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Ecological Valence of Rosa corymbifera Borkh. to Conditions of the Technogenic Environment

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Contemporary Problems of Ecology Aims and scope

Abstract

This article presents an analysis of the influence of technogenic pollution on the content of biologically active substances and the antioxidant activity of the fruits of Rosa corymbifera Borkh. In a technogenic environment (using the region of Donetsk as an example), an increase in the concentration of anthocyanins, tannins, and oxycinnamic acids and a decrease in the level of flavonoids, ascorbic acid, and polysaccharides have been revealed. Under the conditions of anthropogenic pressure, the content of flavonoids changes most significantly. A significant increase (2 times) in antioxidant activity under conditions of technogenic load is revealed. The interrelation of the content of heavy metals (lead, cadmium, and mercury) in the soil (mobile forms) and fruits is evaluated. The conformity of fruits of R. corymbifera plants growing in the Donetsk region to the requirements of the regulatory documents is evaluated.

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REFERENCES

  1. Ali, M.A., Fahad, S., Haider, I., Ahmed, N., Ahmad, S., Hussain, S., and Arshad, M., Oxidative stress and antioxidant defense in plants exposed to metal/metalloid toxicity, Reactive Oxygen, Nitrogen and Sulfur Species in Plants: Production, Metabolism, Signaling and Defense Mechanisms, 2019, vol. 1, pp. 353–370.

    CAS  Google Scholar 

  2. Bernia, R., Luyckxc, M., Xu, X., Legayd, S., Sergeant, K., Hausmand, J., Luttsc, S., and Cai, G., and Guerriero, G., Reactive oxygen species and heavy metal stress in plants: Impact on the cell wall and secondary metabolism, Environ. Exp. Bot., 2019, vol. 161, pp. 98–106.https://doi.org/10.1016/j.envexpbot.2018.10.017

    Article  CAS  Google Scholar 

  3. Bukharina, I.L., Kuz’mina, A.M., and Kuz’min, P.A., Features of the content of tannins in leaves of wood plants in the technogenic environment, Khim. Rastit. Syr’ya, 2015, no. 4, pp. 71–76.  https://doi.org/10.14258/jcprm.201504711

  4. Chupakhina, G.N., Maslennikov, P.V., Skrypnik, L.N., Chupakhina, N.Yu., Poltavskaya, R.L., and Feduraev, P.V., The influence of the Baltic region conditions on the accumulation of watersoluble antioxidants in plants, Izv. Akad. Nauk., Ser. Khim., 2014, vol. 63, no. 9, pp. 1946–1954.

    CAS  Google Scholar 

  5. Erofeeva, E.A., Hormosis and paradoxical effects in plants affected by motor vehicle pollution and experimental pollution, Extended Abstract of Doctoral (Biol.) Dissertation, Nizhny Novgorod, 2016.

  6. European Pharmacopoeia, Strasbourg, 2019, vol. 1.

  7. Evtuhova, M.V., The study of ecological and biological variability of representatives of the genus Rosa L. for breeding in the conditions of the southwest of the Central Chernobyl, Extended Abstract of Cand. Sci. (Biol.) Dissertation, Ramon, 2016.

  8. Fascella, G., Mammano, M.M., and D’Angiolillo, F., Leaf methanolic extracts from four Sicilian rose species: bioactive compounds content and antioxidant activity, Acta Hortic., 2019, vol. 1232, pp. 81–88. https://doi.org/10.17660/ActaHortic.2019.1232.13

  9. Gigienicheskie normativy GN 2.1.7.2041-06. Predel’no dopustimye kontsentratsii (PDK) khimicheskikh veshchestv v pochve. (Utv. Gl. gos. san. vrachom Rossiiskoi Federatsii 23.01.2006 g.) (Hygienic Standards GN 2.1.7.2041-06. Maximum Permissible Concentrations (MPC) of Chemicals in Soil. (Approved by the Chief State Sanitary Doctor of the Russian Federation on January 23, 2006)), Moscow: Federal. Tsentr Gigieny i Epidemiologii Rospotrebnadzora, 2006.

  10. Gosman, D.A., Romanchenko, M.P., and Sabadash, O.V., Influence of air pollution of the city of Donetsk with heavy metals on the incidence of the population, Doneckie chteniya 2020: obrazovanie, nauka, innovacii, kul’tura i vyzovy sovremennosti (Donetsk Readings 2020: Education, Science, Innovations, Culture and Modern Challenges), Donetsk, 2020, pp. 180–182.

  11. GOST (State Standard) 1994–93: Dog-rose fruit. Specifications, 1995.

  12. Gosudarstvennaya farmakopeya Respubliki Belarus (State Pharmacopoeia of the Republic of Belarus), Sheryakova, A.A., Molodechno: Pobeda, 2008, vol. 2.

  13. Gosudarstvennaya farmakopeya Rossiiskoi Federatsii (The State Pharmacopoeia of the Russian Federation), Moscow, 2018.

  14. Grishchenko, S.V., Grishchenko, I.I., Kostenko, V.S., Zor’kina, A.V., Minakov, G.R., Evtushenko, O.V., and Yakimova, K.A., Complex ecological-hygienic evalution of the modern state of the environment of the Donbas, Vestn. Gig. Epidemiol., 2017, vol. 21, no. 2, pp. 84–85.

    Google Scholar 

  15. Grishchenko, S.V., Grishchenko, I.I., Fedoseeva, I.S., Pravodelov, S.S., Kostenko, V.S., Yakimova, K.A., Morohovec, S.A., Minakov, D.G., and Evtushenko, E.I., Modern features of the chemical composition of soils in populated locations of the Donetsk People’s Republic, Vestn. Gig. Epidemiol., 2020, vol. 24, no. 4, pp. 405–412.

    Google Scholar 

  16. Khasanova, S.R., Plekhanova, T.I., Gahsimova, D.T., Galiakhmetova, E.Kh., and Klysh, E.A., Comparison of antioxidant activity of various herbal teas, Vestn. Voronezh. Gos. Univ., Ser.: Khim., Biol., Farm., 2007, no. 1, pp. 163–166.

  17. Kovalev, V.N., Popova, N.V., and Kislichenko, V.S., Praktikum po farmakognozii (Workshop on Pharmacognosy), Kovaleva, V.N., Ed., Kharkov: Nats. Farm. Univ., 2013.

  18. Lastkov, D.O., Bessmertnyi, A.N., and Gosman, D.A., and Taleb Al’ Karavani, Ya.B., Influence of the level of soil pollution with heavy metals on the incidence of the population of Donetsk, Univ. Klin., 2017, Suppl. 2017, p. 82.

  19. Metodicheskie ukazaniya 2.1.7.730-99. Gigienicheskaya ocenka kachestva pochvy naselennyh mest (utverzhdeno Minzdravom Rossiiskoi Federatsii 7.02.1999) (Guidelines 2.1.7.730-99. Hygienic Assessment of Soil Quality in Populated Areas) (Approved by the Ministry of Health of the Russian Federation on February 7, 1999), Moscow, 1999.

  20. Metodicheskie ukazaniya po opredeleniyu tyazhelyh metallov v pochvah sel’hozugodij i produkcii rastenievodstva (Utverzhdeno Zamestitelem Ministra Sel’skogo Khozyaistva Rossiiskoi Federatsii 10.03.1992) (Guide for the Determination of Heavy Metals in Agricultural Soils and Crop Products) (Approved by the Deputy Minister of Agriculture of the Russian Federation on March 10, 1992), Moscow.

  21. Nihal, A., Mithun, P.R., and Praveen, N., Effect of heavy metals (Hg, As and La) on biochemical constituents of Spinacia oleracea, J. Pharm. Phytochem., 2019, vol. 8, no. 3, pp. 669–674.

    Google Scholar 

  22. Okhotnikova, M.V., Hygienic assessment of urban ecological conditions in industrial region and its role in human health, Extended Abstract of Cand. Sci. (Med.) Dissertation, Donetsk, 2017.

  23. Oprica, L., Bucsa, C., and Zamfirache, M.M., Evaluation of some phytochemical constituents and the antioxidant activity in six rosehips species collected from different altitude of Suceava District, Genet. Biol. Mol., 2016, vol. XVII, pp. 1–9

    Google Scholar 

  24. Pasqualinia, V., Roblesb, C., Garzinob, S., Greffb, S., Bousquet-Meloub, A., and Bonin, G., Phenolic compounds content in Pinus halepensis Mill. needles: a bioindicator of air pollution, Chemosphere, 2003, vol. 52, no. 1, pp. 239–248.  https://doi.org/10.1016/S0045-6535(03)00268-6

    Article  CAS  Google Scholar 

  25. Pavlova, E.P., Influence of ecological and phytocenotic factors on the accumulation of biologically active substances in the fruits of Rosa acicularis Lindley and Rosa davurica Pallas (Western Transbaikalia), Extended Abstract of Cand. Sci. (Biol.) Dissertation, Ulan Ude, 2009.

  26. Petukhov, A.S., Khritokhin, N.A., Petukhova, G.A., and Kremleva, T.A., Phenolic plant defense system under conditions of environment pollution by heavy metals in Tyumen, Uch. Zap. Kazan. Univ., Ser. Estestv. Nauki, 2019, vol. 161, no. 1, pp. 93–107. https://doi.org/10.26907/2542-064X.2019.1.93-107

    Article  CAS  Google Scholar 

  27. Pharmacopoeia of the People’s Republic of China, Peoples medical publishing house, 2005. vol. 1.

  28. Prudnikov, P.S., Protective effect of hydroxycinnamic acids in the lead intoxication conditions of Fragaria ananassa Duch plants, Vest. Orlov. Gos. Agrar. Univ., 2016, vol. 2, no. 59, pp. 96–102. doi https://doi.org/10.15217/48484

    Article  Google Scholar 

  29. SanPiN 2.3.2.1078-01, Gigienicheskie trebovaniya bezopasnosti i pishchevoj cennosti pishchevyh produktov (Hygienic requirements for the Safety and Nutritional Value of Food Products), Approved November 6, 2001. (In Russian)

  30. Savinceva, L.S., Ecological analysis of adaptive mechanisms of plants in an urbanized environment, Cand. Sci. (Biol.) Dissertation, Kirov, 2015.

  31. Solomentseva, A.S., Winter hardiness and drought resistance of wild rose species in the lower Volga Region, Sib. Les. Zh., 2020, no. 2, pp. 55–62. https://doi.org/10.15372/SJFS20200206

  32. State hygienic rules and norms “Regulation of maximum levels of certain pollutants in food products”, 2013. https://zakon.rada.gov.ua/laws/show/z0774-13. Cited September 10, 2021.

  33. State hygienic rules and regulations “Regulations on maximum levels of certain contaminants in food”, 2013. https://zakon.rada.gov.ua/laws/show/z0774-13. Accessed September 10, 2021. (In Russian)

  34. Tarabrin, V.P., Kondratyuk, E.N., and Bashkatov, V.G., Fitotoksichnost’ organicheskih i neorganicheskih zagryaznenij (Phytotoxicity of Organic and Inorganic Pollutants), Kyiv: Naukova Dumka, 1986.

  35. Tekhnicheskij reglament Tamozhennogo soyuza TR TS 021/2011 “O bezopasnosti pishchevoj produkcii” (Technical Regulation of the Customs Union TR CU 021/2011 “On Food Safety”), Approved September 12, 2011. (In Russian)

  36. Tolekova, S., Sharmanov, T., Sinyavskiy, Y., Berzhanova, R., and Mammadov, R., Antioxidant, pharmacological, medical properties and chemical content of Rosa L. extracts, Int. J. Second. Metab., 2020, vol. 7, no. 3, pp. 200–212. https://doi.org/10.21448/ijsm.726140

    Article  Google Scholar 

  37. Vinogradova, N.A. and Glukhov, A.Z., Ecological and phytochemical features of Crataegus fallacina Klokov under conditions of technogenic pollution, Contemp. Probl. Ecol., 2021, vol. 14, pp. 90–97. https://doi.org/10.1134/S1995425521010091

    Article  Google Scholar 

  38. World Health Organization (WHO), Quality Control Methods for Medicinal Plant Materials, Geneva, 2005.

    Google Scholar 

  39. Zemlya trevogi nashei. Po materialam dokladov o sostoyanii okruzhayushchei sredy v Donetskoi oblasti v 2007–2008 (The Land of Our Anxiety. Based on Information from the State Environmental Reports in Donetsk Region in 2007–2008), Tretyakova, S. and Averina, G., Eds., Donetsk, 2009.

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Vinogradova, N.A., Glukhov, A.Z. Ecological Valence of Rosa corymbifera Borkh. to Conditions of the Technogenic Environment. Contemp. Probl. Ecol. 15, 521–527 (2022). https://doi.org/10.1134/S1995425522050122

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