TY - JOUR
T1 - Hydrogen peroxide-mediated cytosolic acidification is a signal for mitochondrial translocation of bax during drug-induced apoptosis of tumor cells
AU - Ahmad, Kashif A.
AU - Iskandar, Kartini B.
AU - Hirpara, Jayshree L.
AU - Clement, Marie Veronique
AU - Pervaiz, Shazib
PY - 2004/11/1
Y1 - 2004/11/1
N2 - Absence of the proapoptotic protein Bax renders tumor cells resistant to drug-induced apoptosis. We have shown that hydrogen peroxide (H 2O2)-mediated cytosolic acidification is an effector mechanism during drug-induced apoptosis of tumor cells. Here, we report that Bax is critical in determining the sensitivity of tumor cells to H 2O2-induced apoptosis. More importantly, exposure of colorectal carcinoma (HCT116) and leukemia cells (HL60 and CEM) to H 2O2 or its intracellular production during drug-induced apoptosis is a signal for mitochondrial translocation of Bax. Furthermore, we provide evidence that drug-induced H2O2-mediated Bax translocation in tumor cells is caspase independent but involves cytosolic acidification. Inhibiting cytosolic acidification prevents Bax translocation, and contrarily enforced acidification of the intracellular milieu results in mitochondrial recruitment of Bax, even in the absence of a trigger. These findings provide a novel mechanism for mitochondrial translocation of Bax and directly implicate H2O2-mediated cytosolic acidification in the recruitment of the mitochondrial pathway during drug-induced apoptosis of tumor cells.
AB - Absence of the proapoptotic protein Bax renders tumor cells resistant to drug-induced apoptosis. We have shown that hydrogen peroxide (H 2O2)-mediated cytosolic acidification is an effector mechanism during drug-induced apoptosis of tumor cells. Here, we report that Bax is critical in determining the sensitivity of tumor cells to H 2O2-induced apoptosis. More importantly, exposure of colorectal carcinoma (HCT116) and leukemia cells (HL60 and CEM) to H 2O2 or its intracellular production during drug-induced apoptosis is a signal for mitochondrial translocation of Bax. Furthermore, we provide evidence that drug-induced H2O2-mediated Bax translocation in tumor cells is caspase independent but involves cytosolic acidification. Inhibiting cytosolic acidification prevents Bax translocation, and contrarily enforced acidification of the intracellular milieu results in mitochondrial recruitment of Bax, even in the absence of a trigger. These findings provide a novel mechanism for mitochondrial translocation of Bax and directly implicate H2O2-mediated cytosolic acidification in the recruitment of the mitochondrial pathway during drug-induced apoptosis of tumor cells.
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U2 - 10.1158/0008-5472.CAN-04-0648
DO - 10.1158/0008-5472.CAN-04-0648
M3 - Article
C2 - 15520193
AN - SCOPUS:7444223594
SN - 0008-5472
VL - 64
SP - 7867
EP - 7878
JO - Cancer Research
JF - Cancer Research
IS - 21
ER -