Tail Fin Regeneration in Zebrafish: The Role of Non-canonical Crosstalk Between STAT3 and Vitamin D Pathway.

IF 10 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY International Journal of Biological Sciences Pub Date : 2025-01-01 DOI:10.7150/ijbs.96400
Annachiara Tesoriere, Rachele Ghirardo, Francesca Terrin, Francesco Sernesi, Giacomo Meneghetti, Luisa Dalla Valle, Alberto Dinarello, Francesco Argenton
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Abstract

Stat3 is a transcription factor with a key role in cell proliferation and migration. Using the stat3-/- zebrafish line we showed that the stat3 genetic ablation results in a marked decrease of tail fin regrowth, demonstrating that this transcription factor is fundamental in the regeneration process. Stat3 activity is finely modulated by post-translational modifications that occur in several residues of the protein (i.e., Y705 and S727 phosphorylation), with tissue-specific effects. Using the newly generated stat3S→A751 zebrafish line, we demonstrated that the Stat3 phosphorylation in the non-canonical S751 site (homologous of mammalian serine 727) is required for the regeneration of tail fin in both larval and adult stage, even if this phosphorylation has largely been reported to have marginal roles in Stat3 activity. Our analysis showed that both stat3-/- and stat3S→A751 mutant zebrafish lines have alterations in the expression of genes involved in epithelial and bone tissue regeneration, including genes coding for the vitamin D signaling pathway. Interestingly, the reduced regeneration activity in zebrafish stat3-/- and stat3A751/A751 larvae is partially rescued by vitamin D treatment. Together, these results reveal a Stat3-vitamin D co-regulatory mechanism during zebrafish tail fin regeneration.

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斑马鱼尾鳍再生:STAT3和维生素D通路之间非规范串扰的作用。
Stat3是一种转录因子,在细胞增殖和迁移中起关键作用。利用stat3-/-斑马鱼细胞系,我们发现stat3基因消融导致尾鳍再生显著减少,表明该转录因子在再生过程中起着重要作用。Stat3活性可通过翻译后修饰(即Y705和S727磷酸化)精细调节,具有组织特异性作用。使用新生成的stat3S→A751斑马鱼系,我们证明了在非规范的S751位点(哺乳动物丝氨酸727的同源)的Stat3磷酸化是鱼尾在幼虫和成鱼阶段再生所必需的,即使这种磷酸化在很大程度上被报道在Stat3活性中具有边缘作用。我们的分析表明,stat3-/-和stat3S→A751突变斑马鱼系参与上皮和骨组织再生的基因表达发生改变,包括编码维生素D信号通路的基因。有趣的是,斑马鱼stat3-/-和stat3A751/A751幼虫的再生活性降低可以通过维生素D处理部分恢复。总之,这些结果揭示了stat3 -维生素D在斑马鱼尾鳍再生过程中的共同调节机制。
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来源期刊
International Journal of Biological Sciences
International Journal of Biological Sciences 生物-生化与分子生物学
CiteScore
16.90
自引率
1.10%
发文量
413
审稿时长
1 months
期刊介绍: The International Journal of Biological Sciences is a peer-reviewed, open-access scientific journal published by Ivyspring International Publisher. It dedicates itself to publishing original articles, reviews, and short research communications across all domains of biological sciences.
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