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Published on: July 25, 2017
DIAPH3 governs the cellular transition to the amoeboid tumour phenotype
Martin H Hager1, Samantha Morley, Diane R Bielenberg
1Urological Diseases Research Center, Children's Hospital Boston, Boston, MA, USA.
Abstract:
Therapies for most malignancies are generally ineffective once metastasis occurs. While tumour cells migrate through tissues using diverse strategies, the signalling networks controlling such behaviours in human tumours are poorly understood. Here we define a role for the Diaphanous-related formin-3 (DIAPH3) as a non-canonical regulator of metastasis that restrains conversion to amoeboid cell behaviour in multiple cancer types. The DIAPH3 locus is close to RB1, within a narrow consensus region of deletion on chromosome 13q in prostate, breast and hepatocellular carcinomas. DIAPH3 silencing in human carcinoma cells destabilized microtubules and induced defective endocytic trafficking, endosomal accumulation of EGFR, and hyperactivation of EGFR/MEK/ERK signalling. Silencing also evoked amoeboid properties, increased invasion and promoted metastasis in mice. In human tumours, DIAPH3 down-regulation was associated with aggressive or metastatic disease. DIAPH3-silenced cells were sensitive to MEK inhibition, but showed reduced sensitivity to EGFR inhibition. These findings have implications for understanding mechanisms of metastasis, and suggest that identifying patients with chromosomal deletions at DIAPH3 may have prognostic value.
Insights
Diaphanous-related formin-3 (DIAPH3) restrains cancer metastasis by preventing amoeboid cell behavior. Its down-regulation promotes invasion and is linked to aggressive disease, offering potential prognostic value.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Metastasis remains a major challenge in cancer therapy, with underlying cellular signaling networks poorly understood.
- Understanding the molecular mechanisms that control cancer cell migration and invasion is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of Diaphanous-related formin-3 (DIAPH3) as a regulator of metastasis in human carcinomas.
- To elucidate the molecular mechanisms by which DIAPH3 influences cancer cell behavior and signaling pathways.
Main Methods:
- DIAPH3 function was assessed through gene silencing in human carcinoma cell lines.
- Effects on cell behavior, including motility, invasion, and signaling pathways (EGFR/MEK/ERK), were analyzed.
- Tumor metastasis was evaluated in mouse models.
- DIAPH3 expression levels were correlated with clinical data from human tumors.
Main Results:
- DIAPH3 silencing destabilized microtubules, impaired endocytic trafficking, and led to EGFR accumulation and signaling hyperactivation.
- Loss of DIAPH3 induced amoeboid cell properties, increased invasion, and promoted metastasis in vivo.
- Down-regulation of DIAPH3 in human tumors correlated with aggressive disease and metastasis.
- DIAPH3-silenced cells showed sensitivity to MEK inhibitors but reduced sensitivity to EGFR inhibitors.
Conclusions:
- DIAPH3 acts as a non-canonical regulator that restrains amoeboid cell transition and metastasis in multiple cancer types.
- DIAPH3 down-regulation is associated with metastatic potential and aggressive cancer phenotypes.
- Chromosomal deletions at the DIAPH3 locus may serve as a prognostic marker, and DIAPH3 status could inform therapeutic strategies, particularly regarding MEK inhibition.
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