Park C H, Kim K H, Rios H F, Lee Y M, Giannobile W V, Seol Y J
Department of Periodontology, Dental Research Institute, School of Dentistry, Seoul National University, Seoul, Republic of Korea Department of Nanobiomedical Science and BK21 PLUS NBM Global Research Center for Regenerative Medicine, Dankook University, Cheonan, Republic of Korea Institute of Tissue Regeneration Engineering, Dankook University, Cheonan, Republic of Korea.
Department of Periodontology, Dental Research Institute, School of Dentistry, Seoul National University, Seoul, Republic of Korea.
J Dent Res. 2014 Dec;93(12):1304-12. doi: 10.1177/0022034514550716. Epub 2014 Sep 11.
Physiologic bioengineering of the oral, dental, and craniofacial complex requires optimized geometric organizations of fibrous connective tissues. A computer-designed, fiber-guiding scaffold has been developed to promote tooth-supporting periodontal tissue regeneration and functional restoration despite limited printing resolution for the manufacture of submicron-scaled features. Here, we demonstrate the use of directional freeze-casting techniques to control pore directional angulations and create mimicked topographies to alveolar crest, horizontal, oblique, and apical fibers of natural periodontal ligaments. For the differing anatomic positions, the gelatin displayed varying patterns of ice growth, determined via internal pore architectures. Regardless of the freezing coordinates, the longitudinal pore arrangements resulted in submicron-scaled diameters (50 µm), along with corresponding high biomaterial porosity (90%). Furthermore, the horizontal + coronal ([Formula: see text]) freezing orientation facilitated the creation of similar structures to major fibers in the periodontal ligament interface. This periodontal tissue-mimicking microenvironment is a potential tissue platform for the generation of naturally oriented ligamentous tissues consistent with periodontal ligament neogenesis.
口腔、牙齿和颅面复合体的生理生物工程需要纤维结缔组织的优化几何组织。尽管制造亚微米级特征的打印分辨率有限,但已开发出一种计算机设计的纤维引导支架,以促进牙齿支持性牙周组织再生和功能恢复。在这里,我们展示了使用定向冷冻铸造技术来控制孔隙方向角度,并创建与天然牙周韧带的牙槽嵴、水平、斜向和根尖纤维相似的形貌。对于不同的解剖位置,通过内部孔隙结构确定,明胶呈现出不同的冰生长模式。无论冷冻坐标如何,纵向孔隙排列导致亚微米级直径(约50 µm),以及相应的高生物材料孔隙率(约90%)。此外,水平+冠状([公式:见正文])冷冻取向有助于在牙周韧带界面创建与主要纤维相似的结构。这种模拟牙周组织的微环境是一个潜在的组织平台,用于生成与牙周韧带新生一致的自然取向韧带组织。