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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.
Abstract:
The KCTD protein family is traditionally regarded as proteins that play key roles in neurological physiopathology. However, new studies are increasingly demonstrating their involvement in many other biological processes, including cancers. This is particularly evident for KCTD proteins not involved in protein ubiquitination and degradation, such as KCTD1. We explored the role of KCTD1 in colorectal cancer by knocking down this protein in the human colon adenocarcinoma cell line, SW480. We re-assessed its ability to downregulate β-catenin, a central actor in the WNT/β-catenin signalling pathway. Interestingly, opposite effects are observed when the protein is upregulated in CACO2 colorectal cancer cells. Moreover, interrogation of the TCGA database indicates that KCTD1 downregulation is associated with β-catenin overexpression in colorectal cancer patients. Indeed, knocking down KCTD1 in SW480 cells led to a significant increase in their motility and stemness, two important tumorigenesis traits, suggesting an oncosuppressor role for KCTD1. It is worth noting that similar effects are induced on colorectal cancer cells by the misregulation of KCTD12, a protein that is distantly related to KCTD1. The presented results further expand the spectrum of KCTD1 involvement in apparently unrelated physiopathological processes. The similar effects produced on colorectal cancer cell lines by KCTD1 and KCTD12 suggest novel, previously unreported analogous activities among members of the KCTD protein family.
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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