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Normal limb development in conditional mutants of Fgf4.

机译:Fgf4条件突变体的正常肢体发育。

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Fibroblast growth factors (FGFs) mediate multiple developmental signals in vertebrates. Several of these factors are expressed in limb bud structures that direct patterning of the limb. FGF4 is produced in the apical ectodermal ridge (AER) where it is hypothesized to provide mitogenic and morphogenic signals to the underlying mesenchyme that regulate normal limb development. Mutation of this gene in the germline of mice results in early embryonic lethality, preventing subsequent evaluation of Fgf4 function in the AER. A conditional mutant of Fgf4, based on site-specific Cre/loxP-mediated excision of the gene, allowed us to bypass embryonic lethality and directly test the role of FGF4 during limb development in living murine embryos. This conditional mutation was designed so that concomitant with inactivation of the Fgf4 gene by excision of all Fgf4-coding sequences, a reporter gene was activated in Fgf4-expressing cells, allowing assessment of the site-specific recombination reaction. Although a large body of evidence led us to predict that ablation of Fgf4 gene function in the AER of developing mice would result in abnormal limb outgrowth and patterning, we found that Fgf4 conditional mutants had normal limbs. Furthermore, expression patterns of Shh, Bmp2, Fgf8 and Fgf10 were normal in the limb buds of the conditional mutants. These findings indicate that the previously proposed FGF4-SHH feedback loop is not essential for coordination of murine limb outgrowth and patterning. We suggest that some of the roles currently attributed to FGF4 during early vertebrate limb development may be performed by other AER factors in vivo.
机译:成纤维细胞生长因子(FGFs)介导脊椎动物中的多个发育信号。这些因素中的几种在指导肢体图案的肢芽结构中表达。 FGF4产生于根尖外胚层)(AER)中,据推测可向潜在的间充质提供有丝分裂和形态发生信号,从而调节正常的肢体发育。小鼠种系中该基因的突变导致早期胚胎致死性,阻止了AER中Fgf4功能的后续评估。基于位点特异性Cre / loxP介导的基因切除的Fgf4条件突变体,使我们能够绕过胚胎致死性,并直接测试FGF4在活体鼠胚胎四肢发育过程中的作用。设计这种有条件的突变,以便与通过切除所有Fgf4编码序列而使Fgf4基因失活同时,在表达Fgf4的细胞中激活报告基因,从而评估位点特异性重组反应。尽管有大量的证据使我们预测,发育中的小鼠的AER中Fgf4基因功能的消除会导致异常的肢体生长和模式,但我们发现Fgf4条件突变体的肢体正常。此外,Shh,Bmp2,Fgf8和Fgf10的表达模式在条件突变体的肢芽中是正常的。这些发现表明,以前提出的FGF4-SHH反馈回路对于协调鼠肢的生长和构图不是必需的。我们建议当前在脊椎动物早期肢体发育过程中归因于FGF4的某些作用可能是由体内其他AER因子完成的。

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