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通过对 3D 打印支架中纤维几何形状的修饰来提高细胞接种效率。

Improving cell seeding efficiency through modification of fiber geometry in 3D printed scaffolds.

机构信息

Regenerative Medicine Technologies Lab, Ente Ospedaliero Cantonale (EOC), Via Tesserete 46, Lugano 6900, Switzerland.

Laboratory of Biological Structures Mechanics (LaBS), Department of Chemistry, Materials and Chemical Engineering 'Giulio Natta', Politecnico di Milano, Piazza Leonardo da Vinci 32, Milan 20133, Italy.

出版信息

Biofabrication. 2021 Apr 8;13(3). doi: 10.1088/1758-5090/abe5b4.

Abstract

Cell seeding on 3D scaffolds is a very delicate step in tissue engineering applications, influencing the outcome of the subsequent culture phase, and determining the results of the entire experiment. Thus, it is crucial to maximize its efficiency. To this purpose, a detailed study of the influence of the geometry of the scaffold fibers on dynamic seeding efficiency is presented. 3D printing technology was used to realize polylactic acid porous scaffolds, formed by fibers with a non-circular cross-sectional geometry, named multilobed to highlight the presence of niches and ridges. An oscillating perfusion bioreactor was used to perform bidirectional dynamic seeding of MG63 cells. The fiber shape influences the fluid dynamic parameters of the flow, affecting values of fluid velocity and wall shear stress. The path followed by cells through the scaffold fibers is also affected and results in a larger number of adhered cells in multilobed scaffolds compared to scaffolds with standard pseudo cylindrical fibers. Geometrical and fluid dynamic features can also have an influence on the morphology of adhered cells. The obtained results suggest that the reciprocal influence of geometrical and fluid dynamic features and their combined effect on cell trajectories should be considered to improve the dynamic seeding efficiency when designing scaffold architecture.

摘要

细胞接种到 3D 支架上是组织工程应用中非常精细的步骤,影响后续培养阶段的结果,并决定整个实验的结果。因此,最大限度地提高其效率至关重要。为此,详细研究了支架纤维的几何形状对动态接种效率的影响。使用 3D 打印技术实现了由具有非圆形横截面几何形状的纤维形成的多孔聚乳酸支架,这些纤维被命名为多叶形,以突出存在的凹口和脊。使用振荡灌注生物反应器对 MG63 细胞进行双向动态接种。纤维形状会影响流动的流体动力学参数,从而影响流体速度和壁面剪切应力的值。细胞通过支架纤维的路径也会受到影响,结果是多叶形支架中黏附的细胞数量多于具有标准伪圆柱纤维的支架。几何和流体动力学特征也会对黏附细胞的形态产生影响。所得结果表明,在设计支架结构时,应考虑几何和流体动力学特征的相互影响及其对细胞轨迹的综合影响,以提高动态接种效率。

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