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Evaluation of Hybrid Chitosan-Cellulose Biodegradable Scaffolds for Tissue EngineeringApplications

机译:壳聚糖-纤维素复合可降解支架在组织工程中的应用评价

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Natural polymers continue to provide effective biocompatible scaffolds for use in tissue engineering applications. In some respects, their chemical structure closely mimics that of the extracelluar matrix of biological tissues. Eventhough a wide variety of biopolymers can be used for these applications, no single polymer has been yet found to fulfill all requirements needed in a scaffold material. In an attempt to combine the advantages of two natural polymers, hybrid scaffolds of chitosan/cellulose constructs had been evaluated as candidates for tissue engineering applications. Four groups of hybrid chitosan/cellulose scaffolds were prepared with different cellulose concentrations. The surface and bulk porosities scaffolds have been examined using scanning electron microscope (SEM). The SEM photographs revealed that all hybrid scaffold groups exhibited an interconnected highly porous structure. Percent porosity and pore volume distribution were evaluated using mercury intrusion porosimetry (MIP). The scaffolds were mechanically tested to evaluate their compressive strength. The biodegradation rate in lysozyme-containing saline had been also determined over a six week period. The MIP results showed that all scaffolds had percent porosity in excess of 75% and that the percent porosity decreased by increasing the cellulose concentration. The incremental intrusion versus diameter curves revealed that most of the scaffolds porosity occurred in the macro-scale. The compressive strength of the scaffold showed an increase with an increase in the cellulose concentration. However, the biodegradation rate was found to vary inversely with the cellulose content in the hybrid. In order to evaluate the cytocompatibility of the chitosan-based scaffolds, mesenchymal stem cells were statically seeded and their attachment had been evaluated. The results revealed that after three and eight day of seeding, the scaffolds became highly populated with cells. This serves as a clear indicatation that the scaffolds thus investigated promote cell attachment and support cell proliferation and proliferation. Thus, the investigated scaffolds are promising candidates for tissue engineering applications.
机译:天然聚合物继续为组织工程应用提供有效的生物相容性支架。在某些方面,它们的化学结构非常类似于生物组织细胞外基质的化学结构。尽管可以将多种生物聚合物用于这些应用,但尚未发现单一聚合物能够满足支架材料所需的所有要求。为了结合两种天然聚合物的优势,已评估了壳聚糖/纤维素构建体的混合支架作为组织工程应用的候选材料。制备了四组具有不同纤维素浓度的杂合壳聚糖/纤维素支架。已经使用扫描电子显微镜(SEM)检查了表面和整体孔隙率支架。 SEM照片显示,所有杂种支架基团均表现出相互连接的高度多孔的结构。使用压汞法(MIP)评估了孔隙度百分比和孔体积分布。对支架进行机械测试以评估其抗压强度。还确定了六周期间含溶菌酶的盐水中的生物降解率。 MIP结果表明,所有支架的孔隙率百分比均超过75%,并且孔隙率百分比随纤维素浓度的增加而降低。增量侵入与直径的关系曲线表明,大多数支架孔隙是在宏观尺度上发生的。支架的抗压强度随纤维素浓度的增加而增加。然而,发现生物降解速率与杂种中纤维素含量成反比。为了评估基于壳聚糖的支架的细胞相容性,将间充质干细胞静态播种并评估其附着性。结果显示,在接种三天和八天后,支架中的细胞数量很高。这清楚地表明,如此研究的支架促进细胞附着并支持细胞增殖和增殖。因此,研究的支架是组织工程应用的有希望的候选者。

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