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Tumor suppressor Smad4 is a transforming growth factor beta-inducible DNA binding protein
J M Yingling1, M B Datto, C Wong
1Department of Pharmacology and Cancer Biology, Duke University, Durham, North Carolina 27710, USA.
Abstract:
Members of the Smad family of proteins are thought to play important roles in transforming growth factor beta (TGF-beta)-mediated signal transduction. In response to TGF-beta, specific Smads become inducibly phosphorylated, form heteromers with Smad4, and undergo nuclear accumulation. In addition, overexpression of specific Smad combinations can mimic the transcriptional effect of TGF-beta on both the plasminogen activator inhibitor 1 (PAI-1) promoter and the reporter construct p3TP-Lux. Although these data suggest a role for Smads in regulating transcription, the precise nuclear function of these heteromeric Smad complexes remains largely unknown. Here we show that in Mv1Lu cells Smad3 and Smad4 form a TGF-beta-induced, phosphorylation-dependent, DNA binding complex that specifically recognizes a bipartite binding site within p3TP-Lux. Furthermore, we demonstrate that Smad4 itself is a DNA binding protein which recognizes the same sequence. Interestingly, mutations which eliminate the Smad DNA binding site do not interfere with either TGF-beta-dependent transcriptional activation or activation by Smad3/Smad4 cooverexpression. In contrast, mutation of adjacent AP1 sites within this context eliminates both TGF-beta-dependent transcriptional activation and activation in response to Smad3/Smad4 cooverexpression. Furthermore, concatemerized AP1 sites, in isolation, are activated by Smad3/Smad4 cooverexpression and, to a certain extent, by TGF-beta. Taken together, these data suggest that the Smad3/Smad4 complex has at least two separable nuclear functions: it forms a rapid, yet transient sequence-specific DNA binding complex, and it potentiates AP1-dependent transcriptional activation.
Insights
Smad3 and Smad4 proteins form a complex that binds DNA and enhances gene transcription. This complex has dual roles in transforming growth factor beta (TGF-beta) signaling, influencing both direct DNA binding and AP1-dependent activation.
Area of Science:
- Cellular Biology
- Molecular Biology
- Signal Transduction
Background:
- Smad proteins are key mediators of transforming growth factor beta (TGF-beta) signaling.
- TGF-beta signaling involves Smad phosphorylation, heteromerization, and nuclear translocation.
- The precise nuclear functions of Smad complexes remain incompletely understood.
Purpose of the Study:
- To elucidate the nuclear functions of Smad complexes in TGF-beta signal transduction.
- To investigate the DNA-binding properties and transcriptional regulatory roles of Smad3 and Smad4.
Main Methods:
- Utilized Mv1Lu cells for experiments.
- Analyzed TGF-beta-induced, phosphorylation-dependent DNA binding of Smad3/Smad4 complexes.
- Assessed transcriptional activation using reporter constructs (p3TP-Lux) and promoter/site mutations.
Main Results:
- Smad3 and Smad4 form a TGF-beta-induced, phosphorylation-dependent DNA-binding complex recognizing a specific site in p3TP-Lux.
- Smad4 is itself a DNA-binding protein.
- Transcriptional activation by TGF-beta and Smad3/Smad4 co-expression is dependent on AP1 sites, not the Smad-binding site.
- Smad3/Smad4 complexes potentiate AP1-dependent transcription.
Conclusions:
- The Smad3/Smad4 complex exhibits dual nuclear functions: transient sequence-specific DNA binding and potentiation of AP1-dependent transcription.
- These findings clarify the molecular mechanisms underlying Smad-mediated transcriptional regulation in TGF-beta signaling.