Wijgerde Mark, McMahon Jill A, Rule Michael, McMahon Andrew P
Department of Molecular and Cellular Biology, The Biolabs, Harvard University, Cambridge, Massachusetts 02138, USA.
Genes Dev. 2002 Nov 15;16(22):2849-64. doi: 10.1101/gad.1025702.
The hedgehog signaling pathway organizes the developing ventral neural tube by establishing distinct neural progenitor fates along the dorsoventral axis. Smoothened (Smo) is essential for all Hedgehog (Hh) signaling, and genetic inactivation of Smo cells autonomously blocks the ability of cells to transduce the Hh signal. Using a chimeric approach, we examined the behavior of Smo null mutant neural progenitor cells in the developing vertebrate spinal cord, and we show that direct Hh signaling is essential for the specification of all ventral progenitor populations. Further, Hh signaling extends into the dorsal half of the spinal cord including the intermediate Dbx expression domain. Surprisingly, in the absence of Sonic hedgehog (Shh), we observe the presence of a Smo-dependent Hh signaling activity operating in the ventral half of the spinal cord that most likely reflects Indian hedgehog (Ihh) signaling originating from the underlying gut endoderm. Comparative studies of Shh, Smo, and Gli3 single and compound mutants reveal that Hh signaling acts in part to specify neural cell identity by counteracting the repressive action of Gli3 on p0, p1, p2, and pMN formation. However, whereas these cell identities are restored in Gli3/Smo compound mutants, correct stratification of the rescued ventral cell types is lost. Thus, Hh signaling is essential for organizing ventral cell pattern, possibly through the control of differential cell affinities.
刺猬信号通路通过沿背腹轴建立不同的神经祖细胞命运来组织发育中的腹侧神经管。 smoothened(Smo)对于所有刺猬(Hh)信号传导至关重要,Smo细胞的基因失活会自主阻断细胞转导Hh信号的能力。我们使用嵌合方法研究了Smo基因敲除突变体神经祖细胞在发育中的脊椎动物脊髓中的行为,并且我们表明直接的Hh信号传导对于所有腹侧祖细胞群的特化至关重要。此外,Hh信号传导延伸到脊髓的背侧半部,包括中间的Dbx表达域。令人惊讶的是,在没有音猬因子(Shh)的情况下,我们观察到在脊髓腹侧半部存在一种依赖Smo的Hh信号传导活性,这很可能反映了源自潜在肠内胚层的印度刺猬因子(Ihh)信号传导。对Shh、Smo和Gli3单突变体和复合突变体的比较研究表明,Hh信号传导部分通过抵消Gli3对p0、p1、p2和pMN形成的抑制作用来特化神经细胞身份。然而,虽然这些细胞身份在Gli3/Smo复合突变体中得以恢复,但获救的腹侧细胞类型的正确分层却丧失了。因此,Hh信号传导对于组织腹侧细胞模式至关重要,可能是通过控制差异细胞亲和力来实现的。