Department of Biology, University of North Florida, Jacksonville, FL, United states of America.
Wake Forest Institute for Regenerative Medicine, Winston Salem, NC, United states of America.
PLoS One. 2020 May 12;15(5):e0232981. doi: 10.1371/journal.pone.0232981. eCollection 2020.
Cell signaling pathways play key roles in coordinating cellular events in development. The Notch signaling pathway is highly conserved across all multicellular animals and is known to coordinate a multitude of diverse cellular events, including proliferation, differentiation, fate specification, and cell death. Specific functions of the pathway are, however, highly context-dependent and are not well characterized in post-traumatic regeneration. Here, we use a small-molecule inhibitor of the pathway (DAPT) to demonstrate that Notch signaling is required for proper arm regeneration in the brittle star Ophioderma brevispina, a highly regenerative member of the phylum Echinodermata. We also employ a transcriptome-wide gene expression analysis (RNA-seq) to characterize the downstream genes controlled by the Notch pathway in the brittle star regeneration. We demonstrate that arm regeneration involves an extensive cross-talk between the Notch pathway and other cell signaling pathways. In the regrowing arm, Notch regulates the composition of the extracellular matrix, cell migration, proliferation, and apoptosis, as well as components of the innate immune response. We also show for the first time that Notch signaling regulates the activity of several transposable elements. Our data also suggests that one of the possible mechanisms through which Notch sustains its activity in the regenerating tissues is via suppression of Neuralized1.
细胞信号通路在协调发育过程中的细胞事件中起着关键作用。Notch 信号通路在所有多细胞动物中高度保守,已知可以协调多种不同的细胞事件,包括增殖、分化、命运特化和细胞死亡。然而,该途径的特定功能高度依赖于上下文,在创伤后再生中尚未得到很好的描述。在这里,我们使用该途径的一种小分子抑制剂(DAPT)来证明 Notch 信号对于短腕海星(Ophioderma brevispina)的手臂再生是必需的,短腕海星是棘皮动物门中高度再生的成员。我们还采用了全转录组基因表达分析(RNA-seq)来描述短腕海星再生过程中 Notch 途径控制的下游基因。我们证明手臂再生涉及 Notch 途径与其他细胞信号通路之间的广泛相互作用。在再生的手臂中,Notch 调节细胞外基质的组成、细胞迁移、增殖和凋亡,以及先天免疫反应的组成部分。我们还首次表明 Notch 信号调节几个转座元件的活性。我们的数据还表明,Notch 信号在再生组织中维持其活性的一种可能机制是通过抑制 Neuralized1。