细胞外基质介导的上皮-间充质相互作用在三种近交系小鼠中启动下颌骨骼形成的时间改变:发育、异时性和形态学的进化变化。

M. Macdonald, B. Hall
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引用次数: 31

摘要

胚胎发育的细微变化是进化过程中显著形态改变的来源。哺乳动物下颌骨骨骼起源于颅神经嵴,是一个复杂的结构,由几个成分组成,这些成分在胚胎发生后期相互作用,产生一个单一的功能单元。它提供了一个模型系统,在这个系统中,个体的发育事件可以在种群水平的进化变化的基础上进行实验研究。近交系小鼠分化时间较短,但形态差异明显。其中一些差异可以追溯到早期发育事件的时间上的微小变化,例如启动骨骼形成的细胞凝聚的形成。本文研究了一个更早的时间变化事件,上皮-间充质相互作用(s)需要启动Meckel软骨的软骨形成和牙髓骨的成骨。通过使用三种自交系小鼠(CBA, C3H和C57),我们发现,在每个品系中,软骨和骨同时被相同的(下颌)上皮诱导,软骨和骨的形成是由基质介导的上皮-间充质相互作用启动的,并且相互作用的时间在三种自交系中不同。这些结果讨论了诱导相互作用中这种时间变化的可能分子基础,以及如何利用这些研究来阐明异质性作为形态进化变化的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Altered timing of the extracellular-matrix-mediated epithelial-mesenchymal interaction that initiates mandibular skeletogenesis in three inbred strains of mice: development, heterochrony, and evolutionary change in morphology.
Subtle changes in embryonic development are a source of significant morphological alterations during evolution. The mammalian mandibular skeleton, which originates from the cranial neural crest, is a complex structure comprising several components that interact late in embryogenesis to produce a single functional unit. It provides a model system in which individual developmental events at the basis of population-level evolutionary change can be investigated experimentally. Inbred mouse strains exhibit obvious morphological differences despite the relatively short time since their divergence from one another. Some of these differences can be traced to small changes in the timing of early developmental events such as the formation of the cellular condensations that initiate skeletogenesis. This paper examines an even earlier event for changes in timing, the epithelial-mesenchymal interaction(s) required to initiate chondrogenesis of Meckel's cartilage and osteogenesis of the dentary bone. Using three inbred strains of mice (CBA, C3H and C57) we found that, within each strain, cartilage and bone are induced at the same time and by the same (mandibular) epithelium, that chondrogenesis and osteogenesis are initiated by a matrix-mediated epithelial-mesenchymal interaction, and that timing of the interactions differs among the three inbred strains. These results are discussed with respect to the possible molecular basis of such temporal shifts in inductive interactions and how such studies can be used to shed light on heterochrony as a mechanism of evolutionary change in morphology.
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