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Epigallocatechin-3-gallate elicits Ca spike in MCF-7 breast cancer cells: Essential role of Cav3.2 channels
Authors:Elia Ranzato  Valeria Magnelli  Simona Martinotti  Zeina Waheed  Stuart M Cain  Terrance P Snutch  Carla Marchetti  Bruno Burlando
Institution:1. Dipartimento di Scienze e Innovazione Tecnologica, DiSIT, Università del Piemonte Orientale, viale T. Michel 11, 15121 Alessandria, Italy;2. Michael Smith Laboratories, University of British Columbia, Rm 219 – 2185 East Mall, Vancouver, BC, Canada V6T 1Z4;3. Istituto di Biofisica, Consiglio Nazionale delle Ricerche, via De Marini 6, 16149 Genova, Italy
Abstract:We used MCF-7 human breast cancer cells that endogenously express Cav3.1 and Cav3.2 T-type Ca2+ channels toward a mechanistic study on the effect of EGCG on Ca2+]i. Confocal Ca2+ imaging showed that EGCG induces a Ca2+]i spike which is due to extracellular Ca2+ entry and is sensitive to catalase and to low-specificity (mibefradil) and high-specificity (Z944) T-type Ca2+channel blockers. siRNA knockdown of T-type Ca2+ channels indicated the involvement of Cav3.2 but not Cav3.1. Application of EGCG to HEK cells expressing either Cav3.2 or Cav3.1 induced enhancement of Cav3.2 and inhibition of Cav3.1 channel activity. Measurements of K+ currents in MCF-7 cells showed a reversible, catalase-sensitive inhibitory effect of EGCG, while siRNA for the Kv1.1 K+ channel induced a reduction of the EGCG Ca2+]i spike. siRNA for Cav3.2 reduced EGCG cytotoxicity to MCF-7 cells, as measured by calcein viability assay. Together, data suggest that EGCG promotes the activation of Cav3.2 channels through K+ current inhibition leading to membrane depolarization, and in addition increases Cav3.2 currents. Cav3.2 channels are in part responsible for EGCG inhibition of MCF-7 viability, suggesting that deregulation of Ca2+]i by EGCG may be relevant in breast cancer treatment.
Keywords:[Ca2+]i spike  Catalase  Cav3  1  Cav3  2  Confocal Ca2+ imaging  Kv1  1  Z944  T-type Ca2+ channels  Whole-cell voltage-clamp
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