一份来自棘纲水母的细胞类型图谱提供了从珊瑚虫到水母转变过程中细胞类型多样性变化的见解

Oliver Link, Stefan M Jahnel, Kristin Janicek, Johanna Kraus, Juan Daniel Montenegro, Bob Zimmerman, Brittney Wick, Alison G Cole, Ulrich Technau
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引用次数: 0

摘要

我们在这里提供了一个详细的单细胞转录组图谱,涵盖了世界性的棘球绦虫的生命周期。我们发现,在水母阶段,细胞类型多样性有所增加,这反映在表达的独特转录本数量的增加上。我们强调了Aurelia和Nematostella海葵之间的细胞补体和特异性途径的相似之处,这两个谱系相隔超过500个MY。我们发现神经腺谱系的几种细胞类型是由相同的转录因子指定的,这些转录因子是由水母动物和珊瑚虫共同祖先的基因复制产生的。这证实了基因复制是刺胞动物进化过程中细胞复杂性增加的一个来源,神经腺谱系可以追溯到所有刺胞动物的共同祖先。我们验证了与平滑肌和横纹肌分子图谱相对应的空间表达域,并跟踪了水母横纹肌的发育。我们的数据表明,水母伞下的横纹肌直接来源于平滑肌,但这两种肌肉细胞表型具有不同的分子特征。此外,对假定的细胞轨迹的重建表明,多能细胞状态来自于上皮层之间的组织,并突出了其他刺胞动物所不具有的分子特征。跨越水母生命周期的单细胞转录组图谱揭示了与水母形态相关的细胞复杂性增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Changes of cell-type diversity in the polyp-to-medusa metagenesis of the scyphozoan jellyfish Aurelia coerulea (formerly sp.1).

The life cycle of most medusozoan cnidarians is marked by the metagenesis from the asexually reproducing sessile polyp and the sexually reproducing motile medusa. At present it is unknown to what extent this drastic morphological transformation is accompanied by changes in the cell type composition. Here, we provide a single cell transcriptome atlas of the cosmopolitan scyphozoan Aurelia coerulea focussing on changes in cell-type composition during the transition from polyp to medusa. Notably, this transition marked by an increase in cell type diversity, including an expansion of neural subtypes. We find that two families of neuronal lineages are specified by homologous transcription factors in the sea anemone Nematostella vectensis and Aurelia coerulea, suggesting an origin in the common ancestor of medusozoans and anthozoans about 500 Myr ago. Our analysis suggests that gene duplications might be drivers for the increase of cellular complexity during the evolution of cnidarian neuroglandular lineages. One key medusozoan-specific cell type is the striated muscle in the subumbrella. Analysis of muscle fiber anatomy and gene expression raises the possibility that the striated muscles arise from a population of smooth muscle cells during strobilation. Although smooth and striated muscles are phenotypically distinct, both have a similar contractile complex, in contrast to bilaterian smooth and striated muscles. This suggests that in Aurelia, smooth and striated muscle cells may derive from the same progenitor cells.

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