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Development of Chitosan Scaffolds with Enhanced Mechanical Properties for Intestinal Tissue Engineering Applications

机译:具有增强的机械性能的壳聚糖支架在肠组织工程应用中的开发

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摘要

Massive resections of segments of the gastrointestinal (GI) tract lead to intestinal discontinuity. Functional tubular replacements are needed. Different scaffolds were designed for intestinal tissue engineering application. However, none of the studies have evaluated the mechanical properties of the scaffolds. We have previously shown the biocompatibility of chitosan as a natural material in intestinal tissue engineering. Our scaffolds demonstrated weak mechanical properties. In this study, we enhanced the mechanical strength of the scaffolds with the use of chitosan fibers. Chitosan fibers were circumferentially-aligned around the tubular chitosan scaffolds either from the luminal side or from the outer side or both. Tensile strength, tensile strain, and Young’s modulus were significantly increased in the scaffolds with fibers when compared with scaffolds without fibers. Burst pressure was also increased. The biocompatibility of the scaffolds was maintained as demonstrated by the adhesion of smooth muscle cells around the different kinds of scaffolds. The chitosan scaffolds with fibers provided a better candidate for intestinal tissue engineering. The novelty of this study was in the design of the fibers in a specific alignment and their incorporation within the scaffolds.
机译:胃肠道(GI)段的大规模切除会导致肠道不连续。需要功能性的管状替代物。为肠组织工程应用设计了不同的支架。然而,没有研究评估支架的机械性能。我们之前已经证明了壳聚糖作为肠组织工程中的天然材料的生物相容性。我们的脚手架显示出较弱的机械性能。在这项研究中,我们使用壳聚糖纤维增强了脚手架的机械强度。壳聚糖纤维从管腔侧或从外侧或两者在管状壳聚糖支架周围沿周向排列。与没有纤维的脚手架相比,有纤维的脚手架的拉伸强度,拉伸应变和杨氏模量显着提高。爆裂压力也增加了。支架的生物相容性得以维持,这通过不同种类支架周围平滑肌细胞的粘附来证明。具有纤维的壳聚糖支架为肠组织工程提供了更好的候选者。这项研究的新颖之处在于以特定排列方式设计纤维并将其并入支架中。

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