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首页> 外文期刊>Biomaterials >Application of a polyelectrolyte complex coacervation method to improve seeding efficiency of bone marrow stromal cells in a 3D culture system.
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Application of a polyelectrolyte complex coacervation method to improve seeding efficiency of bone marrow stromal cells in a 3D culture system.

机译:聚电解质复合凝聚法在3D培养系统中提高骨髓基质细胞接种效率的应用。

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High seeding efficiency with homogenous distribution of limited cell sources such as bone marrow stromal cells (BMSCs) are of clinical relevance in scaffold-based tissue engineering. Therefore, considerable research efforts have been invested to ameliorate the seeding efficiency in 3D scaffolds. Preliminary data demonstrated that indeed BMSCs were viable and were able to proliferate in a model 3D scaffold, i.e. Cytomatrix scaffold. However, the eventual practical application of BMSCs in such 3D scaffolds is limited by the low seeding efficiency of the cells within the scaffold. Here, we demonstrated that the cell seeding efficiency of BMSCs in the Cytomatrix scaffold can be improved significantly (t-test, p<0.05) by means of macroencapsulating the scaffold via the complex coacervation of a methylated collagen and terpolymer. The thickness and density of the polyeletrolyte complex can be modulated by the contact time between the methylated collagen and terpolymer to balance between cell entrapment efficacy and mass transfer impedance imparted by the complex. Porcine BMSCs were macroencapsulated in Cytomatrix scaffolds using various polyelectrolyte contact time and cultured under both static and dynamic conditions. Throughout the range of contact time investigated, macroencapsulation did not affect the viability of the porcine BMSCs in dynamic culture. However, the viability of the cells under static cultures was compromised with longer polyelectrolyte contact time. Therefore, this proposed method of macroencapsulation enables customization to achieve enhanced seeding efficiency without mass transfer impedance for different culture configurations.
机译:在有限的细胞来源(例如骨髓基质细胞(BMSC))中均匀分布的高播种效率在基于支架的组织工程中具有临床意义。因此,已经投入了大量的研究工作来改善3D支架的播种效率。初步数据表明,骨髓间充质干细胞确实是可行的,并且能够在3D模型支架(即Cytomatrix支架)中增殖。但是,BMSC在此类3D支架中的最终实际应用受到支架中细胞播种效率低的限制。在这里,我们证明了通过将甲基化胶原蛋白和三元共聚物的复合凝聚来宏观包封支架,可以显着提高Cytomatrix支架中BMSCs的细胞播种效率(t检验,p <0.05)。可以通过甲基化胶原蛋白和三元共聚物之间的接触时间来调节聚电解质复合物的厚度和密度,以在细胞捕获效率和复合物赋予的传质阻抗之间取得平衡。使用各种聚电解质接触时间将猪BMSC宏囊化在Cytomatrix支架中,并在静态和动态条件下进行培养。在所研究的整个接触时间范围内,大囊封装并未影响动态培养中猪BMSC的生存能力。但是,细胞在静态培养下的生存能力受到更长的聚电解质接触时间的影响。因此,对于不同的培养配置,这种拟议的宏封装方法能够实现定制化,以提高播种效率,而无需传质阻抗。

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