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Updated: May 26, 2026

Screening Ion Channels in Cancer Cells
Published on: June 16, 2023
Targeting ion channels in leukemias: a new challenge for treatment
A Arcangeli1, S Pillozzi, A Becchetti
1Department of Experimental Pathology and Oncology, University of Florence, Viale G.B. Morgagni, 50, 50134 Firenze, Italy. annarosa.arcangeli@unifi.it
Abstract:
Leukemias, as other cancers, bear several genetic alterations of tumor-related genes, such as point mutations, translocations, epigenetic modifications, often accompanied by gene amplification or inactivation. The identification of tumor-related genes provides considerable insight into the biology of leukemias and opens the way to more specific pharmacological treatments. These genes comprise several ion channels and pumps, as the transport mechanisms associated with volume control, proliferation and apoptosis are often altered in cancers. In leukemic cells, such changes are observed as early as the stem cell stage. Ion channels can regulate other malignant features, such as lack of differentiation, increased migratory and invasive phenotype and chemoresistance. The role of certain voltage-gated K(+) channels, such as K(v)11.1 (also known as hERG1) can be largely attributed to modulation of cell adhesion to the extracellular matrix (ECM). K(v)11.1 exerts pleiotropic regulatory effects by forming multiprotein membrane complexes with integrin receptors in both acute myeloid leukemias (AML) and acute lymphoblastic leukemias (ALL). By recruiting growth factor and chemokine receptors, these complexes form signaling hubs that control neoplastic progression. Work in mice shows that blocking K(v)11.1 has a protective effect in acute leukemias. Ion channels are most promising targets for anti-leukemic therapy, because of their accessibility from the extracellular side and the thorough understanding of their pharmacology. In ALL cells, K(v)11.1 inhibitors abrogate the protective effect of bone marrow stromal cells and enhance the cytotoxicity of some common antileukemic drugs. Hence, ion channel modulators could overcome chemoresistance in acute leukemias, a major hindrance to therapeutic success.
Insights
Ion channels, like K(v)11.1 (hERG1), are key in leukemia progression and chemoresistance. Blocking these channels shows promise for new anti-leukemic therapies by enhancing drug effectiveness.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Leukemias involve genetic alterations affecting tumor-related genes, including ion channels.
- Altered ion channel function impacts cancer cell volume, proliferation, apoptosis, differentiation, migration, invasion, and chemoresistance.
- Ion channels play a role in leukemia development from the stem cell stage.
Purpose of the Study:
- To investigate the role of ion channels, specifically K(v)11.1 (hERG1), in leukemia biology and therapeutic potential.
- To explore K(v)11.1's function in cell adhesion and signaling complexes in acute myeloid leukemias (AML) and acute lymphoblastic leukemias (ALL).
- To evaluate the efficacy of K(v)11.1 inhibitors in overcoming chemoresistance in acute leukemias.
Main Methods:
- Analysis of genetic alterations in leukemic cells, focusing on ion channels.
- Investigating the role of K(v)11.1 in forming multiprotein membrane complexes with integrin and growth factor receptors.
- Testing the effects of K(v)11.1 inhibitors in mouse models and in ALL cells co-cultured with bone marrow stromal cells.
Main Results:
- K(v)11.1 (hERG1) modulates cell adhesion to the extracellular matrix and forms signaling hubs in AML and ALL.
- Blocking K(v)11.1 demonstrated a protective effect in experimental acute leukemias.
- In ALL cells, K(v)11.1 inhibitors reduced the protective influence of bone marrow stromal cells and increased the cytotoxicity of standard antileukemic drugs.
Conclusions:
- Ion channels, particularly K(v)11.1, are critical regulators of neoplastic progression in acute leukemias.
- K(v)11.1 represents a promising therapeutic target due to its accessibility and well-understood pharmacology.
- Modulating ion channels offers a potential strategy to overcome chemoresistance in acute leukemias, improving treatment outcomes.
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