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Cell Growth and Development

Calcium Binding of ARC Mediates Regulation of Caspase 8 and Cell Death

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Pages 9763-9770 | Received 23 Apr 2004, Accepted 20 Aug 2004, Published online: 27 Mar 2023

REFERENCES

  • Allan, L. A., Morrice N., Brady S., Magee G., Pathak S., and Clarke P. R.. 2003. Inhibition of caspase-9 through phosphorylation at Thr 125 by ERK MAPK. Nat. Cell Biol. 5:647–654.
  • Alnemir, E. S., Livingston D. J., Nicholson D. W., Salvesen G., Thornberry N. A., Wong W. W., and Yuan J.. 1996. Human ICE/CED-3 protease nomenclature. Cell 87:171.
  • Andreyev, A., and Fiskum G.. 1999. Calcium induced release of mitochondrial cytochrome c by different mechanisms selective for brain versus liver. Cell Death Differ. 6:825–832.
  • Bodmer, J. L., Holler N., Reynard S., Vinciguerra P., Schneider P., Juo P., Blenis J., and Tschopp J.. 2000. TRAIL receptor-2 signals apoptosis through FADD and caspase-8. Nat. Cell Biol. 2:241–243.
  • Caday, C. G., and Steiner R. F.. 1985. The interaction of calmodulin with the carbocyanine dye (Stains-all). J. Biol. Chem. 260:5985–5990.
  • Campbell, K. P., MacLennan D. H., and Jorgensen A. O.. 1983. Staining of the Ca2+-binding proteins, calsequestrin, calmodulin, troponin C, and S-100, with the cationic carbocyanine dye “Stains-all.” J. Biol. Chem. 258:11267–11273.
  • Cardone, M. H., Roy N., Stennicke H. R., Salvesen G. S., Franke T. F., Stanbridge E., Frisch S., and Reed J. C.. 1998. Regulation of cell death protease caspase-9 by phosphorylation. Science 282:1318–1321.
  • Chun, H. J., Zheng L., Ahmad M., Wang J., Speirs C. K., Siegel R. M., Dale J. K., Puck J., Davis J., Hall C. G., Skoda-Smith S., Atkinson T. P., Straus S. E., and Lenardo M. J.. 2002. Pleiotropic defects in lymphocyte activation caused by caspase-8 mutations lead to human immunodeficiency. Nature 419:395–399.
  • Eisner, D. A., Nichols C. G., O'Neill S. C., Smith G. L., and Valdeolmillos M.. 1989. The effects of metabolic inhibition on intracellular calcium and pH in isolated rat ventricular cells. J. Physiol. (London) 411:393–418.
  • Ekhterae, D., Lin Z., Lundberg M. S., Crow M. T., Brosius III F. C., and Nunez G.. 1999. ARC inhibits cytochrome c release from mitochondria and protects against hypoxia-induced apoptosis in heart-derived H9c2 cells. Circ. Res. 85:e70–e77.
  • Ghosh, A., and Greenberg M. E.. 1995. Calcium signaling in neurons: molecular mechanisms and cellular consequences. Science 268:239–247.
  • Gogvadze, V., Robertson J. D., Zhivotovsky B., and Orrenius S.. 2001. Cytochrome c release occurs via Ca2+-dependent and Ca2+-independent mechanisms that are regulated by Bax. J. Biol. Chem. 276:19066–19071.
  • Gordon, J. L. 1986. Extracellular ATP: effects, sources and fate. Biochem. J. 233:309–319.
  • Green, D. R. 2000. Apoptotic pathways: paper wraps stone blunts scissors. Cell 102:1–4.
  • Gustafsson, A. B., Tsai J. G., Logue S. E., Crow M. T., and Gottlieb R. A.. 2004. Apoptosis repressor with caspase recruitment domain protects against cell death by interfering with Bax activation. J. Biol. Chem. 279:21233–21238.
  • Hofmann, K. 1999. The modular nature of apoptotic signaling proteins. Cell. Mol. Life Sci. 55:1113–1119.
  • Hong, Y. M., Jo D. G., Lee J. Y., Chang J. W., Nam J. H., Noh J. Y., Koh J. Y., and Jung Y. K.. 2003. Down-regulation of ARC contributes to vulnerability of hippocampal neurons to ischemia/hypoxia. FEBS Lett. 543:170–173.
  • Ikenouchi, H., Kohmoto O., McMillan M., and Barry W. H.. 1991. Contributions of [Ca2+]i, [Pi]i, and pHi to altered diastolic myocyte tone during partial metabolic inhibition. J. Clin. Investig. 88:55–61.
  • Jayaraman, T., and Marks A. R.. 1997. T cells deficient in inositol 1,4,5-trisphosphate receptor are resistant to apoptosis. Mol. Cell. Biol. 17:3005–3012.
  • Juo, P., Kuo C. J., Yuan J., and Blenis J.. 1998. Essential requirement for caspase-8/FLICE in the initiation of the Fas-induced apoptotic cascade. Curr. Biol. 8:1001–1008.
  • Kim, B. C., Kim H. T., Mamura M., Ambudkar I. S., Choi K. S., and Kim S. J.. 2002. Tumor necrosis factor induces apoptosis in hepatoma cells by increasing Ca2+ release from the endoplasmic reticulum and suppressing Bcl-2 expression. J. Biol. Chem. 277:31381–31389.
  • Koseki, T., Inohara N., Chen S., and Nunez G.. 1998. ARC, an inhibitor of apoptosis expressed in skeletal muscle and heart that interacts selectively with caspases. Proc. Natl. Acad. Sci. USA 95:5156–5160.
  • Li, P. F., Li J., Muller E. C., Otto A., Dietz R., and von Harsdorf R.. 2002. Phosphorylation by protein kinase CK2: a signaling switch for the caspase-inhibiting protein ARC. Mol. Cell 10:247–258.
  • Maruyama, K., Mikawa T., and Ebashi S.. 1984. Detection of calcium binding proteins by 45Ca autoradiography on nitrocellulose membrane after sodium dodecyl sulfate gel electrophoresis. J. Biochem. (Tokyo) 95:511–519.
  • Meier, P., Finch A., and Evan G.. 2000. Apoptosis in development. Nature 407:796–801.
  • Nagata, S. 1997. Apoptosis by death factor. Cell 88:355–365.
  • Neuss, M., Monticone R., Lundberg M. S., Chesley A. T., Fleck E., and Crow M. T.. 2001. The apoptotic regulatory protein ARC (apoptosis repressor with caspase recruitment domain) prevents oxidant stress-mediated cell death by preserving mitochondrial function. J. Biol. Chem. 276:33915–33922.
  • Nicholson, D. W. 2000. From bench to clinic with apoptosis-based therapeutic agents. Nature 407:810–816.
  • Orrenius, S., Zhivotovsky B., and Nicotera P.. 2003. Regulation of cell death: the calcium-apoptosis link. Nat. Rev. Mol. Cell Biol. 4:552–565.
  • Pollock, J., McFarlane S. M., Connell M. C., Zehavi U., Vandenabeele P., MacEwan D. J., and Scott R. H.. 2002. TNF-alpha receptors simultaneously activate Ca2+ mobilization and stress kinases in cultured sensory neurons. Neuropharmacology 42:93–106.
  • Putney, J. W., Jr. 1993. Excitement about calcium signaling in inexcitable cells. Science 262:676–678.
  • Schild, L., Keilhoff G., Augustin W., Reiser G., and Striggow F.. 2001. Distinct Ca2+ thresholds determine cytochrome c release or permeability transition pore opening in brain mitochondria. FASEB J. 15:565–567.
  • Sprick, M. R., Weigand M. A., Rieser E., Rauch C. T., Juo P., Blenis J., Krammer P. H., and Walczak H.. 2000. FADD/MORT1 and caspase-8 are recruited to TRAIL receptors 1 and 2 and are essential for apoptosis mediated by TRAIL receptor 2. Immunity 12:599–609.
  • Stoss, O., Schwaiger F. W., Cooper T. A., and Stamm S.. 1999. Alternative splicing determines the intracellular localization of the novel nuclear protein Nop30 and its interaction with the splicing factor SRp30c. J. Biol. Chem. 274:10951–10962.
  • Yuan, J., and Yankner B. A.. 2000. Apoptosis in the nervous system. Nature 407:802–809.

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