The Oncosuppressive Properties of KCTD1: Its Role in Cell Growth and Mobility

Giovanni Smaldone1, Giovanni Pecoraro1, Katia Pane1

  • 1IRCCS SYNLAB SDN, Via E. Gianturco 113, 80143 Naples, Italy.

Biology
|March 29, 2023
PubMed

Insights

KCTD1 acts as a tumor suppressor in colorectal cancer by downregulating β-catenin. Its loss increases cancer cell motility and stemness, suggesting a novel role for KCTD proteins in cancer progression.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Cell Biology

Background:

  • The KCTD protein family is traditionally linked to neurological functions.
  • Emerging evidence highlights KCTD proteins' roles in various biological processes, including cancer.
  • KCTD1, not involved in ubiquitination, is investigated for its role in colorectal cancer.

Purpose of the Study:

  • To investigate the role of KCTD1 in colorectal cancer.
  • To assess KCTD1's effect on β-catenin regulation in colon cancer cells.
  • To explore KCTD1's potential oncosuppressor function.

Main Methods:

  • KCTD1 was knocked down in SW480 human colon adenocarcinoma cells.
  • β-catenin regulation by KCTD1 was re-assessed.
  • TCGA database was interrogated for KCTD1 and β-catenin expression in colorectal cancer patients.
  • Cell motility and stemness assays were performed.

Main Results:

  • KCTD1 knockdown in SW480 cells increased motility and stemness, suggesting an oncosuppressor role.
  • Opposite effects were observed upon KCTD1 upregulation in CACO2 cells.
  • TCGA data revealed KCTD1 downregulation correlates with β-catenin overexpression in patients.
  • KCTD12, a related protein, induced similar effects on colorectal cancer cells.

Conclusions:

  • KCTD1 exhibits an oncosuppressor role in colorectal cancer, potentially through β-catenin regulation.
  • KCTD1 downregulation is linked to increased tumor aggressiveness.
  • KCTD1 and KCTD12 may possess analogous functions in colorectal cancer, expanding the known roles of the KCTD family.

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