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The cellular chloride channels CLIC1 and CLIC4 contribute to virus-mediated cell motility
Gabrielė Stakaitytė1,2, Nnenna Nwogu1,2, Jonathan D Lippiat3
1From the School of Molecular and Cellular Biology.
Abstract:
Ion channels regulate many aspects of cell physiology, including cell proliferation, motility, and migration, and aberrant expression and activity of ion channels is associated with various stages of tumor development, with K+ and Cl- channels now being considered the most active during tumorigenesis. Accordingly, emerging in vitro and preclinical studies have revealed that pharmacological manipulation of ion channel activity offers protection against several cancers. Merkel cell polyomavirus (MCPyV) is a major cause of Merkel cell carcinoma (MCC), primarily because of the expression of two early regulatory proteins termed small and large tumor antigens (ST and LT, respectively). Several molecular mechanisms have been attributed to MCPyV-mediated cancer formation but, thus far, no studies have investigated any potential link to cellular ion channels. Here we demonstrate that Cl- channel modulation can reduce MCPyV ST-induced cell motility and invasiveness. Proteomic analysis revealed that MCPyV ST up-regulates two Cl- channels, CLIC1 and CLIC4, which when silenced, inhibit MCPyV ST-induced motility and invasiveness, implicating their function as critical to MCPyV-induced metastatic processes. Consistent with these data, we confirmed that CLIC1 and CLIC4 are up-regulated in primary MCPyV-positive MCC patient samples. We therefore, for the first time, implicate cellular ion channels as a key host cell factor contributing to virus-mediated cellular transformation. Given the intense interest in ion channel modulating drugs for human disease. This highlights CLIC1 and CLIC4 activity as potential targets for MCPyV-induced MCC.
Insights
This study reveals that Merkel cell polyomavirus (MCPyV) small tumor antigen (ST) up-regulates chloride (Cl-) channels CLIC1 and CLIC4, driving cancer cell motility. Targeting these channels may offer new treatments for MCPyV-induced Merkel cell carcinoma (MCC).
Area of Science:
- Oncology
- Virology
- Cell Biology
Background:
- Ion channels are crucial for cell functions and implicated in cancer development.
- Aberrant ion channel activity, particularly K+ and Cl- channels, is linked to tumorigenesis.
- Merkel cell polyomavirus (MCPyV) causes Merkel cell carcinoma (MCC) via its tumor antigens (ST/LT), but its link to ion channels is unexplored.
Purpose of the Study:
- To investigate the role of cellular ion channels in MCPyV-mediated cancer.
- To determine if MCPyV ST influences ion channel expression and function.
- To explore CLIC1 and CLIC4 as potential therapeutic targets in MCC.
Main Methods:
- Proteomic analysis to identify ion channels regulated by MCPyV ST.
- Gene silencing (siRNA) to assess the functional impact of CLIC1 and CLIC4 on cell motility and invasiveness.
- Analysis of CLIC1 and CLIC4 expression in patient-derived MCC samples.
Main Results:
- MCPyV ST significantly up-regulates CLIC1 and CLIC4 chloride channels.
- Silencing CLIC1 and CLIC4 inhibits MCPyV ST-induced cell motility and invasiveness.
- CLIC1 and CLIC4 are overexpressed in human MCPyV-positive MCC tumors.
Conclusions:
- Cellular ion channels, specifically CLIC1 and CLIC4, are key host factors in virus-mediated cellular transformation by MCPyV.
- Modulation of CLIC1 and CLIC4 activity presents a promising therapeutic strategy for MCPyV-induced MCC.
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