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Updated: May 13, 2026

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Published on: October 27, 2020
Arkadia regulates tumor metastasis by modulation of the TGF-β pathway
Marco A Briones-Orta1, Laurence Levy, Chris D Madsen
1Laboratory of Developmental Signalling, Cancer Research UK London Research Institute, Lincoln's Inn Fields Laboratories, London, United Kingdom.
Abstract:
TGF-β can act as a tumor suppressor at early stages of cancer progression and as a tumor promoter at later stages. The E3 ubiquitin ligase Arkadia (RNF111) is a critical component of the TGF-β signaling pathway, being required for a subset of responses, those mediated by Smad3-Smad4 complexes. It acts by mediating ligand-induced degradation of Ski and SnoN (SKIL), which are 2 potent transcriptional repressors. Here, we investigate the role of Arkadia in cancer using model systems to address both potential tumor-suppressive and tumor-promoting roles. Stable reexpression of Arkadia in lung carcinoma NCI-H460 cells, which we show contain a hemizygous nonsense mutation in the Arkadia/RNF111 gene, efficiently restored TGF-β-induced Smad3-dependent transcription, and substantially decreased the ability of these cells to grow in soft agar in vitro. However, it had no effect on tumor growth in vivo in mouse models. Moreover, loss of Arkadia in cancer cell lines and human tumors is rare, arguing against a prominent tumor-suppressive role. In contrast, we have uncovered a potent tumor-promoting function for Arkadia. Using 3 different cancer cell lines whose tumorigenic properties are driven by TGF-β signaling, we show that loss of Arkadia function, either by overexpression of dominant negative Arkadia or by siRNA-induced knockdown, substantially inhibited lung colonization in tail vein injection experiments in immunodeficient mice. Our findings indicate that Arkadia is not critical for regulating tumor growth per se, but is required for the early stages of cancer cell colonization at the sites of metastasis.
Insights
Arkadia (RNF111) acts as a tumor promoter by aiding metastasis. Loss of Arkadia function inhibits cancer cell colonization at metastatic sites, revealing its role in early cancer spread.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Transforming growth factor-beta (TGF-β) exhibits dual roles in cancer, acting as a tumor suppressor early on and a promoter later.
- The E3 ubiquitin ligase Arkadia (RNF111) is integral to TGF-β signaling, regulating transcriptional repressors Ski and SnoN (SKIL).
Purpose of the Study:
- Investigate the dual role of Arkadia in cancer progression, exploring both tumor-suppressive and tumor-promoting functions.
- Determine Arkadia's specific contribution to cancer cell growth, tumor development, and metastasis.
Main Methods:
- Utilized lung carcinoma cell lines (NCI-H460) with Arkadia mutations for re-expression studies.
- Employed dominant-negative Arkadia overexpression and siRNA knockdown in cancer cell lines.
- Assessed in vitro soft agar colony formation and in vivo tail vein injection experiments in immunodeficient mice.
Main Results:
- Arkadia re-expression in NCI-H460 cells restored TGF-β signaling and reduced in vitro anchorage-independent growth but did not affect in vivo tumor growth.
- Loss of Arkadia function significantly inhibited lung colonization in metastasis models.
- Loss of Arkadia was found to be rare in cancer cell lines and human tumors, suggesting limited tumor-suppressive roles.
Conclusions:
- Arkadia (RNF111) primarily functions as a tumor promoter, not a suppressor.
- Arkadia is crucial for the early stages of cancer cell colonization and metastasis, rather than overall tumor growth.
- Targeting Arkadia may offer a strategy to inhibit cancer metastasis.
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