Division of Developmental Biology, The Roslin Institute and R(D)SVS, University of Edinburgh, Easter Bush, Midlothian EH25 9RG, UK.
Division of Genetics and Genomics, The Roslin Institute and R(D)SVS, University of Edinburgh, Easter Bush, Midlothian EH25 9RG, UK.
Dev Biol. 2014 Aug 15;392(2):209-20. doi: 10.1016/j.ydbio.2014.05.025. Epub 2014 Jun 5.
Sonic hedgehog (SHH) plays a central role in patterning numerous embryonic tissues including, classically, the developing limb bud where it controls digit number and identity. This study utilises the polydactylous Silkie (Slk) chicken breed, which carries a mutation in the long range limb-specific regulatory element of SHH, the ZRS. Using allele specific SHH expression analysis combined with quantitative protein analysis, we measure allele specific changes in SHH mRNA and concentration of SHH protein over time. This confirms that the Slk ZRS enhancer mutation causes increased SHH expression in the posterior leg mesenchyme. Secondary consequences of this increased SHH signalling include increased FGF pathway signalling and growth as predicted by the SHH/GREM1/FGF feedback loop and the Growth/Morphogen models. Manipulation of Hedgehog, FGF signalling and growth demonstrate that anterior-ectopic expression of SHH and induction of preaxial polydactyly is induced secondary to increased SHH signalling and Hedgehog-dependent growth directed from the posterior limb. We predict that increased long range SHH signalling acts in combination with changes in activation of SHH transcription from the Slk ZRS allele. Through analysis of the temporal dynamics of anterior SHH induction we predict a gene regulatory network which may contribute to activation of anterior SHH expression from the Slk ZRS.
Sonic hedgehog (SHH) 在许多胚胎组织的模式形成中发挥着核心作用,包括经典的发育肢体芽,它控制着数字的数量和身份。本研究利用多指丝毛鸡(Slk)品种,该品种携带 SHH 的长程肢体特异性调节元件 ZRS 的突变。使用等位基因特异性 SHH 表达分析结合定量蛋白分析,我们测量了 SHH mRNA 和 SHH 蛋白的等位基因特异性随时间的变化。这证实了 Slk ZRS 增强子突变导致后肢间充质中 SHH 表达增加。这种增加的 SHH 信号的次要后果包括增加的 FGF 途径信号和生长,如 SHH/GREM1/FGF 反馈环和生长/形态发生模型所预测的。Hedgehog、FGF 信号和生长的操纵表明,SHH 的前外表达和前轴多趾的诱导是继发于增加的 SHH 信号和 Hedgehog 依赖性生长从后肢引导的。我们预测增加的长程 SHH 信号与 Slk ZRS 等位基因中 SHH 转录的激活变化相结合起作用。通过对前 SHH 诱导的时间动态分析,我们预测了一个基因调控网络,该网络可能有助于激活 Slk ZRS 的前 SHH 表达。