Study of Anemone coronaria L. (Manisa Tulip) Species, Symbol Plant of Manisa Province, for Phytoremediation and Biomonitor Purposes

Study of Anemone coronaria L. (Manisa Tulip) Species, Symbol Plant of Manisa Province, for Phytoremediation and Biomonitor Purposes

Today, the use of plants in the cleaning (phytoremediation) of soils polluted with heavy metals and the detection of plants with accumulator properties are gaining importance day by day. However, due to the tolerance of plants against heavy metal toxicity, their ability to be biomonitors varies depending on the plant species, element type, duration of exposure to stress, and the structure of the tissue or organ exposed to stress. To date, many plants have been used in remediation, but there are few reports on the use of ornamental plants for remediation of polluted soils or as biomonitors. In this study, based on this idea, accumulation of heavy metals of Cu, Cd, Pb, Zn were detected comparatively in 3 varieties (var. alba, var. cyanea, var. coccinea) of the Anemone coronaria species with atomic absorption spectrometry in the months of germination (March) and flowering (April) and in the soil they grow. As a result, it has been established that this species can be planted in Manisa to determine the soil pollution in the spring period, as a biomonitor, and to beautify the environment and it has been revealed that this species is a very important plant in terms of phytoremediation and as the symbol plant of Manisa.

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  • 1. Yalçın, MG. 2007. Toprak Örneklerinde Ağır Metal Birikimlerinin Analizi ve Değerlendirilmesinde Kullanılan Bazı Teknikler. Toksikoloji Dergisi; Sayı:5, 39-47.
  • 2. Candan, F. 2020. Plant Phenology and An Assessment of the Effects Regarding Heavy Metals, Nanoparticles, and Nanotubes on Plant Development: Runner Bean, Artichoke and Chickpea Seedlings]. In: Oliveira MT, Candan F, Fernandes-Silva A. Eds. Plant Communities and Their Environment. UK: InTech – Open Press, 3-25.
  • 3. Banfalvi, G. 2011. Cellular Effects of Heavy Metals. Dordrecht: Springer, p.348.
  • 4. Türk Çulha, S, Koçbaş, F, Gündoǧdu, A, Baki, B, Çulha, M, Topçuoǧlu, S. 2011. The seasonal distribution of heavy metals in Mussel sample from Yalova in the Marmara Sea, 2008–2009. Environmental Monitoring and Assessment; Vol:183, 525–529.
  • 5. Gündoğdu, A, Türk Çulha S, Koçbaş, F. 2020.Trace Elements Concentrations and Human Health Risk Evaluation for Four Common Fish Species in Sinop Coasts (Black Sea). Turkish Journal of Agriculture-Food Science and Technology; Vol.8, No.9.
  • 6. Athar, R, Ahmad, M. 2002. Heavy metal toxicity: effect on plant growth and metal uptake by wheat, and on free living azotobacter]. Water Air Soil Pollution. 2002; 138:165–180.
  • 7..Batır, MB, Candan, F, Büyük, İ, Aras, S. 2015. The determination of physiological and DNA changes in seedlings of maize (Zea mays L.) seeds exposed to the waters of the Gediz River and copper heavy metal stress. Environmental Monitoring and Assessment; 187(4):169.
  • 8. Batır, MB, Candan, F, Büyük, İ. 2016. Determination of the DNA changes in the artichoke seedlings (Cynara scolymus L.) subjected to lead and copper stresses. Plant Soil Environment; 62, No.3, 143-149.
  • 9. Zengin, FK, Munzuroğlu, O. 2004. Effect of lead and copper (Cu) on the growth of root, shoot and leaf of bean (Phaseolus vulgaris L.) seedlings. Journal of Science; 17:1-10.
  • 10. Çobanoğlu, O. 2019. Mavi Ladin (Picea pungens Engelm) İbrelerinin Yakın Geçmişteki Ağır Metal Birikiminde Biyomonitör Olarak Kullanılabilme Olanakları. Kastamonu Üniversitesi, Fen Bilimleri Enstitüsü.
  • 11. Yıldırım, C, Karavin, N, Cansaran, A. 2012. Amasya İli Şehir Merkezinde Bulunan Elaeagnus angustifolia L. ve Pinus brutia Ten. Türlerinde Bazı Ağır Metallerin İçeriklerinin Belirlenmesi. Biyoloji Bilimleri Araştırma Dergisi; 5 (2): 7-11.
  • 12. Doğanlar, ZB, Atmaca, M. 2011. Influence of Airborne Pollution on Cd, Zn, Pb, Cu, and Al Accumulation and Physiological Parameters of Plant Leaves in Antakya (Turkey). Water, Air, & Soil Pollution; Vol:214; 509-523.
  • 13. Good, R. 1964. The Geography of the Flowering Plants, XIV-518, Longmans Green and Co. Ltd, London.
  • 14. Davis, P.H. 1965. Flora of Turkey and East Aegean Islands. Univ Press Edinburgh, U.K, Vol. I.
  • 15. Demiriz, H. 1965. Türkiye Florası’ndan Örnekler, Anemone coronaria L., Türk Biyoloji Dergisi İlavesi, 1/Acta Biol. Turc. Suppl.; 1/14(2), İstanbul.
  • 16. Seçmen, Ö, Gemici, Y, Görk, G, Bekat, L, Leblebici, E. 1995. Tohumlu Bitkiler Sistematiği. Ege Üniv. Fen Fak. Kitaplar Serisi, No:116, 168-171, İzmir.
  • 17. Darlington, CD, Wylie, AP. 1961. Chromosome Atlas of Flowering Plantes. 519, George Allen and Unvin. Ltd, London.
  • 18. Zohary, M. 1966. Flora Palaestina The Israel Academy of Sciences and Humanities. 1:364, Jerusalem.
  • 19. Karaca, T, Seğmen, Y. 1970. İzmir yöresinde Manisa Lalesi (Anemone coronaria L.) ile ilgili araştırmalar. Ege Üniversitesi Ziraat Fakültesi Dergisi; 7: 3-23.
  • 20. Candan, F. 2001. Anemone coronaria L. Türü Üzerinde Biyolojik Bir Araştırma. Yüksek Lisans Tezi. Manisa Celal Bayar Üniversitesi Fen Bilimleri Enstitüsü.
  • 21. Candan, F, Şık, L. 2006. Comparative Morphological Research on Anemone blanda Schott & Kotschy and Anemone coronaria var. coccinea (Jord.) Burn occuring in west Anatolia, Turkey. JFS, E.U.F.F. (Ege Ünv. Fen Fak.); Vol. 29, 1-12.
  • 22. Candan, F, Şık, L. 2006. Comparative Anatomical Research on Anemone blanda Schott & Kotschy and Anemone coronaria var. coccinea (Jord.) Burn occuring in west Anatolia, Turkey. JFS, E.U.F.F. (Ege Ünv. Fen Fak.); Vol. 29, 99-112.
  • 23. ASTM. 1985. Preperation ve Biological Samples for inorganic chemical analyses. 1. Annual Book of ASTM Standards. 740-747.
  • 24. Yuan, Y, Yu, S, Bañuelos, G. 2016. Accumulation of Cr, Cd, Pb, Cu, and Zn by plants in tanning sludge storage sites: opportunities for contamination bioindication and phytoremediation. Environ Sci Pollut Res.; 23, 22477–22487.
  • 25. Fargašová, A. 2001. Phytotoxic Effects of Cd, Zn, Pb, Cu and Fe on Sinapis alba L. Seedlings and their Accumulation in Roots and Shoots. Biologia Plantarum; 44, 471–473.
  • 26. El-Rjoob, AWO, Massadeh, AM, Omari, MN. 2008. Evaluation of Pb, Cu, Zn, Cd, Ni and Fe levels in Rosmarinus officinalis labaiatae (Rosemary) medicinal plant and soils in selected zones in Jordan. Environ Monit Assess; 140, 61–68.
  • 27. Stoltz, E, Greger, M. 2002. Accumulation properties of As, Cd, Cu, Pb and Zn by four wetland plant species growing on submerged mine tailings. Environmental and Experimental Botany; Vol. 47, Issue 3, 271-280.
  • 28. Zheng, N, Wang, Q, Zheng, D. 2007. Health risk of Hg, Pb, Cd, Zn, and Cu to the inhabitants around Huludao Zinc Plant in China via consumption of vegetables. Science of The Total Environment; Vol. 383, Issues 1–3, 81-89.
  • 29. Harvey, DM. 1971. Phenotypic Variation in Flower Colour within the Anemone coronaria Cultivars. Annals of Botany; Vol. 35, Issue 1, January, 1–8.
  • 30. Påhlsson, AMB. 1989. Toxicity of heavy metals (Zn, Cu, Cd, Pb) to vascular plants. Water Air Soil Pollution; 47, 287–319.
  • 31. www.csb.gov.tr (accessed at 04.07.2022).
Celal Bayar Üniversitesi Fen Bilimleri Dergisi-Cover
  • ISSN: 1305-130X
  • Başlangıç: 2005
  • Yayıncı: Manisa Celal Bayar Üniversitesi Fen Bilimleri Enstitüsü