FGF signalling plays similar roles in development and regeneration of the skeleton in the brittle star Amphiura filiformis

A. Czarkwiani, D. Dylus, L. Carballo, P. Oliveri
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引用次数: 20

Abstract

Regeneration is an adult developmental process considered to be an epiphenomenon of embryonic development. Although several studies have shown that various embryonic genes are expressed during regeneration, there have been no large-scale, direct and functional comparative studies between the development and regeneration of a specific structure in one animal. Here, we use the brittle star Amphiura filiformis to characterise the role of the FGF signalling pathway during skeletal development and regeneration. In both processes, we find the ligands expressed in ectodermal cells flanking underlying mesodermal cells, and the receptors expressed specifically by these skeletogenic cells. Perturbation of FGF but not VEGF signalling during skeletogenesis completely inhibited skeleton formation in both embryogenesis and regeneration, without affecting other key developmental processes like cell migration or proliferation. Transcriptome-wide differential analysis identified a highly similar cohort of skeletogenic differentiation genes downstream of the FGF signalling pathway, whereas upstream transcription factors involved in the initial specification of the skeletogenic lineage where unaffected. Comparison to the sea urchin indicated that many of the affected genes are associated with differentiation. Moreover, several genes showed no homology to a cohort from other species, leading to the discovery of brittle star specific, downstream skeletogenic genes. In conclusion, our results show that the FGF pathway is crucial for skeletogenesis in the brittle star, as it is in other deuterostomes, and for the first time provide evidence for the re-deployment of a gene regulatory module during both regeneration and development.
FGF信号在蛇尾丝状Amphiura filiformis骨骼的发育和再生中起着类似的作用
再生是一种成人发育过程,被认为是胚胎发育的附带现象。虽然一些研究表明,多种胚胎基因在再生过程中表达,但尚未对同一动物的特定结构的发育和再生进行大规模、直接和功能的比较研究。在这里,我们使用海蛇尾丝状Amphiura filiformis来表征FGF信号通路在骨骼发育和再生中的作用。在这两个过程中,我们发现配体在中胚层细胞两侧的外胚层细胞中表达,而受体则在这些成骨细胞中特异性表达。在骨骼形成过程中,干扰FGF而非VEGF信号完全抑制胚胎发生和再生过程中的骨骼形成,而不影响其他关键的发育过程,如细胞迁移或增殖。转录组范围内的差异分析发现了FGF信号通路下游高度相似的骨骼分化基因队列,而参与骨骼分化谱系初始规范的上游转录因子未受影响。与海胆的比较表明,许多受影响的基因与分化有关。此外,有几个基因显示与其他物种的队列没有同源性,从而发现了海蛇尾特有的下游骨骼形成基因。总之,我们的研究结果表明,与其他后口动物一样,FGF通路对海蛇尾的骨骼形成至关重要,并首次为再生和发育过程中基因调控模块的重新部署提供了证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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