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Updated: Aug 14, 2026

Screening Ion Channels in Cancer Cells
Published on: June 16, 2023
Targeting Plasma Membrane Ca2+-ATPases in Cancer: Current Insights and Future Perspectives
Malwina Lisek1, Julia Tomczak1, Natalia Bochenska1
1Department of Molecular Neurochemistry, Medical University of Lodz, 90-419 Łódź, Poland.
Abstract:
Calcium signaling is a fundamental regulator of cell physiology, controlling proliferation, differentiation, migration, metabolism, gene expression, and cell death. In cancer, these signaling pathways are extensively remodeled to generate spatially and temporally restricted Ca2+ signals that support malignant progression while avoiding calcium-induced cytotoxicity. PMCAs traditionally regarded as high-affinity calcium extrusion pumps, have recently emerged as multifunctional regulators of compartmentalized calcium signaling. In addition to maintaining low cytosolic Ca2+ concentrations, PMCA isoforms organize specialized signaling microdomains by interacting with receptors, ion channels, scaffold proteins, and downstream signaling molecules, thereby selectively modulating calcium-dependent pathways involved in tumor growth and metastasis. Accumulating evidence demonstrates that PMCA isoforms exert distinct, context-dependent functions in cancer. PMCA1 primarily contributes to basal calcium homeostasis but has also been implicated in tumor progression, angiogenesis, and regulation of the tumor immune microenvironment. PMCA2 promotes survival and oncogenic signaling in HER2-positive breast cancer through stabilization of receptor signaling complexes. PMCA3 has been linked mainly to endocrine tumors and selected malignancies, although mechanistic evidence remains limited. PMCA4 exhibits the greatest functional diversity, acting either as a tumor suppressor or a promoter depending on the cancer type by regulating localized calcium signaling, cell migration, invasion, differentiation, and interactions with oncogenic signaling networks. This review summarizes current advances in the structural biology, regulation, and signaling functions of PMCA isoforms, with particular emphasis on their emerging roles in cancer biology. We also discuss the potential of PMCAs as prognostic biomarkers and therapeutic targets, highlighting the importance of isoform-specific strategies for targeting calcium signaling in cancer.
Insights
Plasma membrane calcium ATPases (PMCAs) are key regulators of calcium signaling in cancer. Different PMCA isoforms have distinct roles, offering potential as cancer biomarkers and therapeutic targets.
Area of Science:
- Cell Biology
- Cancer Biology
- Biochemistry
Background:
- Calcium signaling is crucial for cell functions, with dysregulation in cancer.
- Plasma membrane calcium ATPases (PMCAs) are traditionally known for calcium extrusion.
- Emerging roles of PMCAs in organizing calcium signaling microdomains and influencing cancer progression.
Purpose of the Study:
- To review current knowledge on PMCA isoforms in cancer biology.
- To highlight the distinct functions of PMCA isoforms in various cancers.
- To discuss the potential of PMCAs as prognostic biomarkers and therapeutic targets.
Main Methods:
- Literature review of structural biology, regulation, and signaling functions of PMCA isoforms.
- Analysis of experimental evidence linking PMCA isoforms to cancer progression, metastasis, and immune microenvironment.
- Synthesis of data on PMCA isoform-specific roles in different cancer types.
Main Results:
- PMCA isoforms exhibit diverse and context-dependent functions in cancer.
- PMCA1 is involved in calcium homeostasis, tumor progression, and angiogenesis.
- PMCA2 promotes survival in HER2-positive breast cancer; PMCA4 has varied roles as tumor suppressor or promoter.
- PMCA3 is linked to endocrine tumors, with limited mechanistic data.
Conclusions:
- PMCA isoforms are critical, multifaceted regulators of cancer cell signaling.
- Understanding isoform-specific functions is essential for developing targeted cancer therapies.
- PMCAs represent promising prognostic biomarkers and therapeutic targets in oncology.
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