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.

BMC Cell Biology
|December 9, 2017
PubMed
Abstract

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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