首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Mechanical characterization of a customized decellularized scaffold for vascular tissue engineering.
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Mechanical characterization of a customized decellularized scaffold for vascular tissue engineering.

机译:用于血管组织工程的定制脱细胞支架的机械表征。

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Several challenges persist when attempting to utilize decellularized tissue as a scaffold for vascular tissue engineering. Namely: poor cell infiltration/migration, excessive culture times associated with repopulating the scaffolds, and the achievement of a quiescent medial layer. In an attempt to create an optimum vascular scaffold, we customized the properties of decellularized porcine carotid arteries by: (i) creating cavities within the medial layer to allow direct injection of cells, and (ii) controlling the amount of collagen digestion to increase the porosity. Histological examination of our customized scaffold revealed a highly porous tissue structure containing consistent medial cavities running longitudinally through the porous scaffold wall. Mechanical testing of the customized scaffold showed that our minimal localized disruption to the ECM does not have a detrimental effect on the bulk mechanical response of the tissue. The results demonstrate that an increased stiffness and reduced distensibility occurs after decellularization when compared to the native tissue, however post scaffold customization we can revert the scaffold tensile properties back to that of the native tissue. This most noteworthy result occurs in the elastin dominant phase of the tensile response of the scaffold, indicating that no disruption has occurred to the elastin network by our decellularization and customization techniques. Additionally, the bulk seeding potential of the customized scaffold was demonstrated by direct injection of human smooth muscle cells through the medial cavities. The optimum cell dispersion was observed in the highest porosity scaffold, with large cell numbers retained within the medial layer after 24 h static culture. In summary, this study presents a novel customized decellularized vascular scaffold that has the capability of bulk seeding the media, and in tandem to this method, the porosity of the scaffold has been increased without compromising the mechanical integrity.
机译:当试图将脱细胞的组织用作血管组织工程的支架时,仍然存在一些挑战。即:差的细胞浸润/迁移,与重新填充支架相关的过多培养时间以及静止的内侧层的实现。为了创建最佳的血管支架,我们通过以下方法定制了去细胞的猪颈动脉的特性:(i)在内侧层内形成腔以允许直接注射细胞,以及(ii)控制胶原酶的消化量以增加孔隙率。我们定制的支架的组织学检查显示高度多孔的组织结构,其中包含一致的内侧空腔,这些空腔沿纵向穿过多孔支架壁。对定制支架的机械测试表明,我们对ECM的最小局部破坏对组织的整体机械响应没有不利影响。结果表明,与天然组织相比,脱细胞后会增加刚度并减少可扩张性,但是在定制支架后,我们可以将支架的拉伸特性恢复为天然组织的拉伸特性。这个最值得注意的结果发生在支架拉伸反应的弹性蛋白主导阶段,表明通过我们的脱细胞和定制技术,弹性蛋白网络没有发生破坏。另外,通过直接通过内侧腔注射人平滑肌细胞证明了定制支架的大量接种潜力。在孔隙率最高的支架中观察到最佳的细胞分散,静态培养24 h后,大量细胞保留在中间层中。总而言之,这项研究提出了一种新颖的定制脱细胞血管支架,该支架具有大量接种培养基的能力,并且与这种方法相结合,在不损害机械完整性的情况下增加了支架的孔隙率。

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