Allen Discovery Center at Tufts University, 200 Boston Ave., Suite 4600, Medford, MA, 01915, USA.
Allen Discovery Center at Tufts University, 200 Boston Ave., Suite 4600, Medford, MA, 01915, USA.
Dev Biol. 2020 Nov 1;467(1-2):51-65. doi: 10.1016/j.ydbio.2020.08.009. Epub 2020 Aug 31.
The coordination of tissue-level polarity with organism-level polarity is crucial in development, disease, and regeneration. Here, we characterize a new example of large-scale control of dynamic remodeling of body polarity. Exploiting the flexibility of the body plan in regenerating planarians, we used mirror duplication of the primary axis to show how established tissue-level polarity adapts to new organism-level polarity. Characterization of epithelial planar cell polarity revealed a remarkable reorientation of tissue polarity in double-headed planarians. This reorientation of cilia occurs even following irradiation-induced loss of all stem cells, suggesting independence of the polarity change from the formation of new cells. The presence of the two heads plays an important role in regulating the rate of change in overall polarity. We further present data that suggest that the nervous system itself adapts its polarity to match the new organismal anatomy as revealed by changes in nerve transport driving distinct regenerative outcomes. Thus, in planaria tissue-level polarity can dynamically reorient to match the organism-level anatomical configuration.
组织层面的极性与生物体层面的极性的协调在发育、疾病和再生中至关重要。在这里,我们描述了一个新的大规模控制生物体极性动态重塑的例子。我们利用再生水螅的身体计划的灵活性,通过镜像复制主轴来展示已建立的组织层面的极性如何适应新的生物体层面的极性。对上皮平面细胞极性的特征分析揭示了双头水螅组织极性的显著重新定向。这种纤毛的重新定向甚至发生在所有干细胞因辐射诱导而丢失之后,这表明极性的变化与新细胞的形成无关。两个头的存在在调节整体极性变化的速度方面起着重要作用。我们进一步提供的数据表明,神经系统本身会调整其极性以适应新的生物体解剖结构,这是通过神经运输的变化来揭示的,神经运输的变化会产生不同的再生结果。因此,在水螅中,组织层面的极性可以动态地重新定向以匹配生物体层面的解剖结构。