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Exploring Antioxidant and Genotoxic Activities of Silver Nanoparticles Synthesized from Karaerik Grape Leaves: A Green Approach

Year 2024, , 1282 - 1292, 31.12.2024
https://doi.org/10.17798/bitlisfen.1554402

Abstract

Nowadays, plant extract-mediated biosynthesis of nanoparticles has gained prominence as a pivotal research domain. Silver nanoparticles are traditionally synthesized using highly toxic and ecologically hazardous chemical and physical methods. The emerging green synthesis approach offers more eco-friendly alternatives while reducing production costs. Hence, the present study opted for a nature-friendly green synthesis method to produce silver nanoparticles. Silver nanoparticles were characterized using UV-visible spectroscopy (UV-VIS), scanning electron microscopy (SEM), X-ray diffraction (XRD), and Fourier transform infrared spectroscopy (FT-IR). The reaction involved the treatment of AgNO3 (5 mM) with an aqueous extract of Karaerik grape leaf. Subsequently, the potentially toxic, genotoxic, and antioxidant effects of purchased chemically produced silver nanoparticles (AgNP(c)) and silver nanoparticles (AgNP(b)) that we synthesized using the green method were investigated on Drosophila melanogaster transheterozygous larvae. The study employed 72 ± 4 hour-old larvae bearing the recessive flr3 and mwh determinant genes on their third chromosomes. Exposure scenarios included 1 mM Ethyl methanesulfonate (EMS), AgNPs (1.25, 2.5, and 5 mg/mL), and EMS+ AgNPs. Interestingly, the EMS+ AgNPs combination reduced total oxidant status while increasing total antioxidant status significantly compared to EMS alone. To assess genotoxic effects, mutant trichomes resulting from genetic changes in the development of wing imaginal discs were examined. Furthermore, the AgNP synthesized through green synthesis demonstrated antioxidant properties and displayed no genotoxicity. In conclusion, the research highlights the promising potential of green-synthesized silver nanoparticles, which provide an eco-friendly and safe method for various applications.

Ethical Statement

The study is complied with research and publication ethics.

Supporting Institution

Erzincan Binali Yıldırım University Research Foundation

Project Number

FYL-2019-613

Thanks

This study was supported by the Erzincan Binali Yıldırım University Research Foundation. The authors thank Erzincan Binali Yıldırım University for financial support for the project [Project Number = FYL-2019-613].

References

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  • [2] A. Mbonyiryivuze, I. Omollo, B. D. Ngom, B. Mwakikunga, S. M. Dhlamini, E. Park, and M. Maaza "Natural dye sensitizer for Grätzel cells: Sepia melanin," Mater Chem Phys., vol. 3, pp. 1-6, June 2015.
  • [3] T. Faunce, and A. Watal, "Nanosilver and global public health: international regulatory issues," Nanomed., vol. 5, pp. 617-632, June 2010.
  • [4] N. Roy, A. Gaur, A. Jain, S. Bhattacharya, and V. Rani, "Green synthesis of silver nanoparticles: an approach to overcome toxicity," Environ Toxicol Pharmacol., vol. 36, pp. 807-812, November 2013.
  • [5] M. P. Patil, and G. D. Kim, "Eco-friendly approach for nanoparticles synthesis and mechanism behind antibacterial activity of silver and anticancer activity of gold nanoparticles," Appl Microbiol Biotechnol., vol. 101, pp. 79-92, December 2017.
  • [6] A. R. Shahverdi, S. Minaeian, H. R. Shahverdi, H. Jamalifar, and A. A. Nohi, "Rapid synthesis of silver nanoparticles using culture supernatants of Enterobacteria: a novel biological approach," Process Biochem., vol. 42, pp. 919-923, May 2007.
  • [7] O. V. Kharissova, H. R. Dias, B. I. Kharisov, B. O. Pérez, and V. M. J. Pérez, "The greener synthesis of nanoparticles," Trends Biotechnol., vol. 31, pp. 240-248, April 2013.
  • [8] G. Benelli, and C. M. Lukehart, "Applications of green-synthesized nanoparticles in pharmacology, parasitology and entomology," J Clust Sci., vol. 28, pp. 1-2, January 2017.
  • [9] X. Hu, S. Cook, P. Wang, and H. Hwang, "In vitro evaluation of cytotoxicity of engineered metal oxide nanoparticles," Sci Total Environ., vol. 407, pp. 3070-3072, April 2009.
  • [10] G. M. Rubin, E. B. Lewis, "A brief history of Drosophila’s contributions to genome research," Science., vol. 287, pp. 2216-2218, March 2000.
  • [11] B. H. Jennings, "Drosophila- a versatile model in biology and medicine," Mater Today., vol. 14, pp. 190-195, May 2011.
  • [12] U. Graf, F. E. Würgler, A. J. Katz, H. Frei, H. Juon, C. B. Hall, and P. G. Kale, "Somatic mutation and recombination test in Drosophila melanogaster," Environ Mutagen., vol. 6, pp. 153-188, 1984.
  • [13] D. L. Lindsley, and G. G. Zimm, "The Genome of Drosophila melanogaster," Academic Press, San Diego, CA, 1992.
  • [14] P. H. Davis, R.R. Miller and K. Tan. 1965-1985. Flora of Turkey and the Aegean Islands. vol. 1-9, Edinburgh University Press, Edinburgh.
  • [15] P. H. Davis, R.R. Miller and K. Tan. 1988. Flora of Turkey and the Aegean Islands. vol. 10 (Supplement I), Edinburgh University Press, Edinburgh.
  • [16] A. Güner, N. Özhatay, T. Ekim and K.H.C. Başer. 2000. Flora of Turkey and The East Aegean Islands. Vol. 11 (Supplement II), Edinburgh University Press, Edinburgh.
  • [17] O. Erel, "A new automated colorimetric method for measuring total oxidant status," Clin Biochem., vol. 38, pp. 1103-1111. December 2005.
  • [18] G. A. Sega, "A Review of the genetic effects of ethyl methanesulfonate," Mutat Res., vol. 134, pp. 113-142, September–November 1984.
  • [19] R. Socha, and F. Marec, "Genotoxicity of the anti-juvenile hormone agent precocene II as revealed by the Drosophila wing spot test," Mutagenesis, vol. 4, pp. 216-220, May 1989.
  • [20] H. Frei, and F. E. Würgler, "Statistical methods to decide whether mutagenicity test data from Drosophila assays indicate a positive, negative, or inconclusive result," Mutat Res-Envir Muta., vol. 203, pp. 297-308, August 1988.
  • [21] N. A. Begum, S. Mondal, S. Basu, R. A. Laskar, and D. Mandal, "Biogenic synthesis of Au and Ag nanoparticles using aqueous solutions of Black Tea leaf extracts," Colloids Surf B Biointerfaces., vol. 71, pp. 113-118, June 2009.
  • [22] A. García-Quintero, and M. Palencia, "A critical analysis of environmental sustainability metrics applied to green synthesis of nanomaterials and the assessment of environmental risks associated with the nanotechnology," Sci Total Environ., vol. 793, pp. 148524, November 2021.
  • [23] J. Jeevanandam, S. F. Kiew, S. Boakye-Ansah, S. Y. Lau, A. Barhoum, M. K. Danquah, and J. Rodrigues, "Green approaches for the synthesis of metal and metal oxide nanoparticles using microbial and plant extracts," Nanoscale., vol. 14, pp. 2534-2571. 2022.
  • [24] A. E. Fadiji, P. E. Mortimer, J. Xu, E. E. Ebenso, and O. O. Babalola, "Biosynthesis of nanoparticles using endophytes: a novel approach for enhancing plant growth and sustainable agriculture," Sustainability., vol. 14, pp.10839, August 2022.
  • [25] M. A. Huq, M. Ashrafudoulla, M. M. Rahman, S. R. Balusamy, and S. Akter, "Green synthesis and potential antibacterial applications of bioactive silver nanoparticles: A review," Polymers., vol. 14, pp. 742, February 2022.
  • [26] M. Sahin, and I. H. Gubbuk, "Green synthesis of palladium nanoparticles and investigation of their catalytic activity for methylene blue, methyl orange, and rhodamine B degradation by sodium borohydride," Reac Kinet Mech Cat., vol.135, pp. 999-1010, February 2022.
  • [27] A. M. Awwad, and N. M. Salem, "Green synthesis of silver nanoparticles by Mulberry Leaves Extract," J Nanosci Nanotechnol., vol. 2, pp. 125-128, 2012.
  • [28] H. Acay, and M. F. Baran, "Investigating antimicrobial activity of silver nanoparticles produced through green synthesis using leaf extract of Common grape (Vitis vinifera), "Appl Ecol Environ Res., vol. 17, pp. 4539-4546, February 2019.
  • [29] G. Gnanajobitha, K. Paulkumar, M. Vanaja, S. Rajeshkumar, C. Malarkodi, G. Annadurai, and C. Kannan, "Fruit-mediated synthesis of silver nanoparticles using Vitis vinifera and evaluation of their antimicrobial efficacy," J Nanostruct Chem., vol. 3, pp. 1-6, August 2013.
  • [30] A. K. M. Asaduzzaman, B. S. Chun, and S. R. Kabir, "Vitis vinifera assisted silver nanoparticles with antibacterial and antiproliferative activity against Ehrlich ascites carcinoma cells," J Nanopart., vol. 2016, pp. 6898926, August 2016.
  • [31] X. Guo, Y. Li, J. Yan, T. Ingle, M. Jones, N. Mei, M. Boudreau, C. Cunningham, M. Abbas, A. Paredes, T. Zhou, M. Moore, P. Howard, and T. Chen. "Size- and coating-dependent cytotoxicity and genotoxicity of silver nanoparticles evaluated using in vitro standard assays. " Nanotoxicology, vol. 10, pp.1373 - 1384. August 2016.
  • [32] T. Kumkoon, M. Srisaisap, and P. Boonserm, (2023). "Biosynthesized silver nanoparticles using Morus alba (white mulberry) leaf extract as potential antibacterial and anticancer agents. " Molecules, vol. 28(3), pp. 1213. January 2023.
  • [33] C. Ong, L. Y. L. Yung, Y. Cai, B. H. Bay, and G. H. Baeg, "Drosophila melanogaster as a model organism to study nanotoxicity," Nanotoxicology., vol. 9, pp. 396-403, July 2015.
  • [34] E. Demir, G. Vales, B. Kaya, A. Creus, and R. Marcos, "Genotoxic analysis of silver nanoparticles in Drosophila," Nanotoxicology., vol. 5, pp. 417-424, November 2010.
  • [35] D. J. Gorth, D. M. Rand, and T. J. Webster, "Silver nanoparticle toxicity in Drosophila: size does matter," Int J Nanomedicine., vol. 6, 343-350, February 2011.
  • [36] A. Ávalos, A. I. Haza, E. Drosopoulou, P. Mavragani-Tsipidou, and P. Morales, "In vivo genotoxicity assessment of silver nanoparticles of different sizes by the Somatic Mutation and Recombination Test (SMART) on Drosophila," Food Chem Toxicol., vol. 85, pp.114-119. November 2015.
Year 2024, , 1282 - 1292, 31.12.2024
https://doi.org/10.17798/bitlisfen.1554402

Abstract

Project Number

FYL-2019-613

References

  • [1] P. K. Jain, X. Huang, I. H. El-Sayed, and M. A. El-Sayed, "Noble metals on the nanoscale: optical and photothermal properties and some applications in imaging, sensing, biology, and medicine," Acc Chem Res., vol. 41, pp. 1578-1586, May 2008.
  • [2] A. Mbonyiryivuze, I. Omollo, B. D. Ngom, B. Mwakikunga, S. M. Dhlamini, E. Park, and M. Maaza "Natural dye sensitizer for Grätzel cells: Sepia melanin," Mater Chem Phys., vol. 3, pp. 1-6, June 2015.
  • [3] T. Faunce, and A. Watal, "Nanosilver and global public health: international regulatory issues," Nanomed., vol. 5, pp. 617-632, June 2010.
  • [4] N. Roy, A. Gaur, A. Jain, S. Bhattacharya, and V. Rani, "Green synthesis of silver nanoparticles: an approach to overcome toxicity," Environ Toxicol Pharmacol., vol. 36, pp. 807-812, November 2013.
  • [5] M. P. Patil, and G. D. Kim, "Eco-friendly approach for nanoparticles synthesis and mechanism behind antibacterial activity of silver and anticancer activity of gold nanoparticles," Appl Microbiol Biotechnol., vol. 101, pp. 79-92, December 2017.
  • [6] A. R. Shahverdi, S. Minaeian, H. R. Shahverdi, H. Jamalifar, and A. A. Nohi, "Rapid synthesis of silver nanoparticles using culture supernatants of Enterobacteria: a novel biological approach," Process Biochem., vol. 42, pp. 919-923, May 2007.
  • [7] O. V. Kharissova, H. R. Dias, B. I. Kharisov, B. O. Pérez, and V. M. J. Pérez, "The greener synthesis of nanoparticles," Trends Biotechnol., vol. 31, pp. 240-248, April 2013.
  • [8] G. Benelli, and C. M. Lukehart, "Applications of green-synthesized nanoparticles in pharmacology, parasitology and entomology," J Clust Sci., vol. 28, pp. 1-2, January 2017.
  • [9] X. Hu, S. Cook, P. Wang, and H. Hwang, "In vitro evaluation of cytotoxicity of engineered metal oxide nanoparticles," Sci Total Environ., vol. 407, pp. 3070-3072, April 2009.
  • [10] G. M. Rubin, E. B. Lewis, "A brief history of Drosophila’s contributions to genome research," Science., vol. 287, pp. 2216-2218, March 2000.
  • [11] B. H. Jennings, "Drosophila- a versatile model in biology and medicine," Mater Today., vol. 14, pp. 190-195, May 2011.
  • [12] U. Graf, F. E. Würgler, A. J. Katz, H. Frei, H. Juon, C. B. Hall, and P. G. Kale, "Somatic mutation and recombination test in Drosophila melanogaster," Environ Mutagen., vol. 6, pp. 153-188, 1984.
  • [13] D. L. Lindsley, and G. G. Zimm, "The Genome of Drosophila melanogaster," Academic Press, San Diego, CA, 1992.
  • [14] P. H. Davis, R.R. Miller and K. Tan. 1965-1985. Flora of Turkey and the Aegean Islands. vol. 1-9, Edinburgh University Press, Edinburgh.
  • [15] P. H. Davis, R.R. Miller and K. Tan. 1988. Flora of Turkey and the Aegean Islands. vol. 10 (Supplement I), Edinburgh University Press, Edinburgh.
  • [16] A. Güner, N. Özhatay, T. Ekim and K.H.C. Başer. 2000. Flora of Turkey and The East Aegean Islands. Vol. 11 (Supplement II), Edinburgh University Press, Edinburgh.
  • [17] O. Erel, "A new automated colorimetric method for measuring total oxidant status," Clin Biochem., vol. 38, pp. 1103-1111. December 2005.
  • [18] G. A. Sega, "A Review of the genetic effects of ethyl methanesulfonate," Mutat Res., vol. 134, pp. 113-142, September–November 1984.
  • [19] R. Socha, and F. Marec, "Genotoxicity of the anti-juvenile hormone agent precocene II as revealed by the Drosophila wing spot test," Mutagenesis, vol. 4, pp. 216-220, May 1989.
  • [20] H. Frei, and F. E. Würgler, "Statistical methods to decide whether mutagenicity test data from Drosophila assays indicate a positive, negative, or inconclusive result," Mutat Res-Envir Muta., vol. 203, pp. 297-308, August 1988.
  • [21] N. A. Begum, S. Mondal, S. Basu, R. A. Laskar, and D. Mandal, "Biogenic synthesis of Au and Ag nanoparticles using aqueous solutions of Black Tea leaf extracts," Colloids Surf B Biointerfaces., vol. 71, pp. 113-118, June 2009.
  • [22] A. García-Quintero, and M. Palencia, "A critical analysis of environmental sustainability metrics applied to green synthesis of nanomaterials and the assessment of environmental risks associated with the nanotechnology," Sci Total Environ., vol. 793, pp. 148524, November 2021.
  • [23] J. Jeevanandam, S. F. Kiew, S. Boakye-Ansah, S. Y. Lau, A. Barhoum, M. K. Danquah, and J. Rodrigues, "Green approaches for the synthesis of metal and metal oxide nanoparticles using microbial and plant extracts," Nanoscale., vol. 14, pp. 2534-2571. 2022.
  • [24] A. E. Fadiji, P. E. Mortimer, J. Xu, E. E. Ebenso, and O. O. Babalola, "Biosynthesis of nanoparticles using endophytes: a novel approach for enhancing plant growth and sustainable agriculture," Sustainability., vol. 14, pp.10839, August 2022.
  • [25] M. A. Huq, M. Ashrafudoulla, M. M. Rahman, S. R. Balusamy, and S. Akter, "Green synthesis and potential antibacterial applications of bioactive silver nanoparticles: A review," Polymers., vol. 14, pp. 742, February 2022.
  • [26] M. Sahin, and I. H. Gubbuk, "Green synthesis of palladium nanoparticles and investigation of their catalytic activity for methylene blue, methyl orange, and rhodamine B degradation by sodium borohydride," Reac Kinet Mech Cat., vol.135, pp. 999-1010, February 2022.
  • [27] A. M. Awwad, and N. M. Salem, "Green synthesis of silver nanoparticles by Mulberry Leaves Extract," J Nanosci Nanotechnol., vol. 2, pp. 125-128, 2012.
  • [28] H. Acay, and M. F. Baran, "Investigating antimicrobial activity of silver nanoparticles produced through green synthesis using leaf extract of Common grape (Vitis vinifera), "Appl Ecol Environ Res., vol. 17, pp. 4539-4546, February 2019.
  • [29] G. Gnanajobitha, K. Paulkumar, M. Vanaja, S. Rajeshkumar, C. Malarkodi, G. Annadurai, and C. Kannan, "Fruit-mediated synthesis of silver nanoparticles using Vitis vinifera and evaluation of their antimicrobial efficacy," J Nanostruct Chem., vol. 3, pp. 1-6, August 2013.
  • [30] A. K. M. Asaduzzaman, B. S. Chun, and S. R. Kabir, "Vitis vinifera assisted silver nanoparticles with antibacterial and antiproliferative activity against Ehrlich ascites carcinoma cells," J Nanopart., vol. 2016, pp. 6898926, August 2016.
  • [31] X. Guo, Y. Li, J. Yan, T. Ingle, M. Jones, N. Mei, M. Boudreau, C. Cunningham, M. Abbas, A. Paredes, T. Zhou, M. Moore, P. Howard, and T. Chen. "Size- and coating-dependent cytotoxicity and genotoxicity of silver nanoparticles evaluated using in vitro standard assays. " Nanotoxicology, vol. 10, pp.1373 - 1384. August 2016.
  • [32] T. Kumkoon, M. Srisaisap, and P. Boonserm, (2023). "Biosynthesized silver nanoparticles using Morus alba (white mulberry) leaf extract as potential antibacterial and anticancer agents. " Molecules, vol. 28(3), pp. 1213. January 2023.
  • [33] C. Ong, L. Y. L. Yung, Y. Cai, B. H. Bay, and G. H. Baeg, "Drosophila melanogaster as a model organism to study nanotoxicity," Nanotoxicology., vol. 9, pp. 396-403, July 2015.
  • [34] E. Demir, G. Vales, B. Kaya, A. Creus, and R. Marcos, "Genotoxic analysis of silver nanoparticles in Drosophila," Nanotoxicology., vol. 5, pp. 417-424, November 2010.
  • [35] D. J. Gorth, D. M. Rand, and T. J. Webster, "Silver nanoparticle toxicity in Drosophila: size does matter," Int J Nanomedicine., vol. 6, 343-350, February 2011.
  • [36] A. Ávalos, A. I. Haza, E. Drosopoulou, P. Mavragani-Tsipidou, and P. Morales, "In vivo genotoxicity assessment of silver nanoparticles of different sizes by the Somatic Mutation and Recombination Test (SMART) on Drosophila," Food Chem Toxicol., vol. 85, pp.114-119. November 2015.
There are 36 citations in total.

Details

Primary Language English
Subjects Genotoxicity and Cytotoxicity
Journal Section Araştırma Makalesi
Authors

Gürhan Bayğu 0000-0002-2699-0722

Deniz Altun Çolak 0000-0002-3576-0355

Project Number FYL-2019-613
Early Pub Date December 30, 2024
Publication Date December 31, 2024
Submission Date September 23, 2024
Acceptance Date November 20, 2024
Published in Issue Year 2024

Cite

IEEE G. Bayğu and D. Altun Çolak, “Exploring Antioxidant and Genotoxic Activities of Silver Nanoparticles Synthesized from Karaerik Grape Leaves: A Green Approach”, Bitlis Eren Üniversitesi Fen Bilimleri Dergisi, vol. 13, no. 4, pp. 1282–1292, 2024, doi: 10.17798/bitlisfen.1554402.

Bitlis Eren University
Journal of Science Editor
Bitlis Eren University Graduate Institute
Bes Minare Mah. Ahmet Eren Bulvari, Merkez Kampus, 13000 BITLIS