Department of Histology and Embryology, Faculty of Medicine, Masaryk University, Brno, Czech Republic.
Department of Experimental Biology, Faculty of Science, Masaryk University, Brno, Czech Republic.
Sci Adv. 2023 Aug 2;9(31):eadi0482. doi: 10.1126/sciadv.adi0482.
Mineralized tissues, such as bones or teeth, are essential structures of all vertebrates. They enable rapid movement, protection, and food processing, in addition to providing physiological functions. Although the development, regeneration, and pathogenesis of teeth and bones have been intensely studied, there is currently no tool to accurately follow the dynamics of growth and healing of these vital tissues in space and time. Here, we present the BEE-ST (Bones and tEEth Spatio-Temporal growth monitoring) approach, which allows precise quantification of development, regeneration, remodeling, and healing in any type of calcified tissue across different species. Using mouse teeth as model the turnover rate of continuously growing incisors was quantified, and role of hard/soft diet on molar root growth was shown. Furthermore, the dynamics of bones and teeth growth in lizards, frogs, birds, and zebrafish was uncovered. This approach represents an effective, highly reproducible, and versatile tool that opens up diverse possibilities in developmental biology, bone and tooth healing, tissue engineering, and disease modeling.
矿化组织,如骨骼或牙齿,是所有脊椎动物的重要结构。它们除了提供生理功能外,还使快速运动、保护和食物处理成为可能。尽管牙齿和骨骼的发育、再生和发病机制已经被深入研究,但目前还没有工具可以准确地跟踪这些重要组织在空间和时间上的生长和愈合动态。在这里,我们提出了 BEE-ST(骨骼和牙齿时空生长监测)方法,该方法允许在不同物种的任何类型的钙化组织中精确量化发育、再生、重塑和愈合。我们使用小鼠牙齿作为模型,量化了不断生长的切牙的周转率,并展示了硬/软饮食对磨牙根生长的影响。此外,还揭示了蜥蜴、青蛙、鸟类和斑马鱼的骨骼和牙齿生长动态。该方法代表了一种有效、高度可重复和通用的工具,为发育生物学、骨骼和牙齿愈合、组织工程和疾病建模开辟了多样化的可能性。