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1
Tak1, Smad4 and Trim33 redundantly mediate TGF-β3 signaling during palate development.Tak1、Smad4和Trim33在腭部发育过程中冗余介导TGF-β3信号传导。
Dev Biol. 2015 Feb 15;398(2):231-41. doi: 10.1016/j.ydbio.2014.12.006. Epub 2014 Dec 16.
2
Tgf-beta3-induced palatal fusion is mediated by Alk-5/Smad pathway.转化生长因子β3诱导的腭融合由Alk-5/ Smad信号通路介导。
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3
Cell autonomous requirement for Tgfbr2 in the disappearance of medial edge epithelium during palatal fusion.在腭融合过程中内侧边缘上皮消失时,Tgfbr2的细胞自主需求。
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4
Tgfb1 expressed in the Tgfb3 locus partially rescues the cleft palate phenotype of Tgfb3 null mutants.在Tgfb3基因座中表达的Tgfb1可部分挽救Tgfb3基因敲除突变体的腭裂表型。
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Deciphering TGF-β3 function in medial edge epithelium specification and fusion during mouse secondary palate development.解析转化生长因子-β3在小鼠次生腭发育过程中内侧边缘上皮细胞特化与融合中的作用。
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Induction of palate epithelial mesenchymal transition by transforming growth factor β3 signaling.转化生长因子 β3 信号诱导腭上皮间充质转化。
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TGF-beta3-induced palatogenesis requires matrix metalloproteinases.转化生长因子β3诱导的腭形成需要基质金属蛋白酶。
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TGF-β-activated kinase 1 (Tak1) mediates agonist-induced Smad activation and linker region phosphorylation in embryonic craniofacial neural crest-derived cells.TGF-β 激活激酶 1(Tak1)介导激动剂诱导的胚胎颅面神经嵴衍生细胞中的 Smad 激活和连接区磷酸化。
J Biol Chem. 2013 May 10;288(19):13467-80. doi: 10.1074/jbc.M112.431775. Epub 2013 Apr 1.

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A unique form of collective epithelial migration is crucial for tissue fusion in the secondary palate and can overcome loss of epithelial apoptosis.一种独特的集体上皮细胞迁移形式对于二次腭部的组织融合至关重要,并能克服上皮细胞凋亡的丧失。
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Pharmacological inhibition of TAK1, with the selective inhibitor takinib, alleviates clinical manifestation of arthritis in CIA mice.药理学抑制 TAK1,使用选择性抑制剂替那替尼,可减轻 CIA 小鼠关节炎的临床表现。
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本文引用的文献

1
Control elements targeting Tgfb3 expression to the palatal epithelium are located intergenically and in introns of the upstream Ift43 gene.将Tgfb3表达靶向至腭上皮的调控元件位于上游Ift43基因的基因间区域和内含子中。
Front Physiol. 2014 Jul 7;5:258. doi: 10.3389/fphys.2014.00258. eCollection 2014.
2
Signaling networks in palate development.腭发育中的信号转导网络。
Wiley Interdiscip Rev Syst Biol Med. 2014 May-Jun;6(3):271-8. doi: 10.1002/wsbm.1265. Epub 2014 Mar 18.
3
Molecular mechanisms of epithelial-mesenchymal transition.上皮-间质转化的分子机制。
Nat Rev Mol Cell Biol. 2014 Mar;15(3):178-96. doi: 10.1038/nrm3758.
4
Smad4 and Trim33/Tif1γ redundantly regulate neural stem cells in the developing cortex.Smad4和Trim33/Tif1γ在发育中的皮质中对神经干细胞发挥冗余调控作用。
Cereb Cortex. 2014 Nov;24(11):2951-63. doi: 10.1093/cercor/bht149. Epub 2013 Jun 13.
5
The TGFβ-induced phosphorylation and activation of p38 mitogen-activated protein kinase is mediated by MAP3K4 and MAP3K10 but not TAK1.TGFβ 诱导的 p38 丝裂原活化蛋白激酶的磷酸化和激活是由 MAP3K4 和 MAP3K10 介导的,但不是 TAK1。
Open Biol. 2013 Jun 12;3(6):130067. doi: 10.1098/rsob.130067.
6
TGF-β-activated kinase 1 (Tak1) mediates agonist-induced Smad activation and linker region phosphorylation in embryonic craniofacial neural crest-derived cells.TGF-β 激活激酶 1(Tak1)介导激动剂诱导的胚胎颅面神经嵴衍生细胞中的 Smad 激活和连接区磷酸化。
J Biol Chem. 2013 May 10;288(19):13467-80. doi: 10.1074/jbc.M112.431775. Epub 2013 Apr 1.
7
Murine craniofacial development requires Hdac3-mediated repression of Msx gene expression.鼠类颅面发育需要组蛋白去乙酰化酶 3 介导的 Msx 基因表达抑制。
Dev Biol. 2013 May 15;377(2):333-44. doi: 10.1016/j.ydbio.2013.03.008. Epub 2013 Mar 16.
8
Smad4-Irf6 genetic interaction and TGFβ-mediated IRF6 signaling cascade are crucial for palatal fusion in mice.Smad4-Irf6 基因相互作用和 TGFβ 介导的 IRF6 信号级联对于小鼠腭裂融合至关重要。
Development. 2013 Mar;140(6):1220-30. doi: 10.1242/dev.089615. Epub 2013 Feb 13.
9
Mechanism and in vitro pharmacology of TAK1 inhibition by (5Z)-7-Oxozeaenol.(5Z)-7-氧代玉米赤霉醇抑制 TAK1 的机制及体外药理学研究。
ACS Chem Biol. 2013 Mar 15;8(3):643-50. doi: 10.1021/cb3005897. Epub 2013 Jan 7.
10
Intra-amniotic transient transduction of the periderm with a viral vector encoding TGFβ3 prevents cleft palate in Tgfβ3(-/-) mouse embryos.病毒载体介导的瞬时转染羊膜的板层基质可预防 TGFβ3(-/-) 小鼠胚胎的腭裂。
Mol Ther. 2013 Jan;21(1):8-17. doi: 10.1038/mt.2012.135. Epub 2012 Oct 23.

Tak1、Smad4和Trim33在腭部发育过程中冗余介导TGF-β3信号传导。

Tak1, Smad4 and Trim33 redundantly mediate TGF-β3 signaling during palate development.

作者信息

Lane Jamie, Yumoto Kenji, Azhar Mohamad, Ninomiya-Tsuji Jun, Inagaki Maiko, Hu Yingling, Deng Chu-Xia, Kim Jieun, Mishina Yuji, Kaartinen Vesa

机构信息

Department of Biologic and Materials Sciences, University of Michigan School of Dentistry, Ann Arbor, MI 48019, USA.

Department of Pediatrics, Indiana University, Indianapolis, IN, USA.

出版信息

Dev Biol. 2015 Feb 15;398(2):231-41. doi: 10.1016/j.ydbio.2014.12.006. Epub 2014 Dec 16.

DOI:10.1016/j.ydbio.2014.12.006
PMID:25523394
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4314443/
Abstract

Transforming growth factor-beta3 (TGF-β3) plays a critical role in palatal epithelial cells by inducing palatal epithelial fusion, failure of which results in cleft palate, one of the most common birth defects in humans. Recent studies have shown that Smad-dependent and Smad-independent pathways work redundantly to transduce TGF-β3 signaling in palatal epithelial cells. However, detailed mechanisms by which this signaling is mediated still remain to be elucidated. Here we show that TGF-β activated kinase-1 (Tak1) and Smad4 interact genetically in palatal epithelial fusion. While simultaneous abrogation of both Tak1 and Smad4 in palatal epithelial cells resulted in characteristic defects in the anterior and posterior secondary palate, these phenotypes were less severe than those seen in the corresponding Tgfb3 mutants. Moreover, our results demonstrate that Trim33, a novel chromatin reader and regulator of TGF-β signaling, cooperates with Smad4 during palatogenesis. Unlike the epithelium-specific Smad4 mutants, epithelium-specific Tak1:Smad4- and Trim33:Smad4-double mutants display reduced expression of Mmp13 in palatal medial edge epithelial cells, suggesting that both of these redundant mechanisms are required for appropriate TGF-β signal transduction. Moreover, we show that inactivation of Tak1 in Trim33:Smad4 double conditional knockouts leads to the palatal phenotypes which are identical to those seen in epithelium-specific Tgfb3 mutants. To conclude, our data reveal added complexity in TGF-β signaling during palatogenesis and demonstrate that functionally redundant pathways involving Smad4, Tak1 and Trim33 regulate palatal epithelial fusion.

摘要

转化生长因子-β3(TGF-β3)通过诱导腭上皮细胞融合在腭部上皮细胞中发挥关键作用,融合失败会导致腭裂,这是人类最常见的出生缺陷之一。最近的研究表明,Smad依赖和Smad非依赖途径在腭上皮细胞中协同转导TGF-β3信号。然而,该信号传导的详细机制仍有待阐明。在这里,我们表明TGF-β激活激酶-1(Tak1)和Smad4在腭上皮融合中存在基因相互作用。虽然在腭上皮细胞中同时缺失Tak1和Smad4会导致继发腭前后部出现特征性缺陷,但这些表型不如相应的Tgfb3突变体严重。此外,我们的结果表明,Trim33是一种新型的染色质读取器和TGF-β信号调节剂,在腭发育过程中与Smad4协同作用。与上皮特异性Smad4突变体不同,上皮特异性Tak1:Smad4和Trim33:Smad4双突变体在腭内侧边缘上皮细胞中Mmp13的表达降低,这表明这两种冗余机制对于适当的TGF-β信号转导都是必需的。此外,我们表明在Trim33:Smad4双条件敲除中Tak1的失活会导致与上皮特异性Tgfb3突变体相同的腭部表型。总之,我们的数据揭示了腭发育过程中TGF-β信号传导的复杂性增加,并表明涉及Smad4、Tak1和Trim33的功能冗余途径调节腭上皮融合。