Aytac Zeynep, Dubey Nileshkumar, Daghrery Arwa, Ferreira Jessica A, de Souza Araújo Isaac J, Castilho Miguel, Malda Jos, Bottino Marco C
Department of Cariology, Restorative Sciences, and Endodontics, University of Michigan, School of Dentistry, Ann Arbor, Michigan, United States.
Regenerative Medicine Center, University Medical Center Utrecht, Utrecht, The Netherlands.
Int Mater Rev. 2022;67(4):347-384. doi: 10.1080/09506608.2021.1946236. Epub 2021 Jul 5.
From a materials perspective, the pillars for the development of clinically translatable scaffold-based strategies for craniomaxillofacial (CMF) bone and periodontal regeneration have included electrospinning and 3D printing (biofabrication) technologies. Here, we offer a detailed analysis of the latest innovations in 3D (bio)printing strategies for CMF bone and periodontal regeneration and provide future directions envisioning the development of advanced 3D architectures for successful clinical translation. First, the principles of electrospinning applied to the generation of biodegradable scaffolds are discussed. Next, we present on extrusion-based 3D printing technologies with a focus on creating scaffolds with improved regenerative capacity. In addition, we offer a critical appraisal on 3D (bio)printing and multitechnology convergence to enable the reconstruction of CMF bones and periodontal tissues. As a future outlook, we highlight future directions associated with the utilization of complementary biomaterials and (bio)fabrication technologies for effective translation of personalized and functional scaffolds into the clinics.
从材料角度来看,用于颅颌面(CMF)骨和牙周组织再生的基于支架的临床可转化策略的发展支柱包括静电纺丝和3D打印(生物制造)技术。在此,我们对CMF骨和牙周组织再生的3D(生物)打印策略的最新创新进行了详细分析,并为成功临床转化的先进3D架构的发展提供了未来方向。首先,讨论了应用于可生物降解支架生成的静电纺丝原理。接下来,我们介绍基于挤出的3D打印技术,重点是创建具有更高再生能力的支架。此外,我们对3D(生物)打印和多技术融合进行了批判性评估,以实现CMF骨和牙周组织的重建。作为未来展望,我们强调了与利用互补生物材料和(生物)制造技术相关的未来方向,以便将个性化和功能性支架有效转化到临床中。