Department for Molecular Evolution and Development, Centre of Organismal Systems Biology, University of Vienna, Althanstraße 14, A-1090 Vienna, Austria.
Development. 2011 Nov;138(22):4911-9. doi: 10.1242/dev.068122. Epub 2011 Oct 17.
In triploblastic animals, mesoderm gives rise to many tissues and organs, including muscle. By contrast, the representatives of the diploblastic phylum Cnidaria (corals, sea anemones, jellyfish and hydroids) lack mesoderm but possess muscle. In vertebrates and insects, the transcription factor Mef2 plays a pivotal role in muscle differentiation; however, it is also an important regulator of neuron differentiation and survival. In the sea anemone Nematostella vectensis, an organism that lacks mesoderm but has muscles and neurons, Mef2 (Nvmef2) has been reported in single ectodermal cells of likely neural origin. To our surprise, we found that Nvmef2 is alternatively spliced, forming differentially expressed variants. Using morpholino-mediated knockdown and mRNA injection, we demonstrate that specific splice variants of Nvmef2 are required for the proliferation and differentiation of endodermal cells and for the development of ectodermal nematocytes, a neuronal cell type. Moreover, we identified a small conserved motif in the transactivation domain that is crucially involved in the endodermal function of Nvmef2. The identification of a crucial and conserved motif in the transactivation domain predicts a similarly important role in vertebrate Mef2 function. This is the first functional study of a determinant of several mesodermal derivatives in a diploblastic animal. Our data suggest that the involvement of alternative splice variants of Mef2 in endomesoderm and neuron differentiation predates the cnidarian-bilaterian split.
在三胚层动物中,中胚层产生许多组织和器官,包括肌肉。相比之下,二胚层门刺胞动物(珊瑚、海葵、水母和水螅)缺乏中胚层,但拥有肌肉。在脊椎动物和昆虫中,转录因子 Mef2 在肌肉分化中发挥关键作用;然而,它也是神经元分化和存活的重要调节剂。在海葵 Nematostella vectensis 中,一种缺乏中胚层但具有肌肉和神经元的生物,据报道 Mef2(Nvmef2)存在于可能具有神经起源的单个外胚层细胞中。令我们惊讶的是,我们发现 Nvmef2 被选择性剪接,形成表达不同的变体。通过使用形态发生素介导的敲低和 mRNA 注射,我们证明了 Nvmef2 的特定剪接变体对于内胚层细胞的增殖和分化以及外胚层纤毛细胞(一种神经元细胞类型)的发育是必需的。此外,我们在转录激活结构域中鉴定出一个小的保守基序,该基序对于 Nvmef2 的内胚层功能至关重要。转录激活结构域中关键保守基序的鉴定预测了在脊椎动物 Mef2 功能中具有类似重要的作用。这是首次在二胚层动物中对几个中胚层衍生物的决定因素进行功能研究。我们的数据表明,Mef2 的选择性剪接变体参与内胚层和神经元分化的情况早于刺胞动物-两侧对称动物的分化。