Exploiting MCF-7 Cells’ Calcium Dependence with Interlaced Therapy
- 1 Department of Physiology, School of Medicine, Tulane University, New Orleans, USA
- 2 Department of Physiology, School of Medicine, Tulane University, New Orleans, USA
- 3 Tau Therapeutics, LLC, Charlottesville, USA
- 4 Department of Physiology, School of Medicine, Tulane University, New Orleans, USA
Abstract
The purpose of this study is to demonstrate MCF-7 cells’ dependence on calcium for growth and to exploit that de pendence to improve chemotherapy efficacy. Fura-2 fluorescence imaging shows that MCF-7 cells maintain a higher basal intracellular calcium concentration than non-tumorigenic MCF-10A cells. Blocking T-type calcium channels with mibefradil reduced MCF-7 intracellular calcium concentration. Flow cytometry shows that knocking down T-type cal cium channel expression with siRNA caused an increase in MCF-7 cells in G1 phase and a decrease in cells in S phase. Proliferation assays of MCF-7 cells treated with EGTA and thapsigargin reveal the dependence of MCF-7 cell growth on extracellular and intracellular calcium sources, respectively. In vitro , interlaced treatment that alternated the T-type calcium channel blocker NNC-55-0396 with paclitaxel more effectively reduced MCF-7 cell number than chemother apy alone. In a mouse in vivo model, interlaced mibefradil and paclitaxel more effectively reduced MCF-7 xenograft size than chemotherapy alone. These findings indicate that MCF-7 cells are dependent on calcium for proliferation, par ticularly in passing the G1/S cell cycle checkpoint. Further, this dependence on calcium can be exploited by alternating treatment with T-type calcium channel blockers with paclitaxel in an interlaced therapy scheme that increases the effi cacy of the chemotherapy.
- H. L. Roderick and S. J. Cook, “Ca2+ Signaling Checkpoints in Cancer: Remodeling Ca2+ for Cancer Cell Proliferation and Survivial,” Nature Reviews Cancer, Vol. 8, No. 5, 2008, pp. 361-375. doi:10.1038/nrc2374
- D. Walker, T. Sun, S. MacNeil and R. Smallwood, “Modeling the Effect of Exogenous Calcium on Keratinocyte and HaCat Cell Proliferation and Differentiation Using and Agent-Based Computational Paradigm,” Tissue Engineering, Vol. 12, No. 8, 2006, pp. 2301-2309. doi:10.1089/ten.2006.12.2301
- S. Rosenberger, I. S. Thorey, S. Werner and P. Boukamp, “A Novel Regulator of Telomerase. S100A8 Mediates Differentiation-Dependent and Calcium-Induced Inhibition of Telomerase Activity in the Human Epidermal Keratinocyte Line HaCaT,” The Journal of Biological Chemistry, Vol. 282, No. 9, 2007, pp. 6126-6135. doi:10.1074/jbc.M610529200
- G. Legrand, S. Humez, C. Slomianny, E. Dewailly, F. Vanden Abeele, P. Mariot, F. Wuytack and N. Prevarskaya, “Ca2+ Pools and Cell Growth. Evidence for Sarcoendoplasmic Ca2+-ATPases 2B Involvement in Human Prostate Cancer Cell Growth Control,” The Journal of Biological Chemistry, Vol. 276, No. 50, 2001, pp. 47609-47614. doi:10.1074/jbc.M107011200
- V. Lehen’kyi, M. Flourakis, R. Skryma and N. Prevarskaya, “TRPV6 Channel Controls Prostate Cancer Cell Proliferation via Ca(2+)/NFAT-Dependent Pathways,” Oncogene, Vol. 26, No. 52, 2007, pp. 7380-7385. doi:10.1038/sj.onc.1210545
- J. T. Taylor, X. B. Zeng, J. E. Pottle, K. Lee, A. R. Wang, S. G. Yi, J. A. S. Scruggs, S. S. Sikka and M. Li, “Calcium Signaling and T-Type Calcium Channels in Cancer Cell Cycling,” World Journal of Gastroenterology, Vol. 14, No. 32, 2008, pp. 4984-4991. doi:10.3748/wjg.14.4984
- J. T. Taylor, L. Huang, J. E. Pottle, K. Liu, Y. Yang, X. Zeng, B. M. Keyser, K. C. Agrawal, J. B. Hansen and M. Li, “Selective Blockade of T-Type Ca2+ Channels Suppresses Human Breast Cancer Cell Proliferation,” Cancer Letters, Vol. 267, No. 1, 2008, pp. 116-124. doi:10.1016/j.canlet.2008.03.032
- F. Lu, H. Chen, C. Zhou, S. Liu, M. Guo, P. Chen, H. Zhuang, D. Xie and S. Wu, “T-Type Ca(2+) Channel Expression in Human Esophageal Carcinomas: A Functional Role in Proliferation,” Cell Calcium, Vol. 43, No. 1, 2008, pp. 49-58. doi:10.1016/j.ceca.2007.03.006
- G. E. Bertolesi, C. Shi, L. Elbaum, C. Jollimore, G. Rozenberg, S. Barnes and M. E. M. Kelly, “The Ca2+ Channel Antagonists Mibefradil and Pimozide Inhibit Cell Growth via Different Cytotoxic Mechanisms,” Molecular Pharmacology, Vol. 62, No. 2, 2002, pp. 210-219. doi:10.1124/mol.62.2.210