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TRP Channels in Cancer: Signaling Mechanisms and Translational Approaches

Overview
Journal Biomolecules
Publisher MDPI
Date 2023 Oct 28
PMID 37892239
Authors
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Abstract

Ion channels play a crucial role in a wide range of biological processes, including cell cycle regulation and cancer progression. In particular, the transient receptor potential (TRP) family of channels has emerged as a promising therapeutic target due to its involvement in several stages of cancer development and dissemination. TRP channels are expressed in a large variety of cells and tissues, and by increasing cation intracellular concentration, they monitor mechanical, thermal, and chemical stimuli under physiological and pathological conditions. Some members of the TRP superfamily, namely vanilloid (TRPV), canonical (TRPC), melastatin (TRPM), and ankyrin (TRPA), have been investigated in different types of cancer, including breast, prostate, lung, and colorectal cancer. TRP channels are involved in processes such as cell proliferation, migration, invasion, angiogenesis, and drug resistance, all related to cancer progression. Some TRP channels have been mechanistically associated with the signaling of cancer pain. Understanding the cellular and molecular mechanisms by which TRP channels influence cancer provides new opportunities for the development of targeted therapeutic strategies. Selective inhibitors of TRP channels are under initial scrutiny in experimental animals as potential anti-cancer agents. In-depth knowledge of these channels and their regulatory mechanisms may lead to new therapeutic strategies for cancer treatment, providing new perspectives for the development of effective targeted therapies.

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References
1.
Zhang Y, Lun X, Guo W . Expression of TRPC1 and SBEM protein in breast cancer tissue and its relationship with clinicopathological features and prognosis of patients. Oncol Lett. 2020; 20(6):392. PMC: 7656111. DOI: 10.3892/ol.2020.12255. View

2.
Wu K, Shen B, Jiang F, Xia L, Fan T, Qin M . TRPP2 Enhances Metastasis by Regulating Epithelial-Mesenchymal Transition in Laryngeal Squamous Cell Carcinoma. Cell Physiol Biochem. 2016; 39(6):2203-2215. DOI: 10.1159/000447914. View

3.
Qian F, Germino F, Cai Y, Zhang X, Somlo S, Germino G . PKD1 interacts with PKD2 through a probable coiled-coil domain. Nat Genet. 1997; 16(2):179-83. DOI: 10.1038/ng0697-179. View

4.
Wu Y, Miyamoto T, Li K, Nakagomi H, Sawada N, Kira S . Decreased expression of the epithelial Ca2+ channel TRPV5 and TRPV6 in human renal cell carcinoma associated with vitamin D receptor. J Urol. 2011; 186(6):2419-25. DOI: 10.1016/j.juro.2011.07.086. View

5.
Park J, Shim M, Jin M, Rhyu M, Lee Y . Methyl syringate, a TRPA1 agonist represses hypoxia-induced cyclooxygenase-2 in lung cancer cells. Phytomedicine. 2016; 23(3):324-9. DOI: 10.1016/j.phymed.2016.01.009. View