Araştırma Makalesi

Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.)

Cilt: 3 Sayı: 2 20 Aralık 2019
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Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.)

Öz

Pesticides are used in agriculture and cause side effects in plants and can be transported to products which we consume. Genotoxic chemical substances distributed to environment and higher plants such as Glycine max have been used as an indicator plants that show the genotoxic effects of environmental chemical pollutants. In this respect we investigated the potential genotoxic effect of three different pesticides (Pomarsol Forte WP 80 as a fungucide, Arrivo 25 EC as an insecticide, and The End EC as an herbicide) on G. max (Glycine max L.) for the first time. In order to determine the genotoxic effects of these pesticides on G max. Median EC (effective concentration) determination analysis, RAPD-PCR (randomly amplified polymorphic DNA-polymerase chain reaction) assay and protein analysis were used. Our results indicated that The End as a herbicide had more inhibitory effects on G. max root growth compare to the other pesticides. 20 RAPD primers were used, eighteen primers gave stable results while 11 of them were polymorphic and 7 of them showed the same band profile. Percentage of polymorphism was found as 20%. Total protein content was significantly decreased by insecticide treatment but increased in herbicide treatment (p<0.05). In conclusion these results suggest that these pesticides have genotoxic effects on G. max and the use of these chemicals must be reduced to avoid exposure to humans and the environment.

Anahtar Kelimeler

Destekleyen Kurum

Kocaeli University Scientific Research Projects Coordination Unit

Proje Numarası

2011/43

Teşekkür

This study is supported by Kocaeli University Scientific Research Projects Coordination Unit. Project Number: 2011/43.

Kaynakça

  1. Aksoy, O., Dane, F., Sanal F.E., & Aktac, T. (2007). The effects of Fusilade (Fluazifop p-butyl) on germination, mitotic frequency and a-amylase activity of lentil (Lens culinaris Medik.) seeds. Acta Physiologia Plantarium, 29, 115-120.
  2. Angelis K.J., McGuffie, M., Menke, M., & Schubert, I. (2000). Adaption to alkylation damage in DNA measured by the comet assay. Environmental Molecular Mutagenesis, 36, 146-150.
  3. Atienzar, F.A., & Jha, A.N. (2006). The random amplified polymorphic DNA (RAPD) assay and related techniques applied to genotoxicity and carcinogenesis studies: a critical review. Mutation Research, 613, 76–102.
  4. Atienzar, F.A., Conradi, M., Evenden, A., Jha A., & Depledge, M. (1999). Qualitative assessment of genotoxicity using random amplified polymorphic DNA: comparison of genomic template stability with key fitness parameters in Daphnia magna exposed tobenzo(a)pyrene. Environmental Toxicology and Chemistry, 18, 2275-2282.
  5. Atienzar, F.A., Venier, P., Jha, A.N., & Depledge M.H. (2002). Evaluation of the random amplified polymorphic DNA (RAPD) assay for the detection of DNA damage and mutations. Mutation Research, 521, 151-163.
  6. Bradford, M.M. (1976). A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein–dye binding, Analytical Biochemistry, 72, 248-254.
  7. Cenkci, S., Cigerci, I.H., Yıldız, M., Ozay, C., Bozdağ A., & Terzi, H. (2010). Lead contamination reduces chlorophyll biosynthesis and genomic template stability in Brassica rapa L. Environmental Experimental Botany, 67, 467-473.
  8. Enan, M.R. (2006). Application of random amplified polymorphic DNA (RAPD) to detect the genotoxic effect of heavy metals. Biotechnology and Applied Biochemistry, 43, 147-154.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Yapısal Biyoloji

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

20 Aralık 2019

Gönderilme Tarihi

4 Eylül 2019

Kabul Tarihi

7 Kasım 2019

Yayımlandığı Sayı

Yıl 2019 Cilt: 3 Sayı: 2

Kaynak Göster

APA
Deveci Özkan, A., & Aksoy, Ö. (2019). Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.). Commagene Journal of Biology, 3(2), 83-87. https://doi.org/10.31594/commagene.615488
AMA
1.Deveci Özkan A, Aksoy Ö. Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.). Commagene Journal of Biology. 2019;3(2):83-87. doi:10.31594/commagene.615488
Chicago
Deveci Özkan, Asuman, ve Özlem Aksoy. 2019. “Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.)”. Commagene Journal of Biology 3 (2): 83-87. https://doi.org/10.31594/commagene.615488.
EndNote
Deveci Özkan A, Aksoy Ö (01 Aralık 2019) Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.). Commagene Journal of Biology 3 2 83–87.
IEEE
[1]A. Deveci Özkan ve Ö. Aksoy, “Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.)”, Commagene Journal of Biology, c. 3, sy 2, ss. 83–87, Ara. 2019, doi: 10.31594/commagene.615488.
ISNAD
Deveci Özkan, Asuman - Aksoy, Özlem. “Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.)”. Commagene Journal of Biology 3/2 (01 Aralık 2019): 83-87. https://doi.org/10.31594/commagene.615488.
JAMA
1.Deveci Özkan A, Aksoy Ö. Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.). Commagene Journal of Biology. 2019;3:83–87.
MLA
Deveci Özkan, Asuman, ve Özlem Aksoy. “Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.)”. Commagene Journal of Biology, c. 3, sy 2, Aralık 2019, ss. 83-87, doi:10.31594/commagene.615488.
Vancouver
1.Asuman Deveci Özkan, Özlem Aksoy. Determination of Pesticide-Induced Genotoxicity on Soybean (Glycine max L.). Commagene Journal of Biology. 01 Aralık 2019;3(2):83-7. doi:10.31594/commagene.615488

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