Department of Histology and Embryology, Faculty of Medicine, Masaryk University, Brno, Czech Republic.
Laboratory of Molecular Morphogenesis, Institute of Animal Physiology and Genetics, Czech Academy of Sciences, Brno, Czech Republic.
J Dent Res. 2023 Jun;102(6):589-598. doi: 10.1177/00220345231154800. Epub 2023 Mar 15.
Recent years have improved our understanding of the plasticity of cell types behind inducing, building, and maintaining different types of teeth. The latest efforts were aided by progress in single-cell transcriptomics, which helped to define not only cell states with mathematical precision but also transitions between them. This includes new aspects of dental epithelial and mesenchymal stem cell niches and beyond. These recent efforts revealed continuous and fluid trajectories connecting cell states during dental development and exposed the natural plasticity of tooth-building progenitors. Such "developmental" plasticity seems to be employed for organizing stem cell niches in adult continuously growing teeth. Furthermore, transitions between mature cell types elicited by trauma might represent a replay of embryonic continuous cell states. Alternatively, they could constitute transitions that evolved , not known from the developmental paradigm. In this review, we discuss and exemplify how dental cell types exhibit plasticity during dynamic processes such as development, self-renewal, repair, and dental replacement. Hypothetically, minor plasticity of cell phenotypes and greater plasticity of transitions between cell subtypes might provide a better response to lifetime challenges, such as damage or dental loss. This plasticity might be additionally harnessed by the evolutionary process during the elaboration of dental cell subtypes in different animal lineages. In turn, the diversification of cell subtypes building teeth brings a diversity of their shape, structural properties, and functions.
近年来,我们对诱导、构建和维持不同类型牙齿的细胞类型的可塑性有了更深入的了解。单细胞转录组学的最新进展为此提供了帮助,它不仅帮助我们以数学精度定义了细胞状态,还帮助我们定义了细胞状态之间的转变。这包括牙齿上皮和间充质干细胞龛等方面的新内容。这些最新的研究揭示了牙齿发育过程中细胞状态之间连续而流畅的轨迹,并揭示了牙齿形成前体细胞的自然可塑性。这种“发育”可塑性似乎被用于组织成年不断生长的牙齿中的干细胞龛。此外,创伤引起的成熟细胞类型之间的转变可能代表了胚胎连续细胞状态的重演。或者,它们可能代表着进化而来的转变,这是发育范例所不知道的。在这篇综述中,我们讨论并举例说明了牙齿细胞类型在发育、自我更新、修复和牙齿替换等动态过程中表现出的可塑性。从理论上讲,细胞表型的微小可塑性和细胞亚型之间转变的更大可塑性可能为应对终生挑战(如损伤或牙齿缺失)提供更好的反应。这种可塑性可能会在不同动物谱系中牙齿细胞亚型的进化过程中被进一步利用。反过来,构建牙齿的细胞亚型的多样化带来了它们形状、结构特性和功能的多样性。