Jiang Yuchen, Katsura Kaitlin A, Badt Nir Z, Didziokas Marius, Dougherty Sonia, Bhoj Elizabeth J, Vining Kyle H
Materials Science and Engineering, School of Engineering and Applied Science, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
Division of Human Genetics, Children's Hospital of Philadelphia, Philadelphia, Pennsylvania 19104, United States.
ACS Appl Mater Interfaces. 2025 Jun 11;17(23):33745-33755. doi: 10.1021/acsami.5c08408. Epub 2025 May 28.
The developing dentition comprises vital hard tissues of the craniofacial complex that undergo complex and distinct mineralization stages of development through changes in their physicochemical properties. This study investigates the mechanical and chemical properties of the developing enamel, dentin, and bone in mouse mandibles. We employ a multimodal, multiscale analysis of the developing postnatal incisor and first molar by integrating microcomputed tomography, nanoindentation, energy dispersive spectroscopy, and Raman spectroscopy. Our findings reveal patterns of mechanical, elemental, and chemical changes across the developing incisor in enamel and dentin. Magnesium, iron, and the carbon-to-phosphate ratio were significantly associated with enamel properties, while magnesium composition was associated with dentin. These results demonstrate that the mineral composition drives mechanical properties across these developing craniofacial hard tissues. The integrative multimodal approach provides a quantitative perspective on the early stages of enamel and dentin mineralization of the developing incisor.
正在发育的牙列由颅面复合体的重要硬组织组成,这些硬组织通过其物理化学性质的变化经历复杂且独特的矿化发育阶段。本研究调查了小鼠下颌骨中正在发育的牙釉质、牙本质和骨骼的力学和化学性质。我们通过整合微型计算机断层扫描、纳米压痕、能量色散光谱和拉曼光谱,对出生后正在发育的门牙和第一磨牙进行多模态、多尺度分析。我们的研究结果揭示了牙釉质和牙本质中正在发育的门牙的力学、元素和化学变化模式。镁、铁以及碳与磷酸盐的比例与牙釉质性质显著相关,而镁的组成与牙本质相关。这些结果表明,矿物质组成驱动着这些正在发育的颅面硬组织的力学性质。这种综合多模态方法为正在发育的门牙的牙釉质和牙本质矿化早期阶段提供了定量视角。