76
Views
0
CrossRef citations to date
0
Altmetric
Original Articles

A possible role for reactive oxygen species in the regulation of an ultradian rhythm in Paramecium

&
Pages 927-940 | Received 02 Aug 2018, Accepted 04 Aug 2018, Published online: 05 Sep 2018

References

  • Adams C, Kuriyama H, Lloyd D, Murray DB. 2003. The Gts 1 protein stabilizes the autonomous oscillator in yeast. Yeast. 20:463–470.
  • Aon M, Cortassa S, Marban E, O’Rourke B. 2003. Synchronized whole cell oscillations in mitochondrial metabolism triggered by a local release of reactive oxygen species in cardiac myocytes. J Biol Chem. 278:44735–44744.
  • Apel K, Hirt H. 2004. Reactive oxygen species: metabolism, oxidative stress and signal transduction. Annu Rev Plant Biol. 55:373–399.
  • Bánsághi S, Golenár T, Madesh M, Csordás G, Ramachandra RS, Sharma K, Yule D, Joseph S, Hajnóczky G. 2014. Isoform- and species-specific control of inositol 1,4,5 Trisphosphate (IP3) receptors by reactive oxygen species. J Biol Chem. 289:8170–8181.
  • Beale G, Preer J. 2008. Paramecium: genetics and epigenetics. Boca Raton (FL): Chemical Rubber Company Press.
  • Bhattacharjee S. 2005. Reactive oxygen species and oxidative burst: roles in stress, senescence and signal. Curr Sci. 89:1113–1121.
  • Bootman M, Petersen O, Verkhratsky T. 2002. The endoplasmic reticulum is a focal point for co-ordination of cellular activity. Cell Calcium. 32:231–234.
  • Dunlap JC, Loros JL, Decoursey PJ. 2004. Chronobiology: biological timekeeping. Massachusetts (MA): Sinauer Associates Press.
  • Fraga D, Sehring I, Kissmehl R, Reiss M, Gaines R, Hinrichsen R, Plattner H. 2010. Protein phosphatase 2B (PP2B, Calcineurin) in Paramecium: partial characterization reveals that two members of the unusually large catalytic subunit family have distinct roles in calcium-dependent processes. Eukaryotic Cell. 9:1049–1063.
  • Galvani A, Sperling L. 2002. RNA interference by feeding in Paramecium. Trends Genet. 18:11–12.
  • Gomes A, Costa D, Lima J, Ferndandes. E. 2006. Antioxidant activity of β-blockers: an effect mediated by scavenging reactive oxygen and nitrogen species? Bioorg Med Chem. 14:4568–4577.
  • Hancock J, Desikan R, Neill S. 2001. Role of reactive oxygen species in cell signaling pathways. Biochem Soc Trans. 29:345–350.
  • Heikkila R, Cabbat F, Cohen G. 1976. In vivo inhibition of superoxide dismutase in mice by diethyldithiocarbamate. J Biol Chem. 251:2182–2185.
  • Hinrichsen R. 2010. The frequency of the behavioral response of Paramecium tetraurelia displays an ultradian rhythm: a regulatory role for the inositol signaling pathway. Biol Rhythms Res. 41:457–475.
  • Hinrichsen R. 2012. Biological rhythms and cell behavior in Paramecium. In: Gotsiridze-Columbus N, editor. Protozoa: biology, classification and role in disease.
  • Hinrichsen R, Belsky D, Jones L, Mialki R. 2013. The frequency of the spontaneous behavioral response in Paramecium tetraurelia is simultaneously modulated by both ultradian and circadian rhythms. Biol Rhythms Res. 44:377–390.
  • Hinrichsen R, Fraga D, Russell C. 1995. The regulation of calcium in Paramecium. Adv Second Messenger Phos Res. 30:311–338.
  • Hinrichsen R, Kung C. 1984. Genetic analysis of axonemal mutants in Paramecium tetraurelia defective in their response to calcium. Genet Res. 43:11–20.
  • Hinrichsen R, Schultz J. 1988. Paramecium: a model system for the study of excitable cells. Trends Neurosci. 11:27–32.
  • Hundal T, Norling B, Ernster L. 1984. The oligomycin sensitivity conferring protein (OSCP) of beef heart mitochondria: studies of its binding to F1 and its function. J Bioenerg Biomembr. 16:535–550.
  • Imlay J. 2008. Cellular defenses against superoxide and hydrogen peroxide. Ann Rev Biochem. 77:755–776.
  • Kippert F. 1992. Ultradian and circadian rhythms – two sides of one coin? J Interdiscipl Cycle Res. 23:192–196.
  • Kippert F. 1996. Temperature-compensated ultradian clock of Tetrahymena: oscillations in respiratory activity and cell division. Chronobiol Int. 13:1–13.
  • Klevecz R, Li C. 2007. Evolution of the clock from yeast to man by period-doubling folds in the cellular oscillator. Cold Spring Harb Symp Quant Biol. 72:421–429.
  • Korshunov S, Skulachev VP, Starkov AA. 1997. High protonic potential actuates a mechanism of production of reactive oxygen species in mitochondria. FEBS Lett. 416:15–18.
  • Lieberman S, Hamasaki T, Satir P. 1988. Ultrastructural and motion analysis of permeabilized Paramecium capable of motility and regulation of motility. Cell Motil. Cytoskeleton. 9:73–84.
  • Liu W, Wang J, Mitsui K, Shen H, Tsurugi K. 2002. Interaction of the GTS1 gene product with glyceraldehyde-3-phosphate dehydrogenase 1 required for the maintenance of the metabolic oscillations of the yeast Saccharomyces cerevisiae. Eur J Biochem. 269:3560–3569.
  • Lloyd D. 2006. Ultradian rhythms and clocks in plants and yeast. Biol Rhythm Res. 37:281–296.
  • Lloyd D, Salgado EJ, Murray DB. 2002. Respiratory oscillations in yeast: clock-driven mitochondrial cycles of energization. FEBS Lett. 519:41–44.
  • Lloyd D, Stupfel M. 1991. The occurrence and functions of ultradian rhythms. Biol Rev. 66:275–299.
  • Morris T, Sulakhe P. 1997. Sarcoplasmic reticulumn Ca2+-pumps dysfunction in rat cardiomyocytes briefly exposed to hydroxyl radicals. Free Radic Biol Med. 22:37–47.
  • Murray DB, Roller S, Kuriyama H, Lloyd D. 2001. Clock control of ultradian respiratory oscillation found during yeast continuous culture. J Bacteriol. 183:7253–7259.
  • O’Neill J, van Ooijen G, Dixon L, Troein C, Corellou F, Bouget F, Reddy A, Millar A. 2011. Circadian rhythms persist without transcription in a eukaryote. Nature. 469:554–558.
  • Rutter J, Reick M, Wu L, McKnight S. 2001. Regulation of clock and NPAS2 DNA binding by the redox state of NAD cofactors. Science. 293:510–514.
  • Stangherlin A, Reddy A. 2013. Regulation of circadian clocks by redox homeostasis J. Biol Chem. 288:26505–26511.
  • Turrens J. 2003. Mitochondrial formation of reactive oxygen species. J Physiol. 552:335–344.
  • Veal E, Day A, Morgan B. 2007. Hydrogen peroxide sensing and signaling. Mol Cell. 26:1–14.
  • Zelko I, Mariani T, Folz R. 2002. Superoxide dismutase multigene family: a comparison of the CuZn-SOD (SOD1), Mn-SOD (SOD2), and EC-SOD (SOD3) gene structures, evolution and expression. Free Radic Biol Med. 33:337–349.

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.