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滑雪抑制 TGF-β/磷酸化 Smad3 信号通路并加速软骨细胞的肥大分化。

Ski inhibits TGF-β/phospho-Smad3 signaling and accelerates hypertrophic differentiation in chondrocytes.

机构信息

Department of Orthopaedics and Rehabilitation, Center for Musculoskeletal Research, University of Rochester Medical Center, 601 Elmwood Avenue Box 665, Rochester, New York 14642, USA.

出版信息

J Cell Biochem. 2012 Jun;113(6):2156-66. doi: 10.1002/jcb.24089.

Abstract

Since transforming growing factor-β (TGF-β)/Smad signaling inhibits chondrocyte maturation, endogenous negative regulators of TGF-β signaling are likely also important regulators of the chondrocyte differentiation process. One such negative regulator, Ski, is an oncoprotein that is known to inhibit TGF-β/Smad3 signaling via its interaction with phospho-Smad3 and recruitment of histone deacetylases (HDACs) to the DNA binding complex. Based on this, we hypothesized that Ski inhibits TGF-β signaling and accelerates maturation in chondrocytes via recruitment of HDACs to transcriptional complexes containing Smads. We tested this hypothesis in chick upper sternal chondrocytes (USCs), where gain and loss of Ski expression experiments were performed. Over-expression of Ski not only reversed the inhibitory effect of TGF-β on the expression of hypertrophic marker genes such as type X collagen (colX) and osteocalcin, it induced these genes basally as well. Conversely, knockdown of Ski by RNA interference led to a reduction of colX and osteocalcin expression under basal conditions. Furthermore, Ski blocked TGF-β induction of cyclinD1 and caused a basal up-regulation of Runx2, consistent with the observed acceleration of hypertrophy. Regarding mechanism, not only does Ski associate with phospho-Smad2 and 3, but its association with phospho-Smad3 is required for recruitment of HDAC4 and 5. Implicating this recruitment of HDACs in the phenotypic effects of Ski in chondrocytes, the HDAC inhibitor SAHA reversed the up-regulation of colX and osteocalcin in Ski over-expressing cells. These results suggest that inhibition of TGF-β signaling by Ski, which involves its association with phospho-Smad3 and recruitment of HDAC4 and 5, leads to accelerated chondrocyte differentiation.

摘要

由于转化生长因子-β(TGF-β)/Smad 信号转导抑制软骨细胞成熟,因此 TGF-β 信号转导的内源性负调控因子可能也是软骨细胞分化过程的重要调节因子。Ski 是一种致癌蛋白,作为其中一种负调控因子,它通过与磷酸化 Smad3 相互作用并募集组蛋白去乙酰化酶(HDACs)到 DNA 结合复合物,从而抑制 TGF-β/Smad3 信号转导。基于这一点,我们假设 Ski 通过募集 HDACs 到包含 Smads 的转录复合物,抑制 TGF-β 信号转导并加速软骨细胞成熟。我们在鸡胸骨上软骨细胞(USCs)中进行了 Ski 表达的增益和缺失实验,以验证这一假说。Ski 的过表达不仅逆转了 TGF-β对肥大标志物基因(如 colX 和骨钙素)表达的抑制作用,还使其在基础状态下诱导这些基因的表达。相反,通过 RNA 干扰敲低 Ski 会导致基础状态下 colX 和骨钙素表达减少。此外,Ski 阻断了 TGF-β 诱导的 cyclinD1 的表达,并导致 Runx2 的基础上调,这与观察到的肥大加速相一致。关于机制,Ski 不仅与磷酸化 Smad2 和 3 结合,而且其与磷酸化 Smad3 的结合对于募集 HDAC4 和 5 是必需的。这表明 Ski 在软骨细胞中的表型效应涉及到 HDACs 的募集,HDAC 抑制剂 SAHA 逆转了 Ski 过表达细胞中 colX 和骨钙素的上调。这些结果表明,Ski 通过与磷酸化 Smad3 结合并募集 HDAC4 和 5 抑制 TGF-β 信号转导,从而导致软骨细胞分化加速。

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本文引用的文献

2
TGF-beta signalling through the Smad pathway.
Trends Cell Biol. 1997 May;7(5):187-92. doi: 10.1016/S0962-8924(97)01036-2.
3
Transforming growth factor-beta stimulates cyclin D1 expression through activation of beta-catenin signaling in chondrocytes.
J Biol Chem. 2006 Jul 28;281(30):21296-21304. doi: 10.1074/jbc.M600514200. Epub 2006 May 10.
4
Cyclin D1-cdk4 induce runx2 ubiquitination and degradation.
J Biol Chem. 2006 Jun 16;281(24):16347-53. doi: 10.1074/jbc.M603439200. Epub 2006 Apr 13.
5
Wnt induction of chondrocyte hypertrophy through the Runx2 transcription factor.
J Cell Physiol. 2006 Jul;208(1):77-86. doi: 10.1002/jcp.20656.
6
Smad3-deficient chondrocytes have enhanced BMP signaling and accelerated differentiation.
J Bone Miner Res. 2006 Jan;21(1):4-16. doi: 10.1359/JBMR.050911. Epub 2005 Sep 19.
7
Smad6 interacts with Runx2 and mediates Smad ubiquitin regulatory factor 1-induced Runx2 degradation.
J Biol Chem. 2006 Feb 10;281(6):3569-76. doi: 10.1074/jbc.M506761200. Epub 2005 Nov 18.
9
Repression of Runx2 function by TGF-beta through recruitment of class II histone deacetylases by Smad3.
EMBO J. 2005 Jul 20;24(14):2543-55. doi: 10.1038/sj.emboj.7600729. Epub 2005 Jun 30.
10
Bone morphogenetic proteins.
Growth Factors. 2004 Dec;22(4):233-41. doi: 10.1080/08977190412331279890.

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