Institute of Science and Technology for Ceramics-National Research Council (ISTEC-CNR), Via Granarolo 64, 48018 Faenza, Italy.
Laboratory of Bio-Inspired & Graphene Nanomechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, Via Mesiano 77, 38123 Trento, Italy.
Int J Mol Sci. 2018 Nov 15;19(11):3604. doi: 10.3390/ijms19113604.
The regeneration of dental tissues is a still an unmet clinical need; in fact, no therapies have been completely successful in regenerating dental tissue complexes such as periodontium, which is also due to the lack of scaffolds that are able to guide and direct cell fate towards the reconstruction of different mineralized and non-mineralized dental tissues. In this respect, the present work develops a novel multifunctional hybrid scaffold recapitulating the different features of alveolar bone, periodontal ligament, and cementum by integrating the biomineralization process, and tape casting and electrospinning techniques. The scaffold is endowed with a superparamagnetic ability, thanks to the use of a biocompatible, bioactive superparamagnetic apatite phase, as a mineral component that is able to promote osteogenesis and to be activated by remote magnetic signals. The periodontal scaffold was obtained by engineering three different layers, recapitulating the relevant compositional and microstructural features of the target tissues, into a monolithic multifunctional graded device. Physico-chemical, morphological, and ultrastructural analyses, in association with preliminary in vitro investigations carried out with mesenchymal stem cells, confirm that the final scaffold exhibits a good mimicry of the periodontal tissue complex, with excellent cytocompatibility and cell viability, making it very promising for regenerative applications in dentistry.
牙齿组织的再生仍然是一个未满足的临床需求;事实上,还没有任何疗法能够完全成功地再生牙周等牙齿组织复合体,这也是由于缺乏能够引导和指导细胞命运朝向不同矿化和非矿化牙齿组织重建的支架。在这方面,本工作通过整合生物矿化过程以及带浇铸和静电纺丝技术,开发了一种新型多功能混合支架,再现了牙槽骨、牙周膜和牙骨质的不同特征。该支架具有超顺磁性能力,这要归功于使用生物相容性、生物活性的超顺磁磷灰石相作为矿物成分,能够促进成骨作用,并能被远程磁信号激活。牙周支架通过工程设计三个不同的层来获得,再现了目标组织的相关组成和微观结构特征,形成了一个整体的多功能梯度装置。物理化学、形态和超微结构分析,以及与间充质干细胞进行的初步体外研究相结合,证实了最终的支架具有良好的牙周组织复合体模拟性,具有优异的细胞相容性和细胞活力,使其非常有希望应用于牙科再生。