59
Views
20
CrossRef citations to date
0
Altmetric
Original Article

NADPH Oxidase-mediated Generation of Reactive Oxygen Species is Critically Required for Survival of Undifferentiated Human Promyelocytic Leukemia Cell Line HL-60

, , &
Pages 629-637 | Received 11 Nov 2003, Published online: 07 Jul 2009

References

  • Badwey, J.A. and Karnovsky, M.L. (1980) "Active oxygen species and the functions of phagocytic leukocytes", Annu. Rev. Biochem. 49, 695–726.
  • Babior, G.L., Rosin, R.E., Mcmurrich, B.J., Peters, W.A. and Babior, B.M. (1981) "Arrangement of the respiratory burst oxidase in the plasma membrane of the neutrophil", J. Clin. Investig. 67(6), 1724–1728.
  • Cohen, H.J., Chovaniec, M.E. and Davies, W.A. (1980) "Activation of the guinea pig granulocyte NAD(P)H-dependent superoxide generating enzyme: localization in a plasma membrane enriched particle and kinetics of activation", Blood 55(3), 355–363.
  • Gabig, T.G. (1983) "The NADPH-dependent 0.2- generating oxidase from human neutrophils", J. Biol. Chem. 258(10), 6352–6356.
  • Suzuki, Y.J., Forman, H.J. and Sevanian, A. (1997) "Oxidants as stimulators of signal transduction", Free Radic. Biol. Med. 22(1-2), 269–285.
  • Wolin, M.S. (2000) "Interactions of oxidants with vascular signaling systems", Arterioscler. Thromb. Vasc. Biol. 20(6), 1430–1442.
  • Finkel, T. (2000) "Redox-dependent signal transduction", FEBS Lett. 476(1–2), 52–54.
  • Perner, A., Andresen, L., Pedersen, G. and Rask-Madsen, J. (2003) "Superoxide production and expression of NAD (P) H oxidases by transformed and primary human colonic epithelial cells", Gut 52, 231–236.
  • Gorlach, A., Brandes, R.P., Nguyen, K., Amidi, M., Dehghani, F. and Busse, R.A. (2000) "gp91phox containing NADPH oxidase selectively expressed in endothelial cells is a major source of oxygen radical generation in the arterial wall", Circ. Res. 87, 26–32.
  • Arnold, R.S., Shi, J., Murad, E., Whalen, A.M., Sun, C.Q., Polavarapu, R., Parthasarathy, S., Petros, J.A. and Lambeth, J.D. (2001) "Hydrogen peroxide mediates the cell growth and transformation caused by the mitogenic oxidase Nox1", Proc. Natl Acad. Sci. LISA 98, 5550–5555.
  • Cheng, G., Cao, Z., Xu, X., Van-Meir, E.G. and Lambeth, J.D. (2001) "Homologs of gp91phox: cloning and tissue expression of Nox3, Nox4, and Nox5", Gene 269, 131–140.
  • Sulk, Y.A., Arnold, R.S., Lassegue, B., Shi, J., Xu, X., Sorescu, D., Chung, A.B., Griendling, K.K. and Lambeth, J.D. (1999) "Cell transformation by the superoxide-generating oxidase Mox1", Nature 401, 79–82.
  • Seno, T., Inoue, N., Gao, D., Okuda, M., Sumi, Y., Matsui, K., Yamada, S., Hirata, K.I., Kawashima, S., Tawa, R., Imajoh-Ohmi, S., Sakurai, H. and Yokoyama, M. (2001) "Involvement of NADH/NADPH oxidase in human platelet ROS production", Thromb. Res. 103, 399–409.
  • Yang, S., Madyastha, P., Bingel, S., Ries, W. and Key, L. (2001) "A new superoxide-generating oxidase in murine osteo-clasts", J. Biol. Chem. 23, 5452–5458.
  • Lassegue, B., Sorescu, D., Szocs, K., Yin, Q., Akers, M., Zhang, Y., Grant, S.L., Lambeth, J.D. and Griendling, K.K. (2001) "Novel gp91(phox) homologues in vascular smooth muscle cells: nox1 mediates angiotensin II-induced super-oxide formation and redox-sensitive signaling pathways", Circ. Res. 88, 888–894.
  • Tolando, R., Jovanovic, A., Brigelius-Flohe, R., Ursini, F. and Maiorino, M. (2000) "Reactive oxygen species and pro-inflammatory cytokine signaling in endothelial cells: effect of selenium supplementation", Free Radic. Biol. Med. 28, 979–986.
  • Sundaresan, M., Yu, Z.X., Ferrans, V.J., Irani, K. and Finkel, T. (1995) "Requirement for generation of H202 for platelet-derived growth factor signal transduction", Science 270, 296–299.
  • Suzukawa, K., Miura, K., Mitsushita, J., Resau, J., Hirose, K., Crystal, R. and Kamata, T. (2000) "Nerve growth factor-induced neuronal differentiation requires generation of Rac1-regulated reactive oxygen species", J. Biol. Chem. 275, 13175–13178.
  • Chenais, B., Andriollo, M., Guiraud, P., Belhoussine, R. and Jeannesson, P. (2000) "Oxidative stress involvement in chemically induced differentiation of K562 cells", Free Radic. Biol. Med. 28, 18–27.
  • Goldsmit, Y., Erlich, S. and Pinkas-Kramarski, R. (2001) "Neuregulin induces sustained reactive oxygen species generation to mediate neuronal differentiation", Cell Mol. Neurobiol. 21, 753–769.
  • Cole, K.K. and Perez-Polo, J.R. (2002) "Poly (ADP-ribose) polymerase inhibition prevents both apoptotic-like delayed neuronal death and necrosis after H(2)0(2) injury", J. Neurochem. 82, 19–29.
  • Simonian, N.A. and Coyle, J.T. (1996) "Oxidative stress in neurodegenerative diseases", Annu. Rev. PharmacoL Toxicol. 36, 83–106.
  • Sankarapandi, S., Zweier, J.L., Mukherjee, G., Quinn, M.T. and Huso, D.L. (1998) "Measurement and characterization of superoxide generation in microglial cells: evidence for an NADPH oxidase-dependent pathway", Arch. Biochem. Biophys. 353, 312–321.
  • Abid, M.R., Kachra, Z., Spokes, K.C. and Aird, W.C. (2000) "NADPH oxidase activity is required for endothelial cell proliferation and migration", FEBS Lett. 486(3), 252–256.
  • Beswick, R.A., Dorrance, A.M., Leite, R. and Webb, R.C. (2001) "NADH/NADPH oxidase and enhanced superoxide production in the mineralocorticoid hypertensive rat", Hypertension 38(5), 1107–1111.
  • Demmano, G., Selegny, E. and Vincent, J.C. (1996) "Experimental procedure for a hydrogen peroxide assay based on the peroxidase—oxidase reaction", Fur. J. Biochem. 238, 785–789.
  • Kolb, M.J. and Bourne, W.M. (1986) "Supravital fluorescent staining of the corneal endothelium with acridine orange and ethidium bromide", Curr. Eye. Res. 5, 485–494.
  • Leite, M., Quinta-Costa, M., Leite, P.S. and Guimaraes, J.E. (1999) "Critical evaluation of techniques to detect and measure cell death—study in a model of UV radiation of the leukaemic cell line HL60", Anal. Cell Pathol. 19, 139–151.
  • Diaz, A., Rangel, P., Montes de Oca, Y., Lledias, F. and Hansberg, W. (2001) "Molecular and kinetic study of catalase-1, a durable large catalase of Neurospora crassa", Free Radic. Biol. Med. 31, 1323–1333.
  • Spector, D.L., Goldman, R.D. and Leinwand, L.A. (2001) Cells: A Laboratory Manual, 1st Ed. (Cold Spring Harbor Laboratory Press).
  • Arroyo, A., Modriansky, M., Serinkan, F.B., Bello, RI., Matsura, T., Jiang, J., Tyurin, V.A., Tyurina, Y.Y., Fadeel, B. and Kagan, V.E. (2002) "NADPH oxidase-dependent oxidation and externalization of phosphatidylserine during apoptosis in Me2S0-differentiated HL-60 cells, Role in phagocytic clearance", J. Biol. Chem. 277(51), 49965–49975.
  • Newburger, P.E., Speier, C., Borregaard, N., Walsh, CT., VVhitin, J.C. and Simons, E.R. (1984) "Development of the superoxide-generating system during differentiated of the HL-60 human promyelocytic leukemia cell", J. Biol. Chem. 259(6), 3771–3776.
  • Thannickal, V.J. and Fanburg, B.L. (2000) "Reactive oxygen species in cell signaling", Am. J. Physiol. Lung Cell Mol. Physiol. 279, 1005–1028.
  • Tammariello, S.P. and Quinn, M.T. (2000) "NADPH oxidase contributes directly to oxidative stress and apoptosis in nerve growth factor-deprived sympathetic neurons", J. Neurosci. 20, 53.
  • Li, Y. and Trush, M.A. (1998) "Diphenyleneiodonium, an NAD (P) H oxidase inhibitor, also potently inhibits mitochondrial reactive oxygen species production", Biochem. Biophys. Res. Commun. 253, 295–299.
  • Pullar, J.M. and Hampton, M.B. (2002) "Diphenyleneiodo-nium triggers the efflux of glutathione from cultured cells", J. Biol. Chem. 277, 19402–19407.
  • Johnson, D.K., Schillinger, K.J., Kwait, D.W., Hughes, C.V., Mcnamara, E.J., Ishmael, F., Odonnell, R.W., Chang, MM., Hogg, M.G., Dordick, J.S., Santhanam, L., Ziegler, L.M. and Holland, J.A. (2002) "Inhibitor of NADPH oxidase activation in endothelial cells by ortho-methoxy-substituted catechols", Endothelium 9, 191–203.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.