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Published on: May 8, 2012
Molecular targets and signaling pathways regulated by nuclear translocation of syndecan-1
Tünde Szatmári1, Filip Mundt2, Ashish Kumar-Singh3
1Department of Laboratory Medicine, Division of Pathology, Karolinska Institutet, SE-14186, Stockholm, Sweden. tunde.szatmari@ki.se.
Background:
The cell-surface heparan sulfate proteoglycan syndecan-1 is important for tumor cell proliferation, migration, and cell cycle regulation in a broad spectrum of malignancies. Syndecan-1, however, also translocates to the cell nucleus, where it might regulate various molecular functions.
Results:
We used a fibrosarcoma model to dissect the functions of syndecan-1 related to the nucleus and separate them from functions related to the cell-surface. Nuclear translocation of syndecan-1 hampered the proliferation of fibrosarcoma cells compared to the mutant lacking nuclear localization signal. The growth inhibitory effect of nuclear syndecan-1 was accompanied by significant accumulation of cells in the G0/G1 phase, which indicated a possible G1/S phase arrest. We implemented multiple, unsupervised global transcriptome and proteome profiling approaches and combined them with functional assays to disclose the molecular mechanisms that governed nuclear translocation and its related functions. We identified genes and pathways related to the nuclear compartment with network enrichment analysis of the transcriptome and proteome. The TGF-β pathway was activated by nuclear syndecan-1, and three genes were significantly altered with the deletion of nuclear localization signal: EGR-1 (early growth response 1), NEK11 (never-in-mitosis gene a-related kinase 11), and DOCK8 (dedicator of cytokinesis 8). These candidate genes were coupled to growth and cell-cycle regulation. Nuclear translocation of syndecan-1 influenced the activity of several other transcription factors, including E2F, NFκβ, and OCT-1. The transcripts and proteins affected by syndecan-1 showed a striking overlap in their corresponding biological processes. These processes were dominated by protein phosphorylation and post-translation modifications, indicative of alterations in intracellular signaling. In addition, we identified molecules involved in the known functions of syndecan-1, including extracellular matrix organization and transmembrane transport.
Conclusion:
Collectively, abrogation of nuclear translocation of syndecan-1 resulted in a set of changes clustering in distinct patterns, which highlighted the functional importance of nuclear syndecan-1 in hampering cell proliferation and the cell cycle. This study emphasizes the importance of the localization of syndecan-1 when considering its effects on tumor cell fate.
Insights
Nuclear syndecan-1 (SDC1) inhibits fibrosarcoma cell proliferation by causing G1/S phase arrest. This study reveals SDC1's nuclear role in regulating cell cycle and tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Syndecan-1 (SDC1), a cell-surface proteoglycan, is crucial for tumor cell proliferation, migration, and cell cycle regulation.
- SDC1 also translocates to the cell nucleus, suggesting potential regulatory roles in molecular functions.
Purpose of the Study:
- To investigate the specific functions of nuclear syndecan-1 (SDC1) in fibrosarcoma cells.
- To differentiate nuclear SDC1 functions from its cell-surface roles.
- To elucidate the molecular mechanisms underlying SDC1 nuclear translocation and its impact on cell proliferation and the cell cycle.
Main Methods:
- Utilized a fibrosarcoma model to study SDC1 localization and function.
- Employed unsupervised global transcriptome and proteome profiling.
- Integrated functional assays and network enrichment analysis to identify molecular pathways and genes affected by nuclear SDC1.
Main Results:
- Nuclear SDC1 translocation significantly hampered fibrosarcoma cell proliferation, leading to G0/G1 phase cell cycle arrest.
- Global profiling identified the TGF-β pathway activation and alterations in EGR-1, NEK11, and DOCK8 gene expression.
- Nuclear SDC1 influenced transcription factors (E2F, NFκβ, OCT-1) and modulated intracellular signaling pathways, including protein phosphorylation and post-translation modifications.
Conclusions:
- Abrogation of SDC1 nuclear translocation resulted in distinct molecular changes, underscoring its critical role in inhibiting tumor cell proliferation and cell cycle progression.
- The study highlights the functional significance of SDC1's subcellular localization in determining its effects on tumor cell fate.
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