Requicha João F, Viegas Carlos A, Muñoz Fernando, Azevedo Jorge M, Leonor Isabel B, Reis Rui L, Gomes Manuela E
1 3B's Research Group-Biomaterials, Biodegradables and Biomimetics, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, University of Minho , Guimarães, Portugal .
Tissue Eng Part A. 2014 Sep;20(17-18):2483-92. doi: 10.1089/ten.TEA.2013.0360. Epub 2014 Apr 22.
Human and canine periodontium are often affected by an inflammatory pathology called periodontitis, which is associated with severe damages across tissues, namely, in the periodontal ligament, cementum, and alveolar bone. However, the therapies used in the routine dental practice, often consisting in a combination of different techniques, do not allow to fully restore the functionality of the periodontium. Tissue Engineering (TE) appears as a valuable alternative approach to regenerate periodontal defects, but for this purpose, it is essential to develop supportive biomaterial and stem cell sourcing/culturing methodologies that address the complexity of the various tissues affected by this condition. The main aim of this work was to study the in vitro functionality of a newly developed double-layer scaffold for periodontal TE. The scaffold design was based on a combination of a three-dimensional (3D) fiber mesh functionalized with silanol groups and a membrane, both made of a blend of starch and poly-ɛ-(caprolactone). Adipose-derived stem cells (canine adipose stem cells [cASCs]) were seeded and cultured onto such scaffolds, and the obtained constructs were evaluated in terms of cellular morphology, metabolic activity, and proliferation. The osteogenic potential of the fiber mesh layer functionalized with silanol groups was further assessed concerning the osteogenic differentiation of the seeded and cultured ASCs. The obtained results showed that the proposed double-layer scaffold supports the proliferation and selectively promotes the osteogenic differentiation of cASCs seeded onto the functionalized mesh. These findings suggest that the 3D structure and asymmetric composition of the scaffold in combination with stem cells may provide the basis for developing alternative therapies to treat periodontal defects more efficiently.
人类和犬类的牙周组织常受一种名为牙周炎的炎症性病变影响,这种病变会对包括牙周韧带、牙骨质和牙槽骨在内的组织造成严重损害。然而,常规牙科实践中使用的疗法通常是多种不同技术的组合,无法完全恢复牙周组织的功能。组织工程(TE)似乎是一种有价值的替代方法,可用于修复牙周缺损,但为此,必须开发支持性生物材料以及干细胞获取/培养方法,以应对受该病症影响的各种组织的复杂性。这项工作的主要目的是研究一种新开发的用于牙周组织工程的双层支架的体外功能。该支架设计基于用硅醇基团功能化的三维(3D)纤维网与一层膜的组合,两者均由淀粉和聚-ε-己内酯的混合物制成。将脂肪来源的干细胞(犬脂肪干细胞 [cASCs])接种并培养在这种支架上,并从细胞形态、代谢活性和增殖方面对所得构建体进行评估。关于接种并培养的脂肪干细胞的成骨分化,进一步评估了用硅醇基团功能化的纤维网层的成骨潜力。所得结果表明,所提出的双层支架支持增殖,并选择性地促进接种在功能化网片上的犬脂肪干细胞的成骨分化。这些发现表明,支架的三维结构和不对称组成与干细胞相结合,可能为开发更有效地治疗牙周缺损的替代疗法提供基础。