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Inhibition of STAT signalling in bladder cancer by diindolylmethane: relevance to cell adhesion, migration and
Yiyang Sun1, Mai-Kim Cheng, Thomas R L Griffiths
1Department of Cancer Studies and Molecular Medicine, Biocentre, University of Leicester, UK.
Abstract:
Effective treatments to prevent recurrence or progression of non-muscle-invasive bladder cancer, or to inhibit metastasis of muscle-invasive forms of the disease, would deliver significant patient benefit. Here the involvement of STAT signalling and the chemopreventive potential of diindolylmethane (DIM) in human bladder cancer were investigated. Muscle-invasive bladder cancer tissues were characterised by nuclear expression of phosphorylated STAT1, 3 and 5. In E-cadherin positive tumour cell lines (RT112, RT4, HT1376), STAT5 was constitutively phosphorylated, while E-cadherin negative lines (J82, T24, UMUC3) contained phosphoSTAT3. Knockdown of STAT3 induced G₀/G₁ arrest and inhibited adhesion in J82 cells. Knockdown of STAT1inhibited migration in J82 and RT112 lines. No significant increase in apoptosis was observed. In response to the Janus kinase inhibitor, AG490, RT112 and J82 cells initially underwent G₀/G₁ arrest, with RT112 cells subsequently exhibiting S phase arrest. Phosphorylation of STAT1(Tyr701), STAT3(Tyr705) and (Ser727) and STAT5(Tyr694) was inhibited by DIM, as was adhesion of J82 cells to collagen, an effect that was enhanced when STAT1 or 3 was reduced by siRNA. However, over-expression of STAT3C partially rescued the DIM inhibitory effect on collagen-mediated adhesion. Migration of both lines was inhibited by DIM, while transfection of constitutively active STAT3C enhanced migration of RT112 cells. DIM induced cell cycle arrest and apoptosis in three cell lines with different degrees of radioresistance. Taken together, these results suggest that inhibition of STAT signalling and/or treatment with DIM may decrease invasiveness of bladder cancer. DIM can induce apoptosis in cell lines which are radioresistant, so in combination with radiotherapy may be useful in overcoming such resistance.
Insights
Diindolylmethane (DIM) and STAT signaling inhibition show promise in reducing bladder cancer invasiveness. DIM also induces apoptosis in radioresistant cells, potentially enhancing radiotherapy effectiveness.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- STAT signaling pathways are implicated in bladder cancer progression and metastasis.
- Diindolylmethane (DIM) is investigated for its chemopreventive potential in human bladder cancer.
Purpose of the Study:
- To investigate the role of STAT signaling in bladder cancer.
- To evaluate the chemopreventive effects of DIM on bladder cancer cells.
- To explore the potential of DIM and STAT inhibition as therapeutic strategies.
Main Methods:
- Analysis of phosphorylated STAT1, STAT3, and STAT5 in muscle-invasive bladder cancer tissues and cell lines.
- Gene knockdown using siRNA to inhibit STAT1 and STAT3.
- Treatment with Janus kinase inhibitor AG490 and DIM.
- Assessment of cell cycle arrest, apoptosis, adhesion, and migration.
- Overexpression of STAT3C to study rescue effects.
Main Results:
- STAT signaling (STAT1, 3, 5) is active in bladder cancer tissues and cell lines, with specific STATs correlating with E-cadherin status.
- STAT3 knockdown induced cell cycle arrest and inhibited adhesion; STAT1 knockdown inhibited migration.
- DIM inhibited STAT phosphorylation, cell adhesion, and migration.
- DIM induced cell cycle arrest and apoptosis in radioresistant bladder cancer cell lines.
Conclusions:
- Inhibition of STAT signaling and DIM treatment may reduce bladder cancer invasiveness.
- DIM's ability to induce apoptosis in radioresistant cells suggests potential for combination therapy with radiotherapy.
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