利用脂肪基质细胞进行软骨组织工程的新型壳聚糖-肽系统。

Agata Tymińska, Natalia Karska, Aneta Skoniecka, Małgorzata Zawrzykraj, Adrianna Banach-Kopeć, Szymon Mania, Jacek Zieliński, Karolina Kondej, Katarzyna Gurzawska-Comis, Piotr M Skowron, Robert Tylingo, Sylwia Rodziewicz-Motowidło, Michał Pikuła
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引用次数: 0

摘要

软骨损伤的自然愈合过程往往无法完全恢复组织的生物和机械功能。软骨移植成本高昂,而且需要手术干预,经常会出现术中感染和受体因缺血而产生排斥反应等并发症。新型组织工程技术旨在理想地填补软骨缺损,防止疾病恶化或再生受损组织。尽管有许多关于设计生物相容性复合材料以刺激软骨生成的研究,但只有少数研究关注促进干细胞增殖或分化以促进愈合的肽和载体。我们的研究旨在设计一种基于壳聚糖的碳水化合物生物材料,以刺激干细胞进入软骨生成途径。我们的策略是将壳聚糖与基于 copin 蛋白序列的新型多肽(UG28)相结合。这种构建物能刺激人类脂肪源性干细胞(AD-SCs)细胞进行软骨分化。壳聚糖 75/500 可使 AD-SCs 生长,且对细胞无害。UG28肽与壳聚糖复合材料的结合为细胞分化提供了良好的特性,显示了其在软骨再生方面的临床应用潜力。
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A novel chitosan-peptide system for cartilage tissue engineering with adipose-derived stromal cells.

The natural healing process of cartilage injuries often fails to fully restore the tissue's biological and mechanical functions. Cartilage grafts are costly and require surgical intervention, often associated with complications such as intraoperative infection and rejection by the recipient due to ischemia. Novel tissue engineering technologies aim to ideally fill the cartilage defect to prevent disease progression or regenerate damaged tissue. Despite many studies on designing biocompatible composites to stimulate chondrogenesis, only few focus on peptides and carriers that promote stem cell proliferation or differentiation to promote healing. Our research aimed to design a carbohydrate chitosan-based biomaterial to stimulate stem cells into the chondrogenesis pathway. Our strategy was to combine chitosan with a novel peptide (UG28) that sequence was based on the copin protein. The construct stimulated human adipose-derived stem cells (AD-SCs) cells to undergo chondrogenic differentiation. Chitosan 75/500 allows AD-SCs to grow and has no harmful effects on the cells. The combination of UG28 peptide with the chitosan composite offers promising properties for cell differentiation, indicating its potential for clinical applications in cartilage regeneration.

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