Effect of irrigation with saline water on the ordinary chernozem microbial community state

Authors

  • Baliuk Sviatoslav National Scientific Center “Institute for Soil Science and Agrochemistry Research named after O.N. Sokolovsky”;4 Chaikovska str., 61024, Kharkiv, Ukraine. Author
  • Naidonova Oksana National Scientific Center “Institute for Soil Science and Agrochemistry Research named after O.N. Sokolovsky”;4 Chaikovska str., 61024, Kharkiv, Ukraine. Author
  • Drozd Olena Department of Engineering Ecology of Cities, O.M. Beketov National University of Urban Economy in Kharkiv; 17 Marshal Bazhanov str., Kharkiv, 61002, Ukraine. Author

DOI:

https://doi.org/10.61841/x91t5m68

Keywords:

Soil microbial community, microbiological indicators, soil invertase activity, irrigation with saline water, ordinary chernozem

Abstract

The effect of irrigation with saline waters on the soil microbial community structure and functioning were studied. Our research was carried out in a long-term stationary field experiment. We identified the biological indices of irrigated soil and its unirrigated analogue. We studied indicators such as: the number of microorganisms belonging to different ecological- functional groups, invertase activity, and cellulose-destroying capacity of soils. To assess the functional state of the microbial community, the following indicators were calculated: oligotrophy and mineralization indices, the total biological index, and the soil biological degradation index. The direction and the degree of change in the biological properties of ordinary chernozem influenced by of irrigation with saline waters have been identified. Irrigation with saline water (total mineralization from 1.2 to 2.2 g/l) of ordinary chernozem (Odessa region, Ukraine) in an intensive mode lasting 12–13 years led to a noticeable suppression of the soil microbial community, a decrease in the number of microorganisms of the main groups on average by 30–40%, increased mineralization processes. The use of land reclamation measures (such as the annual application of phosphogypsum in a dose (3 t/ha) and/or comprehensive measures (3 t/ha of phosphogypsum annually + N150R90K60 + 18 t of manure per hectare of the crop rotation area) enable the regulation of soil biodynamic processes and partial or complete prevention of biological degradation.

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References

1. Andronov, E.E., S.N. Petrova, A.G. Pinaev, E.V. Pershina, S.Z. Rakhimgalieva, K.M. Akhmedenov, A.V. Gorobetz, and N.K. Sergaliev. 2012. Analysis of the structure of microbial community in soils with different degrees of salinization using T-RFLP and real-time PCR techniques. Eur. Soil Sci. 45:147 - 156.

2. Aristovskaya,T.V.and J.А. Hudyakova. 1977. Methods of Soil Microflora Study and its Vital Functions.Nauka Press, Moscow [in Russian].

3. Azzi, G. 1959. Agricultural Ecology. Publishing House of Foreign Literature, Moscow [in Russian].

4. Baliuk, S.A. 2001. Irrigated Land of the Danube–Dniester Irrigation System: Evolution, Ecology, Monitoring, Protection, Fertility. Antikva Press, Kharkiv [in Ukrainian].

5. Baliuk, S., А. Nosonenko, L. Vorotyntseva, M. Zakharova, E. Drozd, and Yu. Afanasyev. 2014. Current ecological and agromeliorative condition of irrigated soils in Ukraine and ways of managing their fertility. Proc. 9th Int. Soil Sci. Congress, Antalya. pp. 936 - 942.

6. Baliuk, S., A. Nosonenko, M. Zakharova, E. Drozd, L. Vorotyntseva, and Yu. Afanasyev. 2017. Criteria and parameters for forecasting the direction of irrigated soil evolution. In: D. Dent, Y. Dmytruk (eds.), Soil Science Working for a Living. Springer, Cham. pp. 149-159.

7. Blagodatskaya, E., and Y. Kuzyakov. 2013. Active microorganisms in soil: critical review of estimation criteria and approaches. Soil Biology Biochem. 67:192 - 211.

8. Bloem, J., A.J. Schouten, S.J. Sørensen, M. Rutgers, A.K. van der Werf, and A.M. Breure. 2006. Monitoring and evaluating soil quality. In J. Bloem, D. W. Hopkins, & A. Benedetti (eds.), Microbiological Methods for Assessing Soil Quality. CABI. Wallingford. pp. 23 – 49.

9. Bouaroudj, S., A. Menad, A. Bounamous, and H. Ali-Khodja. 2019. ChenchouniHarounassessment of water quality at the largest dam in Algeria (Beni Haroun Dam) and effects of irrigation on soil characteristics of agricultural lands. Chemosphere. 219:76 - 88.

10. Elmajdoub, B. and P. Marschner. 2013. Salinity reduces the ability of soil microbes to utilise cellulose. Biol.Fertil. Soils. 49:379 - 386.

11. Entry, J.A., D.E. Mills, K. Mathee, K. Jayachandran, R.E. Sojka, and G. Narasimhan. 2008. Influence of irrigated agriculture on soil microbial diversity. Appl.Soil Ecology. 40:146 - 154.

12. Isayeva G.S. The state of coronary arteries in perimenopausal women with chest pain // J Clin Med Res. J Clin Med Res. 2014 Dec; 6(6). P. 451–455

13. Garcia, C. and T. Hernandes. 1996. Influence of salinity on the biological and biochemical activity of a calciorthird soil. Plant Soil. 178:255 - 263.

14. Görgün, Ye. and E. Yilmaz. 2014. Biological soil degradation. Proc. 9th Int. Soil Sci. Congress, Antalya. p. 492.

15. Haziev, F.H. 1976. Soil EnzymaticActivity.Nauka Press, Moscow [in Russian].

16. Hillel, D., A.K. Braimoh and P.L.G Vlek. 2008. Soil degradation under rrigation. In: A.K. Braimoh, P.L.G. Vlek (eds.), Land Use and Soil Resources. Springer, Dordrecht. ISO. 7847:2016. Soil quality. Determination the number of microorganisms in soil by culture on solid (agar) nutrient medium. National Standard of Ukraine.

17. Hrechanina O., Isayeva G., Kolesnikova O., Isakova Y. Relations between familial hypercholesterolemia and early ichemic heart disease: an analysis of medical documentation data // Serbian Journal of Experimental and Clinical Research. 2019. doi: 10.2478/sjecr-2019-0056

18. Kanwar J., Deo Ram. 1969. Potassium and madnesium in irrigation water and their effects on the physico-chemical properties of soil. J.Indian Soc.Sc.2 :217 – 226.

19. Lutskiy, D., T. Litvinova, A. Ignatovich, and I. Fialkovskiy.2018. Complex processing of phosphogypsum - A way of recycling dumps with reception of commodity production of wide application. J. Ecol. Eng. 19(2):221 - 225.

20. Minhas, S., Q. Manzoor, and R.K. Yadav. 2019. Groundwater irrigation induced soil sodification and response options. Agricul. Water Managent.215:74 - 85.

21. Mishra, U., D.W. Dhar. 2004. Biodiversity and biological degradation of soil. Resonance. 9:26 - 33.

22. Mishustin, Е.N. 1975. Association of Soil Microorganisms. Nauka Press, Moscow [in Russian].

23. Mora, J.L., J. Herrero, and D.C. Weindorf. 2017. Multivariate analysis of soil salination-desalination in a semi-arid irrigated district of Spain.Geoderma. 291:1 - 10.Muscolo, A., C. Mallamaci, M.R. Panuccio, R. Caputo, and

S. De Pascale. 2011. Effect of long-term irrigation water salinity on soil properties and microbial biomass. Ecol. Questions. 14:77 - 83.

24. Naydyonova, O.E., Baliuk, S.A. (2014) Biological degradation of Chernozems under irrigation. Eurasian Journal of Soil Science. 3. – Issue 4. – pp. 267 – 273.

25. Oldeman, L.R., R.T.A.Hakkeling, and W.G. Sombrock. 1990. Global assessment of soil degradation: аn explanatory note to the world map of the status of human-induced soil degradation. ISRIC-UNEP Press, Wageningen.

26. Popova, Zh.P., N.B Gersh., and M.V Gamova. 1987. Basic microbiological and biochemical methods of soil study (methodological recommendations). Znanie Press, Leningrad [in Russian].

27. Rietz, D.N. and R.J. Haynes. 2003. Effects of irrigation-induced salinity and sodicity on soil microbial activity. Soil Biol.Biochem. 35(6):845 - 854.

28. Ritz, K., H.I.J Black, C.D. Campbell, J.A. Harris, and C. Wood. 2009. Selecting biological indicators for monitoring soils: a framework for balancing scientific opinion to assist policy development. Ecological Indicators. 9:1212 - 1221.

29. Schloter, M., P. Nannipieri, S.J. Sørensen, and J.D. van Elsas. 2018. Microbial indicators for soil quality. Biol. Fertil.Soil. 54:1 - 10.

30. Sims, G.K. 1990. Biological degradation of soil. In: R. Lal, B.A. Stewart (eds.),Advances in Soil Science. Springer. New York.

31. Snakin, V.V., P.P. Krechetov, and Т.А Kuzovnikova. 1992. The System for Assessing the Degree of Soil Degradation. Pushchino Research Center of RAS Press, Pushchino[in Russian].

32. Sparling,G.P. 1997. Soil microbial biomass, activity and nutrient cycling as indicators of soil health. Biol. Indic. Soil Health. 49:97 - 119.

33. Strizhenok, A., and D. Korelskiy. 2016. Assessment of the state of soil-vegetation complexes exposed to powder-gas emissions of nonferrous metallurgy enterprises. J. Ecol. Eng. 17:25 - 29.

34. Veum, K.S., K.W Goine, R.J., Kremer, R.J., Miles, and K.A. Sudduth. 2014. Biological indicators of soil quality and soil organic matter characteristics in an agricultural management continuum. Biogeochemistry. 117:81 – 99.

35. Wichern, J., F. Wichern, and R.G. Joergensen. 2006. Impact of salinity on soil microbial communities and the decomposition of maize in acidic soils. Geoderma. 137:100 - 108.

36. Wong, V.N.L., R.C. Dalal, and R.S.B. Greene. 2008. Salinity and sodicity effects on respiration and microbial biomass of soil. Biol.Fertil. Soils. 44(7):943 - 953.

37. Yan, N. and P. Marschner. 2012. Response of microbial activity and biomass to increasing salinity depends on the final salinity, not the original salinity. Soil Biol.Biochem. 53:50 - 55.

38. Yan, N. and P. Marschner. 2013. Response of soil respiration and microbial biomass to changing EC in saline soils. Soil Biol.Biochem. 65:322 - 328.

39. Yan, N., P. Marschner, W. Cao, C. Zuo, and W. Qin. 2015. Influence of salinity and water content on soil microorganisms. Int. Soil Water Conservation Res. 3(4):316 - 323.

40. Zvyahintsev, D.G., I.V. Аseyevа, I.P. Babyeva, and Т.G Мirchinyuk. 1980. Methods of Soil Microbiology and Biochemistry. МSU Press, Moscow [in Russian].

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Published

31.10.2020

How to Cite

Sviatoslav, B., Oksana , N., & Olena, D. (2020). Effect of irrigation with saline water on the ordinary chernozem microbial community state. International Journal of Psychosocial Rehabilitation, 24(8), 11102-11113. https://doi.org/10.61841/x91t5m68