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Published on: May 15, 2019
Inhibition of IκB kinase by thalidomide increases hepatitis C virus RNA replication
E Rance1, J E Tanner, C Alfieri
1Laboratory of Viral Pathogenesis, Research Center, Sainte-Justine University Hospital, Montreal, QC, Canada.
Insights
Thalidomide increases hepatitis C virus (HCV) replication by inhibiting nuclear factor kappa B (NF-κB) signaling. Blocking NF-κB activation, crucial for controlling HCV, enhances viral RNA levels in liver cells.
Area of Science:
- Hepatology
- Virology
- Immunology
Background:
- Hepatic fibrosis progression in chronic liver disease is linked to elevated interleukin-8 (IL-8).
- Hepatitis C virus (HCV) infection involves IL-8 and nuclear factor kappa B (NF-κB) pathways.
- Thalidomide's effect on HCV replication is not well understood, despite its use in reducing liver inflammation.
Purpose of the Study:
- To investigate the impact of thalidomide on HCV replication in vitro.
- To elucidate the role of the NF-κB signaling pathway in regulating HCV RNA replication.
Main Methods:
- HCV replication was assessed in Huh-7 cells treated with thalidomide and NF-κB inhibitors.
- Changes in IL-8, NF-κB activity, IκB kinase (IKK) activation, and NF-κB(p65)/RelA protein levels were measured.
- Ectopic expression of IKKα and NF-κB(p65)/RelA was used to modulate signaling pathways.
Main Results:
- Thalidomide reduced IL-8 and NF-κB activity but significantly increased HCV replication (17-fold).
- NF-κB inhibitors (wedelolactone, NF-κB activation inhibitor-1) mimicked thalidomide's effect, increasing HCV RNA (18-19 fold).
- Inhibition of IKK activation and NF-κB signaling augmented HCV RNA replication, while restoring NF-κB activity reduced it.
Conclusions:
- HCV RNA replication is significantly enhanced by the inhibition of IKK activation and subsequent NF-κB signaling.
- The NF-κB signaling pathway plays a critical role in controlling HCV replication.
- Targeting NF-κB activity may offer therapeutic strategies for managing HCV infection.
Abstract:
Hepatic fibrosis is an integral element in the progression of chronic liver disease. Elevated hepatic interleukin (IL)-8 is an important contributor to fibrosis in patients chronically infected with the hepatitis C virus (HCV). Thalidomide has been used to reduce liver inflammation and fibrosis in HCV-infected patients, but its impact on HCV replication remains unclear. This study examined the effect of thalidomide on HCV replication in vitro. Results revealed that while thalidomide reduced IL-8 and nuclear factor kappa B (NF-κB) activity by 95% and 46% in Huh-7 cells, increasing concentrations of thalidomide correlated with a linear rise in HCV replication (17-fold at 200 μm). The NF-κB inhibitors, wedelolactone and NF-κB activation inhibitor-1, which mimic the actions of thalidomide by preventing phosphorylation and activation of IκB kinase (IKK) and hence block NF-κB activity, increased HCV RNA by 18- and 19-fold, respectively. During in vitro HCV replication in Huh-7 cells, we observed a 30% increase in IKKα protein and 55% decrease in NF-κB(p65)/RelA protein relative to cellular β-actin. Ectopic expression of IKKα to enhance the inactive form of IKK in cells undergoing virus replication led to a 13-fold increase in HCV RNA. Conversely, enhanced expression of NF-κB(p65)/RelA in infected cells resulted in a 17-fold reduction in HCV RNA. In conclusion, HCV RNA replication was significantly augmented by the inhibition of IKK activation and subsequent NF-κB signalling, whereas a restoration of NF-κB activity by the addition of NF-κB/RelA markedly reduced HCV replication. This study lends added importance to the role of the NF-κB signalling pathway in controlling HCV replication.
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