Roato Ilaria, Masante Beatrice, Putame Giovanni, Massai Diana, Mussano Federico
Bone and Dental Bioengineering Laboratory, CIR-Dental School, Department of Surgical Sciences, University of Turin, 10126 Turin, Italy.
PolitoBIOMed Lab and Department of Mechanical and Aerospace Engineering, Politecnico di Torino, 10129 Turin, Italy.
Nanomaterials (Basel). 2022 Nov 2;12(21):3878. doi: 10.3390/nano12213878.
In recent years, tissue engineering studies have proposed several approaches to regenerate periodontium based on the use of three-dimensional (3D) tissue scaffolds alone or in association with periodontal ligament stem cells (PDLSCs). The rapid evolution of bioprinting has sped up classic regenerative medicine, making the fabrication of multilayered scaffolds-which are essential in targeting the periodontal ligament (PDL)-conceivable. Physiological mechanical loading is fundamental to generate this complex anatomical structure ex vivo. Indeed, loading induces the correct orientation of the fibers forming the PDL and maintains tissue homeostasis, whereas overloading or a failure to adapt to mechanical load can be at least in part responsible for a wrong tissue regeneration using PDLSCs. This review provides a brief overview of the most recent achievements in periodontal tissue engineering, with a particular focus on the use of PDLSCs, which are the best choice for regenerating PDL as well as alveolar bone and cementum. Different scaffolds associated with various manufacturing methods and data derived from the application of different mechanical loading protocols have been analyzed, demonstrating that periodontal tissue engineering represents a proof of concept with high potential for innovative therapies in the near future.
近年来,组织工程研究提出了几种基于单独使用三维(3D)组织支架或与牙周膜干细胞(PDLSCs)联合使用来再生牙周组织的方法。生物打印技术的快速发展加速了传统再生医学的进程,使得制造多层支架成为可能,而多层支架对于靶向牙周膜(PDL)至关重要。生理机械负荷是在体外生成这种复杂解剖结构的基础。事实上,负荷诱导形成PDL的纤维正确定向并维持组织稳态,而过负荷或无法适应机械负荷至少在一定程度上可能导致使用PDLSCs时组织再生错误。本综述简要概述了牙周组织工程的最新成果,特别关注PDLSCs的应用,PDLSCs是再生PDL以及牙槽骨和牙骨质的最佳选择。分析了与各种制造方法相关的不同支架以及来自不同机械负荷方案应用的数据,表明牙周组织工程是一个概念验证,在不久的将来具有创新疗法的巨大潜力。