Gahan James M, Schnitzler Christine E, DuBuc Timothy Q, Doonan Liam B, Kanska Justyna, Gornik Sebastian G, Barreira Sofia, Thompson Kerry, Schiffer Philipp, Baxevanis Andreas D, Frank Uri
Centre for Chromosome Biology, School of Natural Sciences, National University of Ireland Galway, Galway, Ireland.
Whitney Laboratory for Marine Bioscience, University of Florida, St. Augustine, FL 320803, USA; Department of Biology, University of Florida, Gainesville, FL 32611, USA; Division of Intramural Research, National Human Genome Research Institute, National Institutes of Health, Bethesda, MD, USA.
Dev Biol. 2017 Aug 1;428(1):224-231. doi: 10.1016/j.ydbio.2017.06.006. Epub 2017 Jun 7.
The function of Notch signaling was previously studied in two cnidarians, Hydra and Nematostella, representing the lineages Hydrozoa and Anthozoa, respectively. Using pharmacological inhibition in Hydra and a combination of pharmacological and genetic approaches in Nematostella, it was shown in both animals that Notch is required for tentacle morphogenesis and for late stages of stinging cell maturation. Surprisingly, a role for Notch in neural development, which is well documented in bilaterians, was evident in embryonic Nematostella but not in adult Hydra. Adult neurogenesis in the latter seemed to be unaffected by DAPT, a drug that inhibits Notch signaling. To address this apparent discrepancy, we studied the role of Notch in Hydractinia echinata, an additional hydrozoan, in all life stages. Using CRISPR-Cas9 mediated mutagenesis, transgenesis, and pharmacological interference we show that Notch is dispensable for Hydractinia normal neurogenesis in all life stages but is required for the maturation of stinging cells and for tentacle morphogenesis. Our results are consistent with a conserved role for Notch in morphogenesis and nematogenesis across Cnidaria, and a lineage-specific loss of Notch dependence in neurogenesis in hydrozoans.
Notch信号通路的功能此前已在两种刺胞动物——水螅和星状海葵中进行了研究,它们分别代表水螅纲和珊瑚纲的谱系。通过对水螅进行药理学抑制,并在星状海葵中结合药理学和遗传学方法,研究表明,在这两种动物中,Notch对于触手形态发生和刺细胞成熟的后期阶段都是必需的。令人惊讶的是,Notch在神经发育中的作用在双侧对称动物中有充分记载,在星状海葵胚胎中很明显,但在成年水螅中却不明显。后者的成体神经发生似乎不受抑制Notch信号通路的药物DAPT的影响。为了解决这一明显的差异,我们研究了另一种水螅纲动物——刺胞水螅中Notch在所有生命阶段的作用。通过CRISPR-Cas9介导的诱变、转基因和药理学干扰,我们发现Notch在刺胞水螅的所有生命阶段对正常神经发生都不是必需的,但对刺细胞的成熟和触手形态发生是必需的。我们的结果与Notch在整个刺胞动物门的形态发生和刺丝囊形成中的保守作用一致,以及水螅纲动物在神经发生中Notch依赖性的谱系特异性丧失一致。