Department of Developmental Biology and Neurosciences, Graduate School of Life Sciences, Tohoku University, Aramaki-Aza-Aoba 6-3, Aoba-ku, Sendai 980-8578, Japan.
Department of Developmental Biology and Neurosciences, Graduate School of Life Sciences, Tohoku University, Aramaki-Aza-Aoba 6-3, Aoba-ku, Sendai 980-8578, Japan.
Dev Biol. 2014 Apr 1;388(1):57-67. doi: 10.1016/j.ydbio.2014.01.018. Epub 2014 Feb 1.
The Hippo signaling pathway is conserved from insects to mammals and is important for multiple processes, including cell proliferation, apoptosis and tissue homeostasis. Hippo signaling is also crucial for regeneration, including intercalary regeneration, of the whole body in the flatworm and of the leg in the cricket. However, its role in vertebrate epimorphic regeneration is unknown. Therefore, to identify principles of regeneration that are conserved among bilaterians, we investigated the role of Hippo signaling in the limb bud regeneration of an anuran amphibian, Xenopus laevis. We found that a transcription factor, Yap1, an important downstream effector of Hippo signaling, is upregulated in the regenerating limb bud. To evaluate Yap1׳s function in limb bud regeneration, we made transgenic animals that expressed a dominant-negative form of Yap under a heat-shock promoter. Overexpression of a dominant-negative form of Yap in tadpoles reduced cell proliferation, induced ectopic apoptosis, perturbed the expression domains of limb-patterning genes including hoxa13, hoxa11, and shh in the regenerating limb bud. Transient expression of a dominant-negative Yap in transgenic tadpoles also caused limb bud regeneration defects, and reduced intercalary regeneration. These results indicate that Yap1 has a crucial role in controlling the limb regenerative capacity in Xenopus, and suggest that the involvement of Hippo signaling in regeneration is conserved between vertebrates and invertebrates. This finding provides molecular evidence that common principles underlie regeneration across phyla, and may contribute to the development of new therapies in regenerative medicine.
Hippo 信号通路在从昆虫到哺乳动物的生物中是保守的,对于包括细胞增殖、凋亡和组织稳态在内的多种过程都很重要。Hippo 信号通路对于包括扁形动物的整体间插再生和蟋蟀的腿的再生在内的再生也至关重要。然而,其在脊椎动物的后生性再生中的作用尚不清楚。因此,为了确定在两侧对称动物中保守的再生原则,我们研究了 Hippo 信号通路在非洲爪蟾(Xenopus laevis)肢芽再生中的作用。我们发现转录因子 Yap1(Hippo 信号通路的一个重要下游效应物)在再生的肢芽中上调。为了评估 Yap1 在肢芽再生中的功能,我们构建了在热休克启动子下表达显性负形式的 yap1 的转基因动物。在蝌蚪中过表达显性负形式的 yap1 会降低细胞增殖,诱导异位凋亡,并扰乱包括 hoxa13、hoxa11 和 shh 在内的肢模式基因在再生肢芽中的表达域。在转基因蝌蚪中瞬时表达显性负形式的 yap1 也会导致肢芽再生缺陷,并减少间插再生。这些结果表明 Yap1 在控制非洲爪蟾的肢再生能力方面起着至关重要的作用,并表明 Hippo 信号通路在再生中的参与在脊椎动物和无脊椎动物之间是保守的。这一发现为跨门再生提供了分子证据,可能有助于再生医学中新型疗法的发展。