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Magnetic Resonance Imaging Assessment of Carcinogen-induced Murine Bladder Tumors
Published on: March 29, 2019
Ca²⁺/CaN-mediated NF-κB and NFAT activation drives arsenic-induced bladder epithelial pre-malignant behavior
Pinya Liu1, Mange Ma2, Shiwen Wang3
1Key Laboratory of Environmental Stress and Chronic Disease Control & Prevention, Ministry of Education (China Medical University), Shenyang, Liaoning Province 110122, China; The Key Laboratory of Liaoning Province on Toxic and Biological Effects of Arsenic, China Medical University, Shenyang, Liaoning Province 110122, China; School of Public Health, Dalian Medical University, Dalian, Liaoning Province 116044, China.
Abstract:
Arsenic, a widely distributed environmental contaminant, poses a significant global public health challenge, affecting hundreds of millions of individuals worldwide. Chronic arsenic exposure is a well-established risk factor for bladder cancer, however, the fundamental underlying molecular processes mechanisms remain incompletely understood. In this study, C57BL/6 mice were exposed to sodium arsenite (NaAsO₂; 0, 8, 20, and 50 mg/L) through drinking water for 20 weeks, and human normal bladder epithelial cells (SV-HUC-1) were chronically treated with 0.5 μM NaAsO2 for 40 weeks. The results demonstrate that long-term arsenic exposure induces aberrant growth of bladder epithelial cells both in vitro and in vivo. Mechanistically, arsenic increased intracellular Ca2 + levels, which were played a role in promoting pre-malignant phenotypes. This study identified calcium-dependent calcineurin (CaN) as a key downstream effector of Ca2+signaling, with its activity enhanced by arsenic-induced Ca2+elevation. Long-term arsenic exposure promoted pre-malignant cellular behavior through CaN activation. Furthermore, CaN enhanced the activity of nuclear factor kappa B (NF-κB) and nuclear factor of activated T cells (NFAT) pathways, both of which are closely associated with tumorigenesis in arsenic-exposed bladder epithelial cells. Pharmacological inhibition of CaN effectively suppressed arsenic-induced activation of both NF-κB and NFAT pathways. Finally, this study demonstrated that store-operated calcium entry (SOCE) serves as the source of elevated intracellular Ca²⁺ levels, and that arsenic activates NF-κB and NFAT signaling pathways through SOCE-mediated Ca²⁺ influx. These findings reveal a mechanistic link whereby chronic arsenic exposure induces SOCE-mediated Ca2+ elevation, activates CaN, and subsequently promotes NF-κB and NFAT pathway activation, ultimately driving pre-malignant behavior of bladder epithelial cells.
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