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RhoA mediates cyclooxygenase-2 signaling to disrupt the formation of adherens junctions and increase cell motility
Yu-Wen E Chang1, Jerry W Marlin, Terry W Chance
1Department of Biochemistry, Kansas City University of Medicine and Biosciences, Kansas City, Missouri 64106, USA.
Abstract:
Cyclooxygenase-2 (COX-2) represents an important target for treatment and prevention of colorectal cancer. Although COX-2 signaling is implicated in promoting tumor cell growth and invasion, the molecular mechanisms that mediate these processes are largely unknown. In this study, we show that the RhoA pathway mediates COX-2 signaling to disrupt the formation of adherens junctions and increase cell motility. Disruption of adherens junctions promotes tumor cell invasion and metastasis and is often associated with tumor progression. We detected high levels of RhoA activity in HCA-7 colon carcinoma cells that constitutively express COX-2. Inhibition of COX-2 significantly reduced the levels of RhoA activity in HCA-7 cells, suggesting that constitutive expression of COX-2 stimulates RhoA activity. Interestingly, inhibition of COX-2 or silencing of COX-2 expression with small interfering RNA (siRNA) stimulated the formation of adherens junctions, concomitant with increased protein levels of E-cadherin and alpha-catenin. Furthermore, inhibition of RhoA or silencing of RhoA expression with siRNA increased the levels of E-cadherin and alpha-catenin. Inhibition of Rho kinases (ROCK), the RhoA effector proteins, also increased levels of E-cadherin and alpha-catenin and stimulated formation of adherens junctions. The motility of HCA-7 cells was significantly decreased when COX-2 or RhoA was inhibited. Therefore, our data reveal a novel molecular mechanism that links COX-2 signaling to disrupt the formation of adherens junctions; COX-2 stimulates the RhoA/ROCK pathway, which reduces levels of E-cadherin and alpha-catenin leading to disruption of adherens junction formation and increased motility. Understanding of COX-2 downstream signaling pathways that promote tumor progression is crucial for the development of novel therapeutic strategies.
Insights
Cyclooxygenase-2 (COX-2) promotes colorectal cancer by activating the RhoA pathway, which disrupts cell adhesion and increases motility. Inhibiting COX-2 or RhoA restores cell junctions and reduces cancer cell movement.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Cyclooxygenase-2 (COX-2) is a key target in colorectal cancer treatment and prevention.
- The precise molecular mechanisms by which COX-2 promotes tumor cell growth and invasion are not fully understood.
Purpose of the Study:
- To investigate the role of the RhoA pathway in mediating COX-2 signaling in colorectal cancer.
- To elucidate how COX-2 signaling affects adherens junction formation and cell motility.
Main Methods:
- Utilized HCA-7 colon carcinoma cells with constitutive COX-2 expression.
- Employed COX-2 inhibition, RhoA inhibition, and small interfering RNA (siRNA) for gene silencing.
- Assessed RhoA activity, E-cadherin and alpha-catenin protein levels, adherens junction formation, and cell motility.
Main Results:
- Constitutive COX-2 expression correlated with high RhoA activity in HCA-7 cells.
- Inhibition or silencing of COX-2 reduced RhoA activity and promoted adherens junction formation with increased E-cadherin and alpha-catenin.
- Inhibition or silencing of RhoA or its effector kinases (ROCK) also increased E-cadherin and alpha-catenin levels and adherens junction formation.
- Inhibition of COX-2 or RhoA significantly decreased HCA-7 cell motility.
Conclusions:
- COX-2 stimulates the RhoA/ROCK pathway, leading to decreased E-cadherin and alpha-catenin, disruption of adherens junctions, and increased cell motility.
- This study reveals a novel molecular mechanism linking COX-2 to colorectal cancer progression.
- Understanding this pathway is crucial for developing new therapeutic strategies against colorectal cancer.
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