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Updated: Sep 3, 2025

Author Spotlight: Exploring the Role of Ion Channels in Cancer: Characterization and Potential Treatment Approaches
Published on: June 16, 2023
Evidence of Metallic and Polyether Ionophores as Potent Therapeutic Drug Candidate in Cancer Management
Pratibha Pandey1, Fahad Khan1, Huda A Qari2
1Department of Biotechnology, Noida Institute of Engineering and Technology, Greater Noida 201306, India.
Abstract:
Cancer remains one of the most crucial human malignancies with a higher mortality rate globally, and is predicted to escalate soon. Dysregulated ion homeostasis in cancerous cells prompted the researchers to investigate further ion homeostasis impeding agents as potent anticancerous agents. Reutilization of FDA-approved non-cancerous drugs has emerged as a practical approach to developing potent, cost-effective drugs for cancer treatment. Across the globe, most nations are incapable of fulfilling the medical demands of cancer patients due to costlier cancerous drugs. Therefore, we have inclined our review towards emphasizing recent advancements in cancer therapies involving ionophores utilization in exploring potent anticancer drugs. Numerous research reports have established the significant anticancerous potential of ionophores in several pre-clinical reports via modulating aberrant cell signaling pathways and enhancing antitumor immunity in immune cells. This review has mainly summarized the most significant ion homeostasis impeding agents, including copper, zinc, calcium, and polyether, that presented remarkable potential in cancer therapeutics via enhanced antitumor immunity and apoptosis induction. Altogether, this study could provide a robust future perspective for developing cost-effective anticancerous drugs rapidly and cost-effectively, thereby combating the limitations of currently available drugs used in cancer treatment.
Insights
Ionophores, drugs that impede ion homeostasis, show promise as cost-effective cancer treatments. These agents, including copper and zinc, enhance antitumor immunity and apoptosis, offering new therapeutic avenues.
Area of Science:
- Oncology and Pharmacology
- Biochemistry and Molecular Biology
Background:
- Cancer is a leading global malignancy with escalating mortality rates.
- Dysregulated ion homeostasis in cancer cells presents a therapeutic target.
- Repurposing existing drugs offers a cost-effective strategy for cancer treatment.
Purpose of the Study:
- To review recent advancements in cancer therapy utilizing ionophores.
- To explore the potential of ion homeostasis impeding agents as anticancer drugs.
- To highlight the cost-effectiveness of repurposed drugs for cancer treatment.
Main Methods:
- Literature review focusing on ionophores and their anticancer properties.
- Analysis of pre-clinical reports on ionophores modulating cell signaling and immunity.
- Summary of ion homeostasis impeding agents like copper, zinc, calcium, and polyethers.
Main Results:
- Ionophores demonstrate significant anticancer potential in pre-clinical studies.
- These agents modulate aberrant cell signaling pathways.
- Ionophores enhance antitumor immunity and induce apoptosis in cancer cells.
Conclusions:
- Ion homeostasis impeding agents, particularly ionophores, show remarkable therapeutic potential.
- Repurposing drugs like ionophores offers a cost-effective approach to cancer treatment.
- This review provides a future perspective for developing novel, affordable anticancer drugs.
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