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FGF 信号在短腕八腕目星虫的骨骼发育和再生中发挥相似的作用。

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

机构信息

Department of Genetics, Evolution and Environment, University College London, London WC1E 6BT, UK.

Centre for Mathematics, Physics and Engineering in the Life Sciences and Experimental Biology, University College London, London WC1E 6BT, UK.

出版信息

Development. 2021 May 15;148(10). doi: 10.1242/dev.180760. Epub 2021 May 27.

Abstract

Regeneration as an adult developmental process is in many aspects similar to embryonic development. Although many studies point out similarities and differences, no large-scale, direct and functional comparative analyses between development and regeneration of a specific cell type or structure in one animal exist. Here, we use the brittle star Amphiura filiformis to characterise the role of the FGF signalling pathway during skeletal development in embryos and arm regeneration. In both processes, we find ligands expressed in ectodermal cells that flank underlying skeletal mesenchymal cells, which express the receptors. Perturbation of FGF signalling showed inhibited skeleton formation in both embryogenesis and regeneration, without affecting other key developmental processes. Differential transcriptome analysis finds mostly differentiation genes rather than transcription factors to be downregulated in both contexts. Moreover, comparative gene analysis allowed us to discover brittle star-specific differentiation genes. In conclusion, our results show that the FGF pathway is crucial for skeletogenesis in the brittle star, as in other deuterostomes, and provide evidence for the re-deployment of a developmental gene regulatory module during regeneration.

摘要

再生作为一种成年发育过程,在许多方面与胚胎发育相似。尽管许多研究指出了相似性和差异性,但针对特定细胞类型或结构在动物体内的发育和再生之间的大规模、直接和功能比较分析尚未存在。在这里,我们使用短腕八腕海星(Amphiura filiformis)来描述 FGF 信号通路在胚胎骨骼发育和腕再生过程中的作用。在这两个过程中,我们都发现了在侧翼下方骨骼间充质细胞的外胚层细胞中表达的配体,而这些受体则在细胞中表达。干扰 FGF 信号表明,在胚胎发生和再生过程中,骨骼形成都受到抑制,而不影响其他关键发育过程。差异转录组分析发现,在这两种情况下,下调的基因大多是分化基因,而不是转录因子。此外,比较基因分析使我们能够发现短腕八腕海星特有的分化基因。总之,我们的结果表明,FGF 通路对于短腕八腕海星的骨骼发生至关重要,就像在其他后口动物中一样,并为再生过程中发育基因调控模块的重新部署提供了证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5de/8180256/e192ccda32fe/develop-148-180760-g1.jpg

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