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CREB1 and Smad3 mediate TGF‑β3‑induced Smad7 expression in rat hepatic stellate cells
Liang Deng1, Lu Huang2, Qiongya Guo3
1Department of Gastroenterology, The First Affiliated Hospital of Chongqing Medical University, Chongqing 400016, P.R. China.
Abstract:
Transforming growth factor (TGF)‑β3 has previously been reported to antagonize hepatic fibrosis in vivo and in vitro. The present study aimed to investigate the mechanism underlying the involvement of TGF‑β3 in hepatic fibrosis. Short hairpin (sh)RNA‑cAMP-responsive element binding protein (CREB) 1 and small interfering (si)RNA‑Smad3 were utilized to silence the expression of CREB1 and Smad3 in hepatic stellate cells (HSCs), whereas the vector pRSV‑CREB1 was used to induce CREB1 overexpression in HSCs. Cells were treated with or without exogenous TGF‑β3 or TGF‑β1, and mRNA and protein expression levels were assessed using reverse transcription‑quantitative polymerase chain reaction and western blot analysis. Untreated cells served as the control group. Exogenous TGF‑β3 increased Smad7 mRNA and protein expression levels in rat HSCs, and CREB1 and Smad3 appeared to be implicated in the mechanism of Smad7. CREB1 knockdown inhibited the TGF‑β3‑induced upregulation of Smad7, whereas its overexpression potentiated the Smad7 upregulation in HSCs; conversely, CREB1 manipulations had no effect on Smad7 expression under basal conditions. In addition, TGF‑β3‑induced Smad7 upregulation was blocked when the activity of p38, a kinase upstream of CREB1, was inhibited. Furthermore, silencing Smad3 resulted in decreased Smad7 expression under basal conditions and in TGF‑β3‑stimulated cells. Notably, Smad7 expression appeared to also be induced by exogenous TGF‑β1, independent of CREB1. The present study demonstrated that TGF‑β3 increased Smad7 expression in HSCs, whereas CREB1 and Smad3 appeared to participate in the mechanism of induction. Smad3 is the key regulator whereas CREB‑1 acts as a co‑regulator. These results suggested that this mechanism may underlie the antagonizing effects of TGF‑β3 on hepatic fibrosis.
Insights
Transforming growth factor-beta3 (TGF-β3) upregulates Smad7 in hepatic stellate cells, a key mechanism in antagonizing liver fibrosis. Smad3 acts as a key regulator, with cAMP-responsive element binding protein 1 (CREB1) as a co-regulator.
Area of Science:
- Cell Biology
- Molecular Biology
- Hepatology
Background:
- Hepatic fibrosis is a significant health concern.
- Transforming growth factor-beta3 (TGF-β3) shows antifibrotic properties.
- The precise molecular mechanisms of TGF-β3's action in hepatic fibrosis require elucidation.
Purpose of the Study:
- To investigate the underlying mechanism of TGF-β3 in hepatic fibrosis.
- To determine the role of cAMP-responsive element binding protein 1 (CREB1) and Smad3 in TGF-β3-mediated Smad7 regulation.
Main Methods:
- Hepatic stellate cells (HSCs) were manipulated using short hairpin RNA (shRNA) for CREB1 and small interfering RNA (siRNA) for Smad3.
- CREB1 overexpression was induced using the pRSV-CREB1 vector.
- Cells were treated with TGF-β3 or TGF-β1, and gene and protein expression levels were analyzed via RT-qPCR and Western blot.
Main Results:
- TGF-β3 treatment increased Smad7 mRNA and protein expression in HSCs.
- CREB1 knockdown inhibited TGF-β3-induced Smad7 upregulation, while overexpression enhanced it.
- Smad3 silencing decreased Smad7 expression under both basal and TGF-β3-stimulated conditions.
- Inhibition of p38 kinase blocked TGF-β3-induced Smad7 upregulation, indicating CREB1's upstream regulation.
- TGF-β1 also induced Smad7 expression, independently of CREB1.
Conclusions:
- TGF-β3 upregulates Smad7 expression in HSCs through a mechanism involving CREB1 and Smad3.
- Smad3 acts as a key regulator, while CREB1 functions as a co-regulator in this process.
- This TGF-β3-Smad7 pathway is a potential mechanism underlying its antifibrotic effects in the liver.
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