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1.
World J Gastroenterol ; 14(32): 4984-91, 2008 Aug 28.
Article de Anglais | MEDLINE | ID: mdl-18763278

RÉSUMÉ

Regulation of intracellular calcium is an important signaling mechanism for cell proliferation in both normal and cancerous cells. In normal epithelial cells, free calcium concentration is essential for cells to enter and accomplish the S phase and the M phase of the cell cycle. In contrast, cancerous cells can pass these phases of the cell cycle with much lower cytoplasmic free calcium concentrations, indicating an alternative mechanism has developed for fulfilling the intracellular calcium requirement for an increased rate of DNA synthesis and mitosis of fast replicating cancerous cells. The detailed mechanism underlying the altered calcium loading pathway remains unclear; however, there is a growing body of evidence that suggests the T-type Ca(2+) channel is abnormally expressed in cancerous cells and that blockade of these channels may reduce cell proliferation in addition to inducing apoptosis. Recent studies also show that the expression of T-type Ca(2+) channels in breast cancer cells is proliferation state dependent, i.e. the channels are expressed at higher levels during the fast-replication period, and once the cells are in a non-proliferation state, expression of this channel is minimal. Therefore, selectively blocking calcium entry into cancerous cells may be a valuable approach for preventing tumor growth. Since T-type Ca(2+) channels are not expressed in epithelial cells, selective T-type Ca(2+) channel blockers may be useful in the treatment of certain types of cancers.


Sujet(s)
Canaux calciques de type T/métabolisme , Signalisation calcique/physiologie , Tumeurs/métabolisme , Tumeurs/anatomopathologie , Calcium/métabolisme , Cycle cellulaire/physiologie , Humains
2.
Cancer Lett ; 267(1): 116-24, 2008 Aug 18.
Article de Anglais | MEDLINE | ID: mdl-18455293

RÉSUMÉ

We have measured the expression of T-type Ca2+ channel mRNA in breast cancer cell lines (MCF-7 (ERalpha+) using Western blot and quantitative real-time PCR (Q-RT-PCR). These results revealed that the MCF-7 cells express both alpha1G and alpha1H isoforms of T-type Ca2+ channels. In order to further clarify the role of T-type Ca2+ channels in proliferation, we tested the effects of a selective T-type Ca2+ channel inhibitor NNC-55-0396 on cellular proliferation. MCF-7 (ERalpha+) cellular proliferation was inhibited by the compound. In contrast, NNC-55-0396 at same concentration had no effect on the proliferation of MCF-10A cells, a non-cancer breast epithelial cell line. We also found that message expression of the T-type Ca2+ channels were only expressed in rapidly growing non-confluent cells but not in the cytostatic confluent cells. Knocking down the expression of T-type Ca2+ channels with siRNA targeting both alpha1G and alpha1H resulted in growth inhibition as much as 45%+/-5.0 in MCF-7 cells as compared to controls. In conclusion, our results suggest that T-type Ca2+ channel antagonism/silencing may reduce cellular proliferation in mitogenic breast cells.


Sujet(s)
Benzimidazoles/pharmacologie , Tumeurs du sein/métabolisme , Canaux calciques de type T/métabolisme , Prolifération cellulaire/effets des médicaments et des substances chimiques , Région mammaire/effets des médicaments et des substances chimiques , Région mammaire/métabolisme , Tumeurs du sein/anatomopathologie , Inhibiteurs des canaux calciques/pharmacologie , Lignée cellulaire , Cyclopropanes , Humains , Naphtalènes , Petit ARN interférent/pharmacologie
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