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Article

The effect of the photoperiod on the larval development and growth of two amphibian species (Amphibia: anura)

Pages 1492-1500 | Received 10 Jun 2019, Accepted 20 Sep 2019, Published online: 22 Nov 2019

References

  • Ansart A, Vernon P, Daguzan J. 2001. Photoperiod is the main cue that triggers supercooling ability in the land snail, Helix aspersa (Gastropoda: helicidae). Cryobiology. 42(4):266–273. doi:10.1006/cryo.2001.2332.
  • Awasthi M, Gupta P, Bano F, Serajuddin M. 2017. Effects of photoperiods on the growth performance of Juvenile Trichogaster lalius (Hamilton, 1822). Int Lett Nat Sci. 65:16–21.
  • Baker BJ, Richardson JML. 2006. The effect of artificial light on male breeding-season behaviour in green frogs, Rana clamitans melanota. Can J Zool. 84:1528–1532.
  • Bambozzi AC, De Seixas Filho JT, Thomaz LA, Oshiro LMY. 2004. Effect of the photoperiod on bullfrog (Rana catesbiana Shaw, 1802) tadpoles development. Rev Bras Zootecn. 33(1):1–7. doi:10.1590/S1516-35982004000100001.
  • Bano F, Serajuddin M. 2018. Photoperiodic modulation on growth and behaviour of the giant gourami, Trichogaster fasciata (Bloch & Schneider, 1801). Turk J Fish Aquat Sci. 18(1):91–100. doi:10.4194/1303-2712-v18_1_10.
  • Blaustein AR, Bancroft BA. 2007. Amphibian population declines: evolutionary considerations. BioScience. 57(5):437–444.
  • Boeuf G, Le Bail PY. 1999. Does light have an influence on fish growth? Aquaculture. 177(1–4):129–152. doi:10.1016/S0044-8486(99)00074-5.
  • Bradshaw WE, Holzapfel CM. 2007. Evolution of animal photoperiodism. Annu Rev Ecol Evol Syst. 38:1–25. doi:10.1146/annurev.ecolsys.37.091305.110115
  • Buchanan BW. 1993. Effects of enhanced lighting on the behaviour of nocturnal frogs. Anim Behav. 45:893–899.
  • Coppack T, Pulido F. 2004. Photoperiodic response and the adaptability of avian life cycles to environmental change. Adv Ecol Res. 35:131–150. doi:10.1016/S0065-2504(04)35007-5
  • Dabagyan V, Sleptsova LA. 1975. Brown frog (Rana temporaria). In: Development biology objects. Moscow: Nauka publ.; p. 442–462.
  • Delgado MJ, Gutierrez P, Alonso-Bedate M. 1987. Melatonin and photoperiod alter growth and larval development in Xenopus laevis tadpoles. Comp Biochem Physiol. 86(3):417–421. doi:10.1016/0300-9629(87)90517-2.
  • Edwards ML, Pivorun EB. 1991. The effects of photoperiod and different dosages of melatonin on metamorphic rate and weight gain in Xenopus laevis tadpoles. Gen Comp Endocrinol. 81(1):28–38.
  • Filadelfi AMC, Castrucci AML. 1996. Comparative aspects of the pineal/melatonin system of poikilothermic vertebrates. J Pineal Res. 20:175–186. doi:10.1111/j.1600-079X.1996.tb00256.x
  • Goldman BD. 2001. Mammalian photoperiodic system: formal properties and neuroendocrine mechanisms of photoperiodic time measurement. J Biol Rhythms. 16(4):283–301. doi:10.1177/074873001129001980.
  • Gutierrez P, Delgado MJ, Alonso-Bedate M. 1984. Influence of photoperiod and melatonin administration on growth and metamorphosis in Discoglossus pictus larvae. Comp Biochem Physiol A Physiol. 79(2):255–260. doi:10.1016/0300-9629(84)90425-0.
  • Ikeno T, Tanaka SI, Numata H, Goto SG. 2010. Photoperiodic diapause under the control of circadian clock genes in an insect. BMC Biol. 8:116. doi:10.1186/1741-7007-8-116
  • Kehr AI, Schaefer EF, Dure MI, Gomez VI. 2014. Influence of light intensity, water volume and density in tadpoles raised in mesocosm experiments. J Zool. 293(1):33–39. doi:10.1111/jzo.12099.
  • Konstantinov AS, Vechkanov VS, Kuznetsov VA, Ruchin AB. 2000. Variations in the abiotic environment as a prerequisite for optimal Rana temporaria L. larval development. Dokl Biol Sci. 371(4):559–562.
  • Kukita S, Gouda M, Ikeda S, Ishibashi S, Furuya T, Nakamura K. 2015. Effects of photoperiod and temperature on growth and development in clouded salamander (Hynobius nebulosus) larvae. Zoolog Sci. 32(3):266–271. doi:10.2108/zs140220.
  • Kuznetsov VA, Ruchin AB. 2001. Effect of pH and illumination oscillations on growth rate and development of Rana ridibunda larvae. Zool Zhurnal. 80(10):1246–1251.
  • Litvinchuk S. 2017. Distribution and conservation status of the banded newt, Ommatotriton ophryticus (Amphibia: caudata). Nat Conserv Res. 2(1):33–39. doi:10.24189/ncr.2017.054.
  • Longcore T. 2004. Rich, C. Ecological light pollution. Front Ecol Environ. 2(4):191–198.
  • Miranda LA, Pisano A, Paz D. 1993. Influencia del fotoperiodo y temperature en el crecimiento corporal y metamorfosis de Rana catesbiana. Rev Mus Argent Cienc Nat Ecol. 4(5):53–65.
  • Moriyu T, Kito K, Miyashita Y. 1991. The preference for background color of the tadpoles, Xenopus laevis. Zool Sci. 8(6):1056.
  • Pandi-Perumal SR, Srinivasan V, Maestroni GJ, Cardinali DP, Poeggeler B, Hardeland R. 2006. Melatonin – nature’s most versatile biological signal? Febs J. 273(13):2813–2838. doi:10.1111/j.1742-4658.2006.05322.x.
  • Richards CM, Lehman CC. 1980. Photoperiodic stimulation of growth in postmetamorphic Rana pipiens. Copeia. 1:147–149.
  • Roberts A. 1978. Pineal eye and behaviour in Xenopus laevis. Nature. 273(5665):774–775.
  • Rose MF, Rose S. 1998. Melatonin accelerates metamorphosis in Xenopus laevis. J Pineal Res. 24(2):90–95. doi:10.1111/j.1600-079X.1998.tb00372.x.
  • Ruchin AB. 2000. The effect of light oscillations on the growth of fish juveniles and the brown frog (Rana temporaria). Zool Zhurnal. 79(11):1331–1336.
  • Ruchin AB. 2001. Some peculiarities of the fish young growth under light-gradient conditions. J Evol Biochem Physiol. 37(3):312–313. doi:10.1023/A:1012635827380.
  • Ruchin AB. 2003. Effects of permanent and variable illumination on development of the clawed frog Xenopus laevis larvae. Zool Zhurnal. 82(7):834–838.
  • Ruchin AB. 2004a. Effects of temperature and illumination on growth and development of brown frog larvae (Rana temporaria). Zool Zhurnal. 83(12):1463–1467.
  • Ruchin AB. 2004b. Influence of a light regime on the efficiency of food utilization and growth rate in fishes. Hydrobiol J. 40(5):44–48. doi:10.1615/HydrobJ.v40.i5.40.
  • Ruchin AB. 2006. Effect of light on white blood cell count in carp Cyprinus carpio L. Biol Bull. 33(5):517–520. doi:10.1134/S1062359006050153.
  • Ruchin AB. 2007. Effect of photoperiod on growth, physiological and hematological indices of juvenile Siberian sturgeon Acipenser baerii. Biol Bull. 34(6):583–589.
  • Ruchin AB. 2008. The effects of permanent and variable illumination on the growth, physiological and hematological parameters of the Siberian sturgeon (Acipenser baerii) juveniles. Zool Zhurnal. 87(8):964–972.
  • Ruchin AB. 2016. Effect of light on the development of the hard roe of Acipenser baerii Brandt, 1869. Indian J Sci Technol. 9(29). doi:10.17485/ijst/2016/v9i29/89110.
  • Ruchin AB. 2018a. Light spectrum impacts on early development of amphibians (Amphibia: anura and Caudata). Pertanika Trop Agric Sci. 41(4):1889–1897.
  • Ruchin AB. 2018b. The effects of illumination on the early development of amphibians (Amphibia: anura and Caudata). Periodico Tche Quimica. 15(30):152–159.
  • Ruchin AB. 2019a. Environmental colour impact on the life of lower aquatic vertebrates: development, growth, physiological and biochemical processes. Rev Aquac. 11. in press. doi:10.1111/raq.12319.
  • Ruchin AB. 2019b. The effect of illumination and light spectrum on growth and larvae development of Pelophylax ridibundus (Amphibia: anura). Biol Rhythm Res. 1–12. doi:10.1080/09291016.2019.1594126
  • Ruchin AB, Vechkanov VS, Kuznetsov VA. 2005. Influence of photoperiod on growth and intensity of Feeding of fry of some fish species. Hydrobiol J. 41(2):103–109. doi:10.1615/HydrobJ.v41.i2.80.
  • Toporkova LY, Klimenko IA. 1977. Influence of the photoperiod on growth and development of larvae of the genus Rana. Russ J Ecol. 3:101–103.
  • Veras GC, Murgas LD, Rosa PV, Zangeronimo MG, Gerreira MSD, Solis-De Leon JA. 2013. Effect of photoperiod on locomotor activity, growth, feed efficiency and gonadal development of Nile tilapia. Rev Bras Zootecn. 42(12):844–849. doi:10.1590/S1516-35982013001200002.
  • Wright ML. 2002. Melatonin, diel rhythms, and metamorphosis in anuran amphibians. Gen Comp Endocrinol. 126(3):251–254. doi:10.1016/S0016-6480(02)00012-6.
  • Wright ML, Jorey ST, Myers YM, Fieldstad ML, Paquette CM, Clark MB. 1988. Influence of photoperiod, daylength, and feeding schedule on tadpole growth and development: tad-pole/metamorphosis/thyroxine/photoperiod/feeding schedule. Dev Growth Differ. 30(3):315–323. doi:10.1111/j.1440-169X.1988.00315.x.

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