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Long-term channel block is required to inhibit cellular transformation by human ether-à-go-go-related gene (hERG1)
David M Pier1, George S G Shehatou1, Susan Giblett1
1Department of Cell Physiology and Pharmacology (D.M.P., G.S.G.S., C.E.P., R.A.J.C., J.S.M.) and Department of Biochemistry (S.G., C.A.P.), University of Leicester, Leicester, United Kingdom; Molecular Discovery Research, GlaxoSmithKline R&D, Harlow, Essex, United Kingdom (D.J.T.); Department of Pharmacology and Toxicology, University of Mansoura, Egypt (G.S.G.S.); Essen Bioscience Ltd., Welwyn Garden City, UK (D.J.T.); School of Clinical Sciences, University of Edinburgh, United Kingdom (D.M.P.).
Abstract:
Both human ether-à-go-go-related gene (hERG1) and the closely related human ether-à-go-go (hEAG1) channel are aberrantly expressed in a large proportion of human cancers. In the present study, we demonstrate that transfection of hERG1 into mouse fibroblasts is sufficient to induce many features characteristic of malignant transformation. An important finding of this work is that this transformation could be reversed by chronic incubation (for 2-3 weeks) with the hERG channel blocker dofetilide (100 nM), whereas more acute applications (for 1-2 days) were ineffective. The hERG1 expression resulted in a profound loss of cell contact inhibition, multiple layers of overgrowing cells, and high saturation densities. Cells also changed from fibroblast-like to a more spindle-shaped morphology, which was associated with a smaller cell size, a dramatic increase in cell polarization, a reduction in the number of actin stress fibers, and less punctate labeling of focal adhesions. Analysis of single-cell migration and scratch-wound closure clearly demonstrated that hERG1-expressing cells migrated more rapidly than vector-transfected control cells. In contrast to previous studies on hEAG1, there were no increases in rates of proliferation, or loss of growth factor dependency; however, hERG1-expressing cells were capable of substrate-independent growth. Allogeneic transplantation of hERG1-expressing cells into nude mice resulted in an increased incidence of tumors. In contrast to hEAG1, the mechanism of cellular transformation is dependent on ion conduction. Trafficking-deficient and conduction-deficient hERG1 mutants also prevented cellular transformation. These results provide evidence that hERG1 expression is sufficient to induce cellular transformation by a mechanism distinct from hEAG1. The most important conclusion of this study is that selective hERG1 channel blockers have therapeutic potential in the treatment of hERG1-expressing cancers.
Insights
Human ether-à-go-go-related gene 1 (hERG1) expression transforms cells, causing cancer-like features. This transformation is reversible with chronic hERG1 blocker treatment, suggesting therapeutic potential for hERG1-expressing cancers.
Area of Science:
- Molecular biology
- Cell biology
- Oncology
Background:
- Aberrant expression of human ether-à-go-go-related gene 1 (hERG1) and human ether-à-go-go (hEAG1) channels is observed in numerous human cancers.
- Understanding the role of hERG1 in cancer development is crucial for identifying new therapeutic targets.
Purpose of the Study:
- To investigate whether hERG1 expression is sufficient to induce malignant transformation in cells.
- To explore the mechanism by which hERG1 induces transformation and its potential as a therapeutic target.
Main Methods:
- Transfection of mouse fibroblasts with hERG1.
- Assessment of cellular morphology, proliferation, migration, and growth characteristics.
- In vivo tumor formation studies in nude mice.
- Utilizing trafficking-deficient and conduction-deficient hERG1 mutants.
Main Results:
- hERG1 transfection induced malignant transformation features, including loss of contact inhibition and increased migration.
- hERG1-expressing cells exhibited substrate-independent growth and formed tumors in vivo.
- Transformation was reversed by chronic dofetilide treatment, but not acute treatment.
- Transformation was dependent on hERG1 ion conduction, unlike hEAG1.
Conclusions:
- hERG1 expression is sufficient to induce cellular transformation through an ion conduction-dependent mechanism distinct from hEAG1.
- Selective hERG1 channel blockers demonstrate therapeutic potential for treating hERG1-expressing cancers.
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