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Regulation of differentiation of annulus fibrosus-derived stem cells using heterogeneous electrospun fibrous scaffolds

机译:使用异质电纺纤维支架对环状纤维型衍生干细胞分化的调节

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BackgroundTissue engineering of the annulus fibrosus (AF) shows promise as a treatment for patients with degenerative disc disease (DDD). However, it remains challenging due to the intrinsic heterogeneity of AF tissue. Fabrication of scaffolds recapitulating the specific cellular, componential, and microstructural features of AF, therefore, is critical to successful AF tissue regeneration.MethodsPoly-L-lactic acid (PLLA) fibrous scaffolds with various fiber diameters and orientation were prepared to mimic the microstructural characteristics of AF tissue using electrospinning technique. AF-derived stem cells (AFSCs) were cultured on the PLLA fibrous scaffolds for 7 days.ResultsThe morphology of AFSCs significantly varied when cultured on the scaffolds with various fiber diameters and orientation. AFSCs were nearly round on scaffolds with small fibers. However, they became spindle-shaped on scaffolds with large fibers. Meanwhile, upregulated expression of collagen-I gene happened in cells cultured on scaffolds with large fibers, while enhanced expression of collagen-II and aggrecan genes was seen on scaffolds with small fibers. The production of related proteins also showed similar trends. Further, culturing AFSCs on a heterogeneous scaffold by overlaying membranes with different fiber sizes led to the formation of a hierarchical structure approximating native AF tissue.ConclusionFindings from this study demonstrate that fibrous scaffolds with different fiber sizes effectively promoted the differentiation of AFSCs into specific cells similar to the types of cells at various AF zones. It also provides a valuable reference for regulation of cell differentiation and fabrication of engineered tissues with complex hierarchical structures using the physical cues of scaffolds.The translational potential of this articleEffective AF repair is an essential need for treating degenerative disc disease. Tissue engineering is a promising approach to achieving tissue regeneration and restoring normal functions of tissues. By mimicking the key structural features of native AF tissue, including fiber size and alignment, this study deciphered the effect of scaffold materials on the cell differentiation and extracellular matrix deposition, which provides a solid basis for designing new strategies toward more effective AF repair and regeneration.
机译:背景技术环形纤维(AF)的工程显示了对退行性椎间盘疾病(DDD)患者的治疗。然而,由于AF组织的内在异质性,它仍然挑战。重新制备AF的特定细胞,成分和微观结构特征的支架对成功的AF组织再生至关重要。准备具有各种纤维直径和取向的纤维状酸(PLLA)纤维支架,以模仿微观结构特性用静电纺丝技术的AF组织。在PLLA纤维支架上培养AF-衍生的干细胞(AFSCs)7天。随着各种纤维直径和取向在支架上培养时,AFSC的形态明显变化。 AFSCs几乎圆形,带有小纤维的支架。然而,它们在带有大纤维的支架上形成主轴形。同时,在用大纤维培养的支架上培养的细胞中发生上调表达胶原蛋白-I基因,同时在具有小纤维的支架上看到胶原蛋白-II和蛋白酶基因的增强表达。相关蛋白质的生产也显示出类似的趋势。此外,通过用不同纤维尺寸的覆盖膜在异质支架上培养AFSCS LED覆盖近似的分层结构,该研究近似的天然AF组织。来自该研究的组合件证明了具有不同纤维尺寸的纤维支架有效地促进了AFSCs的分化为类似的特定细胞在各种AF区域的细胞类型。它还提供了具有复杂分层结构的细胞分化和制造具有复杂的分层结构的细胞分化和制造的有价值的参考,使用支架的物理提示。该物质切除症AF修复的平移潜力是治疗退行性椎间盘疾病的必要需求。组织工程是实现组织再生和恢复组织正常功能的有希望的方法。通过模拟天然AF组织的关键结构特征,包括纤维尺寸和对准,该研究破译了支架材料对细胞分化和细胞外基质沉积的效果,为设计更有效的AF修复和再生的新策略提供了坚实的基础。

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