Publication Cover
Chronobiology International
The Journal of Biological and Medical Rhythm Research
Volume 30, 2013 - Issue 7
608
Views
26
CrossRef citations to date
0
Altmetric
Research Article

Circadian Rhythms of Embryonic Development and Hatching in Fish: A Comparative Study of Zebrafish (Diurnal), Senegalese Sole (Nocturnal), and Somalian Cavefish (Blind)

, , , , , , & show all
Pages 889-900 | Received 06 Dec 2012, Accepted 04 Mar 2013, Published online: 22 May 2013

REFERENCES

  • Anguis V, Canavate JP. (2005). Spawning of captive Senegal sole (Solea senegalensis) under a naturally fluctuating temperature regime. Aquaculture 243: 133–145
  • Bayarri MJ, Muñoz-Cueto JA, López-Olmeda JF, Vera LM, Rol de Lama MA, Madrid JA, Sánchez-Vázquez FJ. (2004). Daily locomotor activity and melatonin rhythms in Senegal sole (Solea senegalensis). Physiol. Behav. 81: 577–583
  • Berti R, Durand JP, Becchi S, Brizzi R, Keller N, Ruffat G. (2001). Eye degeneration in the blind cave-dwelling fish Phreatichthys andruzzii. Can. J. Zool. 79: 1278–1285
  • Beyers DW, Rice JA. (2002). Evaluating stress in fish using bioenergetics-based stressor-response models. In Adams SM (ed.). Biological indicators of aquatic ecosystem stress. Bethesda. MD: American Fisheries Society, 289–320
  • Blanco-Vives B, Sanchez-Vazquez FJ. (2009). Synchronisation to light and feeding time of circadian rhythms of spawning and locomotor activity in zebrafish. Physiol. Behav. 98: 268–275
  • Blanco-Vives B, Villamizar N, Ramos J, Bayarri MJ, Chereguini O, Sánchez-Vázquez FJ. (2010). Effect of daily thermo- and photo-cycles of different light spectrum on the development of Senegal sole (Solea senegalensis) larvae. Aquaculture. 306: 137–145
  • Blanco-Vives B, Aliaga-Guerrero M, Cañavate JP, Muñoz-Cueto JA, Sánchez-Vázquez FJ. (2011). Does lighting manipulation during incubation affect hatching rhythms and early development of sole?. Chronobiol. Int. 28: 300–306
  • Blanco-Vives B, Aliaga-Guerrero M, Cañavate JP, García-Mateos G, Martín-Robles AJ, Herrera-Pérez P, Muñoz-Cueto JA, Sánchez-Vázquez FJ. (2012). Metamorphosis induces a light-dependent switch in Senegaleses ole (Solea senegalensisKaup) from diurnal to nocturnal behaviour. J. Biol. Rhythms 27: 135–144
  • Cavallari N, Frigato E, Vallone D, Fröhlich N, Lopez-Olmeda JF, Foà A, Berti R, Sánchez-Vázquez FJ, Bertolucci C, Foulkes NS. (2011). A blind circadian clock in cavefish reveals that opsins mediate peripheral clock photoreception. PLoS Biol. 9: e1001142
  • Clarke A, Johnston NM. (1999). Scaling of metabolic rate with body mass and temperature in teleost fish. J. Anim. Ecol. 68: 893–905
  • Davie A, Sanchez JA, Vera LM, Sanchez-Vazquez FJ, Migaud H. (2011). Ontogeny of clock mechanisms during embryogenesis in Rainbow trout (Onchorhynkiss mykiss). Chronobiol. Int. 28: 177–186
  • Deane EE, Woo NYS. (2009). Modulation of fish growth hormone levels by salinity, temperature, pollutants and aquaculture related stress: a review. Rev. Fish Biol. Fish. 19: 97–120
  • Dekens MPS, Santoriello C, Vallone D, Grassi G, Whitmore D, Foulkes NS. (2003). Light regulates the cell cycle in zebrafish. Curr. Biol. 13: 2051–2057
  • Dekens MP, Whitmore D. (2008). Autonomous onset of the circadian clock in the zebrafish embryo. EMBO J. 27: 2757–65
  • Delaunay F, Thisse C, Marchand O, Laudet V, Thisse B. (2000). An inherited functional circadian clock in zebrafish embryos. Science 289: 297–300
  • Denvir MA, Tucker CS, Mullins JJ. (2008). Systolic and diastolic ventricular function in zebrafish embryos: influence of norepinephrine, MS-222 and temperature. BMC Biotechnol. 8: 21
  • Dinis MT, Ribeiro L, Soares F, Sarasquete C. (1999). A review on the cultivation potential of Solea senegalensis in Spain and in Portugal. Aquaculture 176: 27–38
  • Donaldson MR, Cooke SJ, Patterson DA, MacDonald JS. (2008). Cold shock and fish. J. Fish Biol. 73: 1491–1530
  • Ercolini A, Berti R, Chelazzi L, Messana G. (1982). Researches on the phreatobic fishes of Somalia: achievements and prospects. Monit. Zool. Ital. Suppl. 17: 219–241
  • Gibson RN. (2005). The behavior of flatfishes. In Gibson RN (ed.). Flatfishes: biology and exploitation. Oxford: Blackwell Publishing, 226–228
  • Gorodilov YN. (2010). The biological clock in vertebrate embryogenesis as a mechanism of general control over the developmental organism. Russ. J. Dev. Biol. 41: 201–216
  • Guerreiro I, Peres H, Castro-Cunha M, Oliva-Teles A. (2012). Effect of temperature and dietary protein/lipid ratio on growth performance and nutrient utilization of juvenile Senegalese sole (Solea senegalensis). Aquacult. Nutr. 18: 98–106
  • Hurd MW, Cahill GM. (2002). Entraining signals initiate behavioural circadian rhythmicity in larval zebrafish. J. Biol. Rhythms 17: 307–314
  • Idda ML, Kage E, López-Olmeda JF, Phillipp M, Foulkes N, Vallone D. (2012). Circadian timing of injury-induced cell proliferation in zebrafish. PloS ONE 7: e34203
  • Johnson JB, Belk MC. (2004). Temperate Utah chub form valid otolith annuli in the absence of fluctuating water temperature. J. Fish Biol. 65: 293–298
  • Kamler E. (2008). Resource allocation in yolk-feeding fish. Rev. Fish Biol. Fish. 18: 143–200
  • Kazimi N, Cahill GM. (1999). Development of a circadian melatonin rhythm in embryonic zebrafish. Dev. Brain Res. 117: 47–52
  • Kimmel CB, Ballard WW, Kimmel SR, Ullmann B, Schilling TF. (1995). Stages of embryonic development of the zebrafish. Dev. Dynam. 203: 253–310
  • Kirschner M, Newport J, Gerhart J. (1985). The timing of early developmental events in Xenopus. Trends Genet. 1: 41–47
  • Kulczykowska E, Popek W, Kapoor BG. (2010). Biological clock in fish. Enfield, NH: Science Publishers, 264 pp
  • Lahiri K, Vallone D, Gondi SB, Santoriello C, Dickmeis T, Foulkes NS. (2005). Temperature regulates transcription in the zebrafish circadian clock. PLoS Biol. 3: e351
  • López-Olmeda JF, Sánchez-Vázquez FJ. (2011). Thermal biology of zebrafish (Danio reiro). J. Therm. Biol. 36: 91–104
  • Magnuson JJ, Crowder LB, Medvick PA. (1979). Temperature as an ecological resource. Am. Zool. 19: 331–343
  • Martín-Robles AJ, Aliaga-Guerrero M, Whitmore D, Pendón C, Muñoz-Cueto JA. (2012a). The circadian clock machinery during early development of Senegalese sole (Solea senegalensis): effects of constant light and dark conditions. Chronobiol. Int. 29: 1195–205
  • Martín-Robles AJ, Whitmore D, Sánchez-Vázquez FJ, Pendón C, Muñoz-Cueto JA. (2012b). Cloning, tissue expression pattern and daily rhythms of Period1, Period2 and Clock transcripts in the flatfish Senegalese sole Solea senegalensis. J. Comp. Physiol. B 182: 673–85
  • Mukherjee N, Kannan NN, Yadav P, Sharma VK. (2012). A model based on oscillatory threshold and build-up of a developmental substance explains gating od adult emergence in Drosophila melanogaster. J. Exp. Biol. 215: 2960–2968
  • Myers EM. (2003). The circadian control of eclosion. Chronobiol. Int. 20: 775–794
  • Newport J, Kirschner M. (1982). A major developmental transition in early Xenopus embryos. I. Characterization and timing of cellular changes and the midblastula stage. Cell 30: 675–686
  • Nikaido SS, Johnson CH. (2000). Daily and circadian variation in survival from ultraviolet radiation in Chlamydomonas reinhardtii. Photochem. Photobiol. 71: 758–765
  • Nüsslein-Volhard C, Dahm R. (2002). Zebrafish: a practical approach. New York: Oxford University Press, 303 pp
  • Oliveira C, Dinis MT, Soares F, Cabrita E, Pousão-Ferreira P, Sanchez-Vazquez FJ. (2009). Lunar and daily spawning rhythms of Senegal sole (Solea senegalensis). J. Fish Biol. 75: 61–74
  • Portaluppi F, Smolensky MH, Touitou Y. (2010). Ethics and methods for biological rhythm research on animals and human beings. Chronobiol. Int. 25: 1911–1929
  • Reebs SG. (2002). Plasticity of diel and circadian activity rhythms in fishes. Rev. Fish Biol. Fish. 12: 349–371
  • Satoh N. (1982). Timing mechanisms in early embryonic development. Differentiation 22: 156–163
  • Saunders DS. (2002). Insect clocks. New York: Elsevier Science, 560 pp
  • Schmidt K, Starck JM. (2009). Developmental plasticity, modularity, and hetero-chrony during the phylo typic stage of the zebrafish Danio rerio. J. Exp. Zool. B 314: 166–178
  • Schröter C, Herrgen L, Cardona A, Brouhard GJ, Feldman B, Oates AC. (2008). Dynamics of zebrafish somitogenesis. Dev. Dyn. 237: 545–553
  • Selman K, Wallace RA, Sarka A, Qi X. (1993). Stages of oocyte development in the zebrafish Brachydanio rerio. J. Morphol. 218: 203–224
  • Shiraki T, Kojima D, Fukada Y. (2010). Light-induced body color change in developing zebrafish. Photochem. Photobiol. Sci. 9: 1498–1504
  • Tamai TK, Vardhanabhuti V, Foulkes NS, Whitmore D. (2004). Early embryonic light detection improves survival. Curr. Biol. 14: R104–R105
  • Tarttelin EE, Frigato E, Bellingham J, Di Rosa V, Berti R, Foulkes NS, Lucas RJ, Bertolucci C. (2012). Encephalic photoreception and phototactic response in the troglobiont Somalian blind cavefish Phreatichthys andruzzii. J. Exp. Biol. 215: 2898–2903
  • Vallone D, Lahiri K, Dickmeis T, Foulkes S. (2007). Start the clock! Circadian rhythms and development. Dev. Dynam. 236: 142–155
  • Vatine G, Vallone D, Gothilf Y, Foulkes NS. (2011). It's time to swim! Zebrafish and the circadian clock. FEBS Lett. 585: 1485–1494
  • Villamizar N, García-Alcazar A, Sánchez-Vázquez FJ. (2009). Effect of light spectrum and photoperiod on the growth, development and survival of European sea bass (Dicentrarchus labrax) larvae. Aquaculture 292: 80–86
  • Villamizar N, Blanco-Vives B, Migaud H, Davie A, Carboni S, Sánchez-Vázquez FJ. (2011). Effects of light during early larval development of some aquacultured teleosts: a review. Aquaculture. 315: 86–94

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.