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Identification of Intracellular Signaling Events Induced in Viable Cells by Interaction with Neighboring Cells Undergoing Apoptotic Cell Death
Published on: December 27, 2016
A mechanism for P-glycoprotein-mediated apoptosis as revealed by verapamil hypersensitivity
Joel Karwatsky1, Maximilian C Lincoln, Elias Georges
1Institute of Parasitology, McGill University, Macdonald Campus, Ste-Anne de Bellevue, Quebec H9X 3V9, Canada.
Abstract:
Selection of tumor cell lines with anticancer drugs has led to the appearance of multidrug-resistant (MDR) subclones with P-glycoprotein 1 (P-gp1) expression. These cells are cross-resistant to several structurally and functionally dissimilar drugs. Interestingly, in the process of gaining resistance, MDR cells become hypersensitive or collaterally sensitive to membrane-active agents, such as calcium channel blockers, steroids, and local anaesthetics. In this report, hypersensitivity to the calcium channel blocker, verapamil, was analyzed in sensitive and resistant CHO cell lines. Our results show that treatment with verapamil preferentially induced apoptosis in MDR cells compared to drug-sensitive cells. This effect was independent of p53 activity and could be inhibited by overexpression of the Bcl-2 gene. The induction of apoptosis by verapamil had a biphasic trend in which maximum cell death occurred at 10 microM, followed by improved cell survival at higher concentrations (50 microM). We correlated this effect to a similar biphasic trend in P-gp1 ATPase activation by verapamil in which low concentrations of verapamil (10 microM) activated ATPase, followed by inhibition at higher concentrations. To confirm the relationship between apoptosis and ATPase activity, we used two inhibitors of P-gp1 ATPase, PSC 833 and ivermectin. These ATPase inhibitors reduced hypersensitivity to verapamil in MDR cells. In addition, low concentrations of verapamil resulted in the production of reactive oxygen species (ROS) in MDR cells. Taken together, these results show that apoptosis was preferentially induced by P-gp1 expressing cells exposed to verapamil, an effect that was mediated by ROS, produced in response the high ATP demand by P-gp1.
Insights
Multidrug-resistant cells expressing P-glycoprotein 1 (P-gp1) show increased apoptosis when treated with verapamil. This P-gp1-mediated effect involves reactive oxygen species (ROS) and is modulated by verapamil concentration.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Anticancer drug selection induces multidrug resistance (MDR) via P-glycoprotein 1 (P-gp1) expression.
- MDR cells exhibit cross-resistance to diverse drugs but collateral sensitivity to membrane-active agents.
- Verapamil, a calcium channel blocker, demonstrates differential effects on sensitive and resistant cell lines.
Purpose of the Study:
- To investigate the hypersensitivity of MDR cells to verapamil.
- To elucidate the mechanisms underlying verapamil-induced apoptosis in P-gp1 expressing cells.
- To explore the role of P-gp1 ATPase activity and reactive oxygen species (ROS) in this phenomenon.
Main Methods:
- Utilized sensitive and resistant Chinese Hamster Ovary (CHO) cell lines.
- Administered verapamil at varying concentrations (10 microM and 50 microM).
- Assessed apoptosis induction, P-gp1 ATPase activity, p53 activity, Bcl-2 expression, and ROS production. Employed P-gp1 ATPase inhibitors (PSC 833, ivermectin).
Main Results:
- Verapamil preferentially induced apoptosis in MDR cells, independent of p53.
- Apoptosis induction by verapamil showed a biphasic trend, peaking at 10 microM.
- This effect correlated with verapamil's biphasic modulation of P-gp1 ATPase activity and was linked to ROS production.
Conclusions:
- P-gp1 expressing cells are preferentially sensitized to verapamil-induced apoptosis.
- The mechanism involves ROS generation driven by P-gp1's high ATP demand at low verapamil concentrations.
- P-gp1 ATPase activity and ROS are key mediators of verapamil's collateral effect on MDR cells.
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