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Quadruple zebrafish mutant reveals different roles of Mesp genes in somite segmentation between mouse and zebrafish

机译:四倍斑马鱼突变体揭示了Mesp基因在小鼠和斑马鱼之间的体节分割中的不同作用

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摘要

The segmental pattern of somites is generated by sequential conversion of the temporal periodicity provided by the molecular clock. Whereas the basic structure of this clock is conserved among different species, diversity also exists, especially in terms of the molecular network. The temporal periodicity is subsequently converted into the spatial pattern of somites, and Mesp2 plays crucial roles in this conversion in the mouse. However, it remains unclear whether Mesp genes play similar roles in other vertebrates. In this study, we generated zebrafish mutants lacking all four zebrafish Mesp genes by using TALEN-mediated genome editing. Contrary to the situation in the mouse Mesp2 mutant, in the zebrafish Mesp quadruple mutant embryos the positions of somite boundaries were clearly determined and morphological boundaries were formed, although their formation was not completely normal. However, each somite was caudalized in a similar manner to the mouse Mesp2 mutant, and the superficial horizontal myoseptum and lateral line primordia were not properly formed in the quadruple mutants. These results clarify the conserved and species-specific roles of Mesp in the link between the molecular clock and somite morphogenesis.
机译:体节的节段模式是通过分子时钟提供的时间周期的顺序转换生成的。尽管该时钟的基本结构在不同物种之间是保守的,但也存在多样性,尤其是在分子网络方面。随后将时间周期性转换为体节的空间模式,而Mesp2在小鼠的这种转换中起着至关重要的作用。但是,尚不清楚Mesp基因是否在其他脊椎动物中发挥类似作用。在这项研究中,我们通过使用TALEN介导的基因组编辑生成了缺少所有四个斑马鱼Mesp基因的斑马鱼突变体。与小鼠Mesp2突变体的情况相反,在斑马鱼Mesp四倍体突变体胚胎中,尽管确定的体形边界不是完全正常的,但可以清楚地确定体节边界的位置并形成了形态学边界。但是,每个体节都以类似于小鼠Mesp2突变体的方式尾部化,并且在四个突变体中未正确形成浅表水平肌隔和侧线原基。这些结果阐明了Mesp在分子钟和somite形态发生之间的联系中的保守和物种特异性作用。

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