Cardiomyocytes in culture can survive low or mild doses of oxidants but later increase cell volume and protein content. To understand the mechanism, we determined the early signaling events of oxidative stress. With 200 muM H(2)O(2), the activity of p70 S6 kinase-1 (p70S6K1) increased at 30 min and reached a plateau at 90 min. Dose-response studies at the 60 min time point show that p70S6K1 activity reached its highest level with 150 muM H(2)O(2). Increased p70S6K1 activity correlated with phosphorylation of Thr389 and Thr421/Ser424 residues, suggesting the involvement of an upstream kinase. Phosphoinositide 3-kinase (PI3K) activity was elevated by 5 min, reached a plateau at 10 min, and remained more than 6-fold induced for at least 60 min after 200 muM H(2)O(2) exposure. The close-response studies at 10 min found that 150 muM H(2)O(2) induced the highest PI3K activity. Increased PI3K activity correlated with tyrosine phosphorylation of the 85-kDa regulatory subunit. Inactivating PI3K with wortmannin prevented H(2)O(2) from inducing Thr389 phosphorylation and p70S6K1 activation. Wortmannin and rapamycin prevented H(2)O(2) from inducing increases in cell volume and protein content. The antineoplastic drugs doxorubicin and daunorubicin also induced significant enlargement of cardiomyocytes at 10 to 100 nM dose range. Although the glutathione synthesis inhibitor buthionine sulfoximine potentiated the effect of doxorubicin and H(2)O(2), the antioxidant N-acetylcysteine prevented induction of cell enlargement. Our data suggest that oxidative stress induces activation of PI3K, which leads to p70S6K1 activation and enlargement of cell size.
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Canc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, England
Paris Descartes Univ, Sch Med, Inserm U845, Lab Cell Growth Control Nutrients, Paris, FranceCanc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, England
Treins, C.
Warne, P. H.
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Canc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, EnglandCanc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, England
Warne, P. H.
Magnuson, M. A.
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Vanderbilt Univ, Dept Mol Physiol & Biophys, Med Ctr, Nashville, TN 37232 USA
Vanderbilt Univ, Ctr Stem Cell Biol, Med Ctr, Nashville, TN 37232 USACanc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, England
Magnuson, M. A.
Pende, M.
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Paris Descartes Univ, Sch Med, Inserm U845, Lab Cell Growth Control Nutrients, Paris, FranceCanc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, England
Pende, M.
Downward, J.
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Canc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, EnglandCanc Res UK London Res Inst, Signal Transduct Lab, London WC2A 3PX, England
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Australian Natl Univ, John Curtin Sch Med Res, Div Neurosci, Canberra, ACT 0200, AustraliaAustralian Natl Univ, John Curtin Sch Med Res, Div Neurosci, Canberra, ACT 0200, Australia
Raymond, CR
Redman, SJ
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Australian Natl Univ, John Curtin Sch Med Res, Div Neurosci, Canberra, ACT 0200, AustraliaAustralian Natl Univ, John Curtin Sch Med Res, Div Neurosci, Canberra, ACT 0200, Australia
Redman, SJ
Crouch, MF
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Australian Natl Univ, John Curtin Sch Med Res, Div Neurosci, Canberra, ACT 0200, AustraliaAustralian Natl Univ, John Curtin Sch Med Res, Div Neurosci, Canberra, ACT 0200, Australia