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Increasing Fgf4 expression in the mouse limb bud causes polysyndactyly and rescues the skeletal defects that result from loss of Fgf8 function

机译:增加Fgf4在小鼠肢体芽中的表达导致多指节和挽救由Fgf8功能丧失引起的骨骼缺陷

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摘要

A major function of the limb bud apical ectodermal ridge (AER) isto produce fibroblast growth factors (FGFs) that signal to the underlying mesenchyme. Previous studies have suggested that of the four FGF genes specifically expressed in the mouse AER, Fgf8 is unique not only in its expression pattern, but also because it is the only such FGF gene that causes limb skeletal abnormalities when individually inactivated. However, when both Fgf8 and Fgf4 are simultaneously inactivated in the AER, the limb does not develop. One possible explanation for these observations is that although both of these FGF family members contribute to limb development, Fgf8 has functions that Fgf4 cannot perform. To test this hypothesis, we used a novel method to substitute Fgf4 for Fgf8 expression in the developing limb bud by concomitantly activating a conditional Fgf4 gain-of-function allele and inactivating an Fgf8 loss-of-function allele in the same cells via Cre-mediated recombination. Our data show that when Fgf4 is expressed in place of Fgf8, all of the skeletal defects caused by inactivation of Fgf8 are rescued, conclusively demonstrating that FGF4 can functionally replace FGF8 in limb skeletal development. We also show that the increase in FGF signaling that occurs when the Fgf4 gain-of-function allele is activated in a wild-type limb bud causes formation of a supernumerary posterior digit (postaxial polydactyly), as well as cutaneous syndactyly between all the digits. These data underscore the importance of controlling the level of FGF gene expression for normal limb development.
机译:肢芽根尖外胚层(AER)的主要功能是产生成纤维细胞生长因子(FGF),该信号向潜在的间充质发出信号。先前的研究表明,在小鼠AER中特异性表达的四个FGF基因中,Fgf8不仅在其表达方式上是独特的,而且还因为它是唯一一个在单独失活时会导致肢体骨骼异常的FGF基因。但是,当在AER中同时使Fgf8和Fgf4灭活时,肢体不会发育。这些观察结果的一种可能解释是,尽管这两个FGF家族成员均有助于肢体发育,但Fgf8具有Fgf4无法执行的功能。为了验证这一假设,我们使用了一种新方法,通过同时激活条件性Fgf4功能获得等位基因并通过Cre-失活在相同细胞中失活Fgf8功能丧失等位基因,用Fgf4替代发育中肢芽中Fgf8的表达。介导的重组。我们的数据显示,当Fgf4代替Fgf8表达时,由Fgf8失活引起的所有骨骼缺损都得到了挽救,这表明FGF4可以在肢体骨骼发育中功能性替代FGF8。我们还表明,当在野生型肢芽中激活Fgf4功能获得的等位基因时,FGF信号的增加会导致形成多余的后指(后指多指),以及所有指之间的皮肤综合征。这些数据强调了控制FGF基因表达水平对正常肢体发育的重要性。

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