiments indicated that these bioactive molecules were well transported from the cell culture medium to the tissue-engineering cells, enough to support tissue regeneration. We hope that these transport results may elucidate the transport behaviors of soluble nutrient molecules and biological signals through the vascular constructs under tissue engineering processes.
机译:更好的血管组织工程学策略可能需要将细胞培养基中的可溶性生物活性信号传递至组织再生构建物中的细胞。我们通过混合ePTFE移植物和猪颈动脉(模型血管组织)的壁面测量了模型组织工程生物活性分子(例如水和肝素)的扩散性和渗透性。在细胞扩散循环下,H〜3-水和H〜3-肝素在动脉中的扩散率分别为3.9 x 10〜(-6)和1.6 x 10〜(-6)cm〜2 / s。穿过颈动脉腔的培养基,其相应的渗透率为4.7 x 1CT5和2.0 x 10〜(-5)cm / s。另一方面,在组织工程杂交体中,H〜3-水和H3-肝素的扩散度也分别为5.1 x 10〜(-6)和4.7 x10〜(-6)cm〜2 / s。 ePTFE接枝;它们的相应渗透率分别为5.1 x 10〜(-5)和3.7 x 10〜(-5)cm / s。通过用平滑肌细胞衍生的组织替换ePTFE表面上涂覆的可生物降解的多孔聚(丙交酯-共-乙交酯)层,对混合移植组织进行6周的改造。我们用扫描电子显微镜和H&E染色分析了动脉和工程混合ePTFE组织的形态。尽管动脉具有其典型的结构特性,包括内膜,中膜和外膜层,但组织工程化的ePTFE混合移植物在ePTFE的内表面和外表面具有两层工程组织。从扩散流应用的影响来看,测试样品的腔组织形态之间没有显着差异,但其腔表面有微小变化。水和肝素扩散实验的结果表明,这些生物活性分子可以很好地从细胞培养基转运到组织工程细胞,足以支持组织再生。我们希望这些转运结果可以阐明可溶性营养分子和生物信号在组织工程过程中通过血管结构的转运行为。

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