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Time Point-Based Integrative Analyses of Deep-Transcriptome Identify Four Signal Pathways in Blastemal Regeneration of Zebrafish Lower Jaw

机译:基于时间点的深转录组综合分析确定了斑马鱼下颌Bl再生中的四个信号通路

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There has been growing interest in applying tissue engineering to stem cell-based regeneration therapies. We have previously reported that zebrafish can faithfully regenerate complicated tissue structures through blastemal cell type conversions and tissue reorganization. To unveil the regenerative factors and engineering arts of blastemal regeneration, we conducted transcriptomal analyses at four time points corresponding to preamputation, re-epitheliation, blastemal formation, and respecification. By combining the hierarchical gene ontology term network, the DAVID annotation system, and Euclidean distance clustering, we identified four signaling pathways: foxi1-foxo1b-pou3f1, pax3a-mant3a-col11/col2, pou5f1-cdx4-kdrl, and isl1-wnt11 PCP-sox9a. Results from immunohistochemical staining and promoter-driven transgenic fish suggest that these pathways, respectively, define wound epidermis reconstitution, cell type conversions, blastemal angiogenesis/vasculogenesis, and cartilage matrix-orientation. Foxi1 morpholinoknockdown caused expansions of Foxo1b-and Pax3a-expression in the basal layer-blastemal junction region. Moreover, foxi1 morphants displayed increased sox9a and hoxa2b transcripts in the embryonic pharyngeal arches. Thus, a Foxi1 signal switch is required to establish correct tissue patterns, including re-epitheliation and blastema formation. This study provides novel insight into a blastema regeneration strategy devised by epithelial cell transdifferentiation, blood vessel engineering, and cartilage matrix deposition.
机译:将组织工程学应用于基于干细胞的再生疗法的兴趣日益浓厚。我们以前曾报道过,斑马鱼可以通过胚细胞类型转换和组织重组忠实地再生复杂的组织结构。为了揭示胚芽再生的再生因子和工程技术,我们在四个时间点进行了转录组分析,分别对应于预截肢,再上皮形成,胚芽形成和重新指定。通过结合分层基因本体术语网络,DAVID注释系统和欧氏距离聚类,我们确定了四个信号传导途径:foxi1-foxo1b-pou3f1,pax3a-mant3a-col11 / col2,pou5f1-cdx4-kdrl和isl1-wnt11 PCP -sox9a。免疫组织化学染色和启动子驱动的转基因鱼的结果表明,这些途径分别定义了伤口表皮的重构,细胞类型的转化,胚盘血管生成/血管生成和软骨基质的定向。 Foxi1 morpholinoknockdown导致在基底层-胚芽接合区Foxo1b和Pax3a表达的扩展。此外,foxi1 morphants在胚胎咽弓中显示出增加的sox9a和hoxa2b转录本。因此,需要Foxi1信号开关来建立正确的组织模式,包括重新上皮形成和胚层形成。这项研究为上皮细胞转分化,血管工程和软骨基质沉积所设计的胚细胞再生策略提供了新的见识。

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