The effect of pH on embryonal and larval development of the Caucasian Brown Frog, Rana macrocnemis
https://doi.org/10.18470/1992-1098-2022-3-54-62
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Abstract
Aim. To study the effect of different pH values on the characteristics of the embryonic and larval development of Rana macrocnemis.
Material and methods. Fragments from 6–7 clutches of R. macrocnemis collected on the territory of Foothill Dagestan were used in the work. The experiment included two series of experiments: in the 1st series, the entire cycle of embryonic‐larval development of the R. macrocnemis frog was studied, and in the 2nd, only the postembryonic development of R. macrocnemis was studied. Eggs were individually placed in containers with different pH values (4.0, 5.0, and 9.0).
Results. The most vulnerable periods in the development of R. macrocnemis are the stages of neurula, limb formation, and metamorphosis. At pH 4.0, oxygen consumption by larvae decreases, accompanied by suppression of feeding behavior and a decrease in the intensity of metabolic processes. In addition, pH 4.0 has a negative effect on the survival of embryos and larvae. At pH 5.0, changes are noted that are mainly of an adaptive nature. Against the background of the accelerated development of embryos at these pH values, a significant decrease in the length and weight of their body is noted. With the transition to larval development, an increase in body size is observed against the background of a small increase in weight. An elongation of the duration of the period from the beginning of the formation of limbs to the end of metamorphosis was also noted.
Conclusion. The data obtained can be used in monitoring the level of acidity of the environment and the oxygen content in natural water bodies during the spawning period, which will help clarify the issue of the reduction in the number of R. macrocnemis frogs in Dagestan.
About the Authors
J. M. GamidovaRussian Federation
Jamilya M. Gamidova - post‐graduate student, Department of Zoology and Physiology, Dagestan State University.
12 Dzerzhinsky St, Makhachkala, 367000.
Tel. +79896747149
Competing Interests:
The authors declare no conflict of interest.
A. I. Rabadanova
Russian Federation
Rabadanova Aminat I.
Makhachkala.
Competing Interests:
The authors declare no conflict of interest.
References
1. Pounds J.A. Climate and amphibian declines. Nature. 2001, vol. 4, rr. 639‐640.
2. Hamer A.J. Amphibian ecology and conservation in the urbanising world: a review. Biological Conservation. 2008, no. 141, rr. 2432‐2449.
3. Natchev N. Green frog invasion in the Black Sea: habitat ecology of the Pelophylax esculentus complex (Anura, Amphibia) population in the region of Shablenska Tuzla lagoon in Bulgaria. Herpetology Notes. 2011, vol. 4, pp. 347‐351.
4. Steven D.M., Vance L.T. Growth, development and incidence of deformities in amphibian larvae exposed as embryos to naphthenic acid concentrations detected in the Canadian oil sands region. Environmental Pollution. 2012, vol. 167, pp. 178‐183.
5. Bernabo I., Bonaccia A., Coscarelli F., Tripepib M., Brunelli E. Effects of salinity stress on Bufo balearicus and Bufo bufo tadpoles: Tolerance, morphological gill alterations and Na+/K+‐ATPase localization. Aquatic Toxicology. 2013, vol. 132‐133, pp. 119‐133.
6. Muths E. Hatching success in salamanders and chorus frog at two sites in Colorado USA: effects of acidic deposition and climate. Amphibia‐Reptilia. 2003, vol. 24, no. 1, pp. 27‐36.
7. Brunelli E., Tripepi S. Effects of Low pH acute exposure on survival and gill morphology in Triturus italicus larvae. Journal of Experimental Zoology Part A: Comparative Experimental Biology. 2005, vol. 303, no. 11, pp. 946‐957.
8. Dunson W.A., Travis J. Interaction of pH density and priority effects on the survivorship and growth of two species of hylid tadpoles. Oecologia. 1991, vol. 88, no. 3. pp. 331‐339.
9. Griffiths R.A., de Wijer P. Differential effect of pH and temperature on embryonic development in the British newts (Triturus). Journal of Zoology. 1994, vol. 234, pp. 613‐622.
10. Vignoli L., Bologna M., D'Amen M. The effects of temperature and pH on the embryonic development of two species of Triturus (Caudata: Salamandridae). Amphibia‐Reptilia, 2007, Vol. 28, no. 2, pp. 295‐300. https://doi.org/10.1163/156853807780202521
11. Barth B.J., Wilson R.S. Life in acid: interactive effects of pH and natural organic acids on growth, development and locomotor performance of larval striped marsh frogs Limnodynastes peronei. Experimental Biology, 2010, vol. 213, no. 8, pp. 1293‐1300. https://doi.org/10.1242/jeb.028472
12. Cummins C.P. Effects of aluminium and low pH on growth and development in Rana temporaria tadpoles. Oecologia. 1986, vol. 69, no. 2, pp. 248‐252.
13. Mironova A.P., Andronikov V.B. Embryonic development of an ordinary frog. Sitologiya [Cytology]. 1992, no. 34(8), pp. 96‐101. (In Russian)
14. Thaban C.M. Morphological alterations in the external gills of some tadpoles in response to pH. Journal of Morphological Sciences, 2018, vol. 35 (02), pp. 142‐152. https://doi.org/10.1055/s‐0038‐1669476
15. Pierce B.A., Wooten D.K. Acid tolerance of Ambystoma texanum from central Texas. Journal of Herpetology. 1992, vol. 26, no. 2, pp. 230‐232.
16. Mazanaeva L.F. The distribution of Amphibians in Daghestan. Advances in Amphibian Research in the Former Soviet Union. Sophia. 2000, vol. 5, pp. 141‐156.
17. Askenderov A.D., Mazanaeva L.F., Mikhailov R.A., Fayzulin A. I. Study of spawning water bodies and their role in the conservation of rare amphibian species in the foothills of the Republic of Dagestan. Nature Conservation Research. Reserved science, 2018, vol. 3, suppl. 1, pp. 83‐97. (In Russian) https://doi.org/10.24189/ncr.2018.057
18. Surova G.S. Changes in abiotic conditions when keeping tadpoles with different densities (on the example of the larvae of the common frog‐Rana temporaria and the gray toad‐Bufo bufo). Sovremenaya Herpetologiya [Temporary Herpetology]. 2010, vol. 10, no. 1/2, pp. 26‐39. (In Russian)
19. Hayek L.A. Measuring and monitoring biological diversity. Standard methods for amphibians. Washington DC, Smithsonian Institution Press, 1994, 384 p.
20. Gosner K.L. A simplified table for staging anuran embryos and larvae with notes on identification. Herpetologica. 1960, vol. 16, pp. 183‐190.
21. Fominykh A.S. Experimental study of the impact of high levels of alkaline environment on the dynamics of larval development of amphibians. Ekologiya [Ecology]. 2008, no. 2, pp. 155‐157. (In Russian)
22. Dmitrieva E.V. Influence of the Concentration of Dissolved Oxygen on Embryonic Development of the Common Toad (Bufo bufo). Russian Journal of Developmental Biology, 2015, vol. 46, no. 6, pp. 368‐380. https://doi.org/10.1134/S1062360415060041
23. Konstantinov A.S., Vechkanov V.S., Kuznetsov V.A., Ruchin A.B. Astaticity of the abiotic environment as a condition for optimizing the growth and development of common frog larvae. Doklady RAN [Reports of the Russian Academy of Sciences]. 2000, vol. 371, no. 4, pp. 559‐562. (In Russian)
24. Kuznetsov V.A., Ruchin A.B. Influence of pH and light fluctuations on the growth and development of the lake frog Rana ridibunda. Zoologicheskii zhurnal [Zoological journal]. 2001, vol. 80, no. 10, pp. 1246‐1251.
25. Kuznetcov V.A. Influencing of oscillations of ecological factors on growth, development and fertility Lymnaea stagnalis. Materialy mezhdunarodnoy konferentsii «Sovremennyye problemy fiziologii i biokhimii vodnykh organizmov», Petrozavodsk, 2004 [Proceedings of the international conference "Modern problems of physiology and biochemistry of aquatic organisms", Petrozavodsk, 2004]. Petrozavodsk, 2004, rr. 198.
26. Seymour R.S., Roberts J.D., Mitchell N.J., Blaylock A.J. Influence of environmental oxygen on development and hatching of aquatic eggs of the Australian frog, Crinia georgiana. Physiological and Biochemical Zoology. 2000, vol. 73, no. 4. pp. 501‐507.
27. Rozen V.B. Osnovy endocrinology [Fundamentals of endocrinology]. Moscow, Moscow University Publ., 1994, 385 p. (In Russian)
28. Bozhko A.P., Gorodetskaya I.V. Obosnovaniye obshchebiologicheskogo kharaktera adaptiv‐nogo effekta tireoidnykh gormonov [Substantiation of the general biological nature of the adaptive effect of thyroid hormones]. Tezisy dokladov nauchnoy sessii «Aktual′nyye vo‐prosy teoreticheskoy i prakticheskoy meditsiny i farmatsii», Vitebsk, 2001 [Abstracts of the scientific session "Actual issues of theoretical and practical medicine and pharmacy", Vitebsk, 2001]. Vitebsk, 2001, rr. 8‐9. (In Russian)
29. Smirnov S.V. Metamorphosis of tailed amphibians: features, mechanism of regulation and evolution. Zhurnal obshchei biologii [Journal of General Biology]. 2006, vol. 67, no. 5, pp. 323‐334. (In Russian)
30. Shilov I.A. Ekologiya [Ecology]. Moscow, Vysshaya shkola Publ., 2001, 512 p. (In Russian)
Review
For citations:
Gamidova J.M., Rabadanova A.I. The effect of pH on embryonal and larval development of the Caucasian Brown Frog, Rana macrocnemis. South of Russia: ecology, development. 2022;17(3):54-62. (In Russ.) https://doi.org/10.18470/1992-1098-2022-3-54-62
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