Araştırma Makalesi
BibTex RIS Kaynak Göster

Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey

Yıl 2021, Cilt: 51 Sayı: 2, 198 - 203, 31.08.2021

Öz

Background and Aims: This study aims to investigate the cytotoxicity and DNA protective effects of semi-arid, arid, or desert truffles such as the Terfezia and Picoa species. Methods: The DNA protective effects of the Terfezia and Picoa species was evaluated using plasmid pBR322 DNA treated with UV and H2O2. The cytotoxic effects of water and methanol extracts of the Terfezia and Picoa species on H1299 and HUVEC cells were evaluated using the MTT assay. Results: Higher concentrations of T. olbiensis and P. lefebvrei extracts have demonstrated a DNA protective effect. The water extract of P. juniperi only at a 40 mg/mL concentration demonstrated a DNA-protective effect, whereas T. boudieri extract did not show any DNA-protective effect at all concentrations tested. H1299 cells showed more sensitivity to the water extract of T. olbiensis (4.66%), P. juniperi (12.04%), P. lefebvrei (21.93%), and the methanol extract of T. boudieri (20.93%). In general, the water and methanol extracts of the Terfezia and Picoa species demonstrated the least cytotoxic effects on HUVEC cells, except for the water extract of P. juniperi (38.46%). Conclusions: In conclusion, results obtained from this study show that the Terfezia and Picoa truffle species have potential DNA protective and cancer prevention properties.

Kaynakça

  • Akyüz, M., Kırbağ, S., Bircan, B., & Gürhan, Y. (2015). Diversity and distribution of arid semi arid truffle (Terfezia and Picoa) in Elazığ- Malatya region of Turkey. Mycosphere, 6, 766–783.
  • • Akyüz, M., Kireçci, A. D. Ö., Gökçe, Z., Kirbağ, S., & Yilmaz, Ö. (2019). Biochemical constituents and antioxidant activities of some mushrooms from Turkey. Agaricus spp., Pleurotus spp., Morchella esculenta and Terfezia boudieri. İstanbul Journal of Pharmacy, 49, 1–6.
  • • Ames, N. B. (2010). Prevention of mutation, cancer, and other ageassociated diseases by optimizing micronutrient intake. Journal of Nucleic Acids, 2010, 1–11.
  • • Aprotosoaie, A. C., Zavastin, D. E., Mihai, C. T., Voichita, G., Gherghel, D., Silion, M., & Miron, A. (2017). Antioxidant and antigenotoxic potential of Ramaria largentii Marr & DE Stuntz, a wild edible mushroom collected from Northea Romania. Food & Chemical Toxicology, 108, 429–437.
  • • Beara, I. N., Lesjak, M. M., Četojević-Simin, D. D., Marjanović, Ž. S., Ristić, J. D., Mrkonjić, Z. O., & Mimica-Dukić, N. M. (2014). Phenolic profile, antioxidant, anti-inflammatory and cytotoxic activities of black (Tuber aestivum Vittad) and white (Tuber magnatum Pico) truffles. Food Chemistry, 165, 460–466.
  • • Berridge, M. V., Herst, P. M., & Tan, A. S. (2005). Tetrazolium dyes as tools in cell biology, new insights into their cellular reduction. Biotechnology Annual Review, 11, 127–152.
  • • Corrêa, R. C. G., Brugnari, T., Bracht, A., Peralta, R. M., & Ferreira, I. C. (2016). Biotechnological, nutritional and therapeutic uses of Pleurotus spp. (Oyster mushroom) related with its chemical composition, A review on the past decade findings. Trends in Food Science & Technology, 50, 103–117.
  • • Dahham, S. S., Al-Rawi, S. S., Ibrahim, A. H., Majid, A. S. A., & Majid, A. M. S. A. (2018). Antioxidant, anticancer, apoptosis properties and chemical composition of black truffle Terfezia claveryi. Saudi Journal of Biological Science, 25, 1524–1534.
  • • DeSantis, C. E., Lin, C. C., Mariotto, A. B., Siegel, R. L., Stein, K. D., Kramer, J. L., Alteri, R., Robbins, A. S., & Jemal, A. (2014). Cancer treatment and survivorship statistics. CA Cancer Journal for Clinicians, 252–271.
  • • Elsayed, E. A., Alsahli, F. D., El Enshasy, H. A., & Wadaan, M. A. (2019). Cytotoxic activities of different solvent extracts of Tirmania nivea and Terfezia claveryi against HepG2 and L929. Journal of Scientific & Industrial Research, 78, 454–457.
  • • Ferlay, J., Soerjomataram, I., Dikshit, R., Eser, S., Mathers, C., Rebelo, M., Parkin, D. M., Forman, D., & Bray, F. (2015). Cancer incidence and mortality worldwide, sources, methods and major patterns in Globocan 2012. International Journal of Cancer, 136, 359–386.
  • • Golla, U., Bhimathati, S. S. R. (2014). Evaluation of antioxidant and DNA damage protection activity of the hydroalcoholic extract of Desmostachya bipinnata L. Stapf. The Scientific World Journal, 2014, 1–8.
  • • Guo, T., Wei, L., Sun, J., Hou, C. L., & Fan, L. (2011). Antioxidant activities of extract and fractions from Tuber indicum Cooke & Massee. Food Chemistry, 127, 1634–1640.
  • • Jin, S., Zhang, Q. Y., Kang, X. M., Wang, J. X. & Zhao, W. H. (2010). Daidzein induces MCF-7 breast cancer cell apoptosis via the mitochondrial pathway. Annals of Oncology, 21, 263–268.
  • • Kagan-Zur, V., Roth Bejerano, N., Sitrit, Y., & Morte, A. (2014). Desert truffle (phylogeny, physiology, distribution and domestication), Springer Verlag Berlin Heidelberg.
  • • Khalifa, S. A. M., Farag, M. A., Yosrie, N., Sabir, J. S. M., Saeed, A., Al- Mousawi, S. M., Taha, W., Musharraf, S. G., Patel, S., & El-Seedi, H. R. (2019). Truffles, from Islamic culture to chemistry, pharmacology, and food trends in recent times Trends in Food Science & Technology, 91, 193–218.
  • • Kim, K. C., & Kim, I. G. (1999). Ganoderma lucidum extract protects DNA from strand breakage caused by hydroxyl radical and UV irradiation. International Journal of Molecular Medicine, 4, 273–280.
  • • Kothari, D., Patel, S., & Kim, S. K. (2018). Anticancer and other therapeutic relevance of mushroom polysaccharides, A holistic appraisal. Biomedicine & Pharmacotherapy, 105, 377–394.
  • • Ma, G., Yang, W., Zhao, L., Pei, F., Fang, D., & Hu, Q. (2018). A critical review on the health promoting effects of mushrooms nutraceuticals. Food Science and Human Wellness, 7, 125–133.
  • • Mosmann, T. (1983). Rapid colorimetric assay for cellular growth and survival: Application to proliferation and cytotoxicity assays. Journal of Immunological Methods, 65, 55–63.
  • • Özyürek, M., Bener, M., Güçlü, K., & Apak, R. (2014). Antioxidant/ antiradical properties of microwave-assisted extracts of three wild edible mushrooms. Food Chemistry, 157, 323–331.
  • • Patel, S., Rauf, A., Khan, H., Khalid, S., & Mubarak, M. S. (2017). Potential health benefits of natural products derived from truffles, a review. Trends in Food Science & Technology, 70, 1–8.
  • • Reis, F. S., Martins, A., Vasconcelos, M. H., Morales, P., & Ferreira, I. C. (2017). Functional foods based on extracts or compounds derived from mushrooms. Trends in Food Science & Technology, 66, 48–62.
  • • Roupas, P., Keogh, J., Noakes, M., Margetts, C., & Taylor, P. (2012). The role of edible mushrooms in health, Evaluation of the evidence. Journal of Functional Foods, 4, 687–709.
  • • Russo, A., Acquaviva, R., Campisi, A., Sorrenti, V., Di-Giacomo, C., Virgata, G., Barcellona, M. L., & Vanella, A. (2000). Bioflavonoids as antiradicals, antioxidants and DNA cleavage protectors. Cell Biology & Toxicology, 16, 91–98.
  • • Sánchez, C. (2017). Reactive oxygen species and antioxidant properties from mushrooms. Synthetic & Systems Biotechnology, 2, 13–22.
  • • Sarmadi, B. H., & Ismail, A. (2010). Antioxidative peptides from food proteins, a review. Peptides, 31, 1949–1956. • Shameem, N., Kamili, A. N., Ahmad, M., Masoodi, F. A., & Parray, J. A. (2017). Radical scavenging potential and DNA damage protection of wild edible mushrooms of Kashmir Himalaya. Journal of the Saudi Society of Agricultural Sciences, 16, 314–321.
  • • Sheikh, B. Y., Sarker, M. M. R., Kamarudin, M. N. A., & Ismail, A. (2017). Prophetic medicine as potential functional food elements in the intervention of cancer, A review. Biomedicina & Pharmacotherapy, 95, 614–648.
  • • Siegel, R. L., Miller, K. D., & Jemal, A. (2016). Cancer statistics. CA Cancer Journal for Clinicians, 66, 7–30.
  • • Souilem, F., Fernandes, Â., Calhelha, R. C., Barreira, J. C., Barros, L., Skhiri, F., & Ferreira, I. C. (2017). Wild mushrooms and their mycelia as sources of bioactive compounds, antioxidant, anti-inflammatory and cytotoxic properties. Food Chemistry, 230, 40–48.
  • • Soumya, K., Haridas, K. R., James, J., Kumar, V. B. S., Edatt, L., Sudheesh, S. (2019). Study of in vitro antioxidant and DNA damage protection activity of a novel luteolin derivative isolated from Terminalia chebula. Journal of Taibah University for Science, 13, 755–763.
  • • Stajic, M., Vukojevic, J., Knezevic, A., Lausevic, S. D., & Milovanovic, I. (2013). Antioxidant protective effects of mushroom metabolites. Current Topics in Medicinal Chemistry, 13, 2660–2676.
  • • Tadhani, M. B., Patel, V. H., & Subhash, R. (2007). In vitro antioxidant activities of Stevia rebaidiana leaves and callus. Journal of Food Composition & Analysis, 20, 323–329.
  • • Tepe, B., Degerli, S., Arslan, S., Malatyali, E., & Sarikurkcu, C. (2011). Determination of chemicalprofile, antioxidant, DNA damage protection and ant amoebic activities of Teucrium polium and Stachy siberica. Fitoterapia, 82, 237–246.
  • • Torre, L. A., Bray, F., Siegel, R. L., Ferlay, J., Lortet-Tieulent, J., & Jemal, A. (2012). Global cancer statistics. Cancer Journal for Clinicians, 65, 87–108.
  • • Valverde, M. E., Hernández-Pérez, T., & Paredes-López, O. (2015). Edible mushrooms: improving human health and promoting quality life. International Journal of Microbiology, 2015, 1–14.
  • • Verma, K., Shrivastava, D., & Kumar, G. (2015). Antioxidant activity and DNA damage inhibition in vitro by amethanolic extract of Carissa carandas (Apocynaceae) leaves. Journal of Taibah University for Science, 9, 34–40.
  • • Wang, S., & Marcone, M. F. (2011). The biochemistry and biological properties of the world's most expensive underground edible mushroom, Truffles. Food Research International, 44, 2567–2581.
  • • Wasser, S. P. (2011). Current findings, future trends, and unsolved problems in studies of medicinal mushrooms. Applied Microbiology & Biotechnology, 89, 1323–1332.
  • • Wasser, S. P. (2014). Medicinal mushroom science, current perspectives, advances, evidences, and challenges. Biomedical Journal, 37, 345–356.
  • • Wasser, S. P., & Weis, A. L. (1999). Medicinal properties of substances occurring in higher basidiomycetes mushrooms, current perspective (review). International Journal of Medicinal Mushrooms, 1, 31–62.
  • • Xiao, Y., Zhang, Q., Miao, J., Rui, X., Li, T. & Dong, M. (2015). Antioxidant activity and DNA damage protection of mung beans processed by solid state fermentation with Cordyceps militaris SN- 18. Innovative Food Science & Emerging Technologies, 31, 216–225.
  • • Živković, L., Bajić, V., Bruić, M., Borozan, S., Popić, K., Topalović, D., & Spremo- Potparević, B. (2019). Antigenotoxic and antioxidant potential of medicinal mushrooms (Immune Assist) against DNA damage induced by free radicals-an in vitro study. Mutation Research Genetic Toxicology & Environmental Mutagenesis, 845, 403078.
Yıl 2021, Cilt: 51 Sayı: 2, 198 - 203, 31.08.2021

Öz

Kaynakça

  • Akyüz, M., Kırbağ, S., Bircan, B., & Gürhan, Y. (2015). Diversity and distribution of arid semi arid truffle (Terfezia and Picoa) in Elazığ- Malatya region of Turkey. Mycosphere, 6, 766–783.
  • • Akyüz, M., Kireçci, A. D. Ö., Gökçe, Z., Kirbağ, S., & Yilmaz, Ö. (2019). Biochemical constituents and antioxidant activities of some mushrooms from Turkey. Agaricus spp., Pleurotus spp., Morchella esculenta and Terfezia boudieri. İstanbul Journal of Pharmacy, 49, 1–6.
  • • Ames, N. B. (2010). Prevention of mutation, cancer, and other ageassociated diseases by optimizing micronutrient intake. Journal of Nucleic Acids, 2010, 1–11.
  • • Aprotosoaie, A. C., Zavastin, D. E., Mihai, C. T., Voichita, G., Gherghel, D., Silion, M., & Miron, A. (2017). Antioxidant and antigenotoxic potential of Ramaria largentii Marr & DE Stuntz, a wild edible mushroom collected from Northea Romania. Food & Chemical Toxicology, 108, 429–437.
  • • Beara, I. N., Lesjak, M. M., Četojević-Simin, D. D., Marjanović, Ž. S., Ristić, J. D., Mrkonjić, Z. O., & Mimica-Dukić, N. M. (2014). Phenolic profile, antioxidant, anti-inflammatory and cytotoxic activities of black (Tuber aestivum Vittad) and white (Tuber magnatum Pico) truffles. Food Chemistry, 165, 460–466.
  • • Berridge, M. V., Herst, P. M., & Tan, A. S. (2005). Tetrazolium dyes as tools in cell biology, new insights into their cellular reduction. Biotechnology Annual Review, 11, 127–152.
  • • Corrêa, R. C. G., Brugnari, T., Bracht, A., Peralta, R. M., & Ferreira, I. C. (2016). Biotechnological, nutritional and therapeutic uses of Pleurotus spp. (Oyster mushroom) related with its chemical composition, A review on the past decade findings. Trends in Food Science & Technology, 50, 103–117.
  • • Dahham, S. S., Al-Rawi, S. S., Ibrahim, A. H., Majid, A. S. A., & Majid, A. M. S. A. (2018). Antioxidant, anticancer, apoptosis properties and chemical composition of black truffle Terfezia claveryi. Saudi Journal of Biological Science, 25, 1524–1534.
  • • DeSantis, C. E., Lin, C. C., Mariotto, A. B., Siegel, R. L., Stein, K. D., Kramer, J. L., Alteri, R., Robbins, A. S., & Jemal, A. (2014). Cancer treatment and survivorship statistics. CA Cancer Journal for Clinicians, 252–271.
  • • Elsayed, E. A., Alsahli, F. D., El Enshasy, H. A., & Wadaan, M. A. (2019). Cytotoxic activities of different solvent extracts of Tirmania nivea and Terfezia claveryi against HepG2 and L929. Journal of Scientific & Industrial Research, 78, 454–457.
  • • Ferlay, J., Soerjomataram, I., Dikshit, R., Eser, S., Mathers, C., Rebelo, M., Parkin, D. M., Forman, D., & Bray, F. (2015). Cancer incidence and mortality worldwide, sources, methods and major patterns in Globocan 2012. International Journal of Cancer, 136, 359–386.
  • • Golla, U., Bhimathati, S. S. R. (2014). Evaluation of antioxidant and DNA damage protection activity of the hydroalcoholic extract of Desmostachya bipinnata L. Stapf. The Scientific World Journal, 2014, 1–8.
  • • Guo, T., Wei, L., Sun, J., Hou, C. L., & Fan, L. (2011). Antioxidant activities of extract and fractions from Tuber indicum Cooke & Massee. Food Chemistry, 127, 1634–1640.
  • • Jin, S., Zhang, Q. Y., Kang, X. M., Wang, J. X. & Zhao, W. H. (2010). Daidzein induces MCF-7 breast cancer cell apoptosis via the mitochondrial pathway. Annals of Oncology, 21, 263–268.
  • • Kagan-Zur, V., Roth Bejerano, N., Sitrit, Y., & Morte, A. (2014). Desert truffle (phylogeny, physiology, distribution and domestication), Springer Verlag Berlin Heidelberg.
  • • Khalifa, S. A. M., Farag, M. A., Yosrie, N., Sabir, J. S. M., Saeed, A., Al- Mousawi, S. M., Taha, W., Musharraf, S. G., Patel, S., & El-Seedi, H. R. (2019). Truffles, from Islamic culture to chemistry, pharmacology, and food trends in recent times Trends in Food Science & Technology, 91, 193–218.
  • • Kim, K. C., & Kim, I. G. (1999). Ganoderma lucidum extract protects DNA from strand breakage caused by hydroxyl radical and UV irradiation. International Journal of Molecular Medicine, 4, 273–280.
  • • Kothari, D., Patel, S., & Kim, S. K. (2018). Anticancer and other therapeutic relevance of mushroom polysaccharides, A holistic appraisal. Biomedicine & Pharmacotherapy, 105, 377–394.
  • • Ma, G., Yang, W., Zhao, L., Pei, F., Fang, D., & Hu, Q. (2018). A critical review on the health promoting effects of mushrooms nutraceuticals. Food Science and Human Wellness, 7, 125–133.
  • • Mosmann, T. (1983). Rapid colorimetric assay for cellular growth and survival: Application to proliferation and cytotoxicity assays. Journal of Immunological Methods, 65, 55–63.
  • • Özyürek, M., Bener, M., Güçlü, K., & Apak, R. (2014). Antioxidant/ antiradical properties of microwave-assisted extracts of three wild edible mushrooms. Food Chemistry, 157, 323–331.
  • • Patel, S., Rauf, A., Khan, H., Khalid, S., & Mubarak, M. S. (2017). Potential health benefits of natural products derived from truffles, a review. Trends in Food Science & Technology, 70, 1–8.
  • • Reis, F. S., Martins, A., Vasconcelos, M. H., Morales, P., & Ferreira, I. C. (2017). Functional foods based on extracts or compounds derived from mushrooms. Trends in Food Science & Technology, 66, 48–62.
  • • Roupas, P., Keogh, J., Noakes, M., Margetts, C., & Taylor, P. (2012). The role of edible mushrooms in health, Evaluation of the evidence. Journal of Functional Foods, 4, 687–709.
  • • Russo, A., Acquaviva, R., Campisi, A., Sorrenti, V., Di-Giacomo, C., Virgata, G., Barcellona, M. L., & Vanella, A. (2000). Bioflavonoids as antiradicals, antioxidants and DNA cleavage protectors. Cell Biology & Toxicology, 16, 91–98.
  • • Sánchez, C. (2017). Reactive oxygen species and antioxidant properties from mushrooms. Synthetic & Systems Biotechnology, 2, 13–22.
  • • Sarmadi, B. H., & Ismail, A. (2010). Antioxidative peptides from food proteins, a review. Peptides, 31, 1949–1956. • Shameem, N., Kamili, A. N., Ahmad, M., Masoodi, F. A., & Parray, J. A. (2017). Radical scavenging potential and DNA damage protection of wild edible mushrooms of Kashmir Himalaya. Journal of the Saudi Society of Agricultural Sciences, 16, 314–321.
  • • Sheikh, B. Y., Sarker, M. M. R., Kamarudin, M. N. A., & Ismail, A. (2017). Prophetic medicine as potential functional food elements in the intervention of cancer, A review. Biomedicina & Pharmacotherapy, 95, 614–648.
  • • Siegel, R. L., Miller, K. D., & Jemal, A. (2016). Cancer statistics. CA Cancer Journal for Clinicians, 66, 7–30.
  • • Souilem, F., Fernandes, Â., Calhelha, R. C., Barreira, J. C., Barros, L., Skhiri, F., & Ferreira, I. C. (2017). Wild mushrooms and their mycelia as sources of bioactive compounds, antioxidant, anti-inflammatory and cytotoxic properties. Food Chemistry, 230, 40–48.
  • • Soumya, K., Haridas, K. R., James, J., Kumar, V. B. S., Edatt, L., Sudheesh, S. (2019). Study of in vitro antioxidant and DNA damage protection activity of a novel luteolin derivative isolated from Terminalia chebula. Journal of Taibah University for Science, 13, 755–763.
  • • Stajic, M., Vukojevic, J., Knezevic, A., Lausevic, S. D., & Milovanovic, I. (2013). Antioxidant protective effects of mushroom metabolites. Current Topics in Medicinal Chemistry, 13, 2660–2676.
  • • Tadhani, M. B., Patel, V. H., & Subhash, R. (2007). In vitro antioxidant activities of Stevia rebaidiana leaves and callus. Journal of Food Composition & Analysis, 20, 323–329.
  • • Tepe, B., Degerli, S., Arslan, S., Malatyali, E., & Sarikurkcu, C. (2011). Determination of chemicalprofile, antioxidant, DNA damage protection and ant amoebic activities of Teucrium polium and Stachy siberica. Fitoterapia, 82, 237–246.
  • • Torre, L. A., Bray, F., Siegel, R. L., Ferlay, J., Lortet-Tieulent, J., & Jemal, A. (2012). Global cancer statistics. Cancer Journal for Clinicians, 65, 87–108.
  • • Valverde, M. E., Hernández-Pérez, T., & Paredes-López, O. (2015). Edible mushrooms: improving human health and promoting quality life. International Journal of Microbiology, 2015, 1–14.
  • • Verma, K., Shrivastava, D., & Kumar, G. (2015). Antioxidant activity and DNA damage inhibition in vitro by amethanolic extract of Carissa carandas (Apocynaceae) leaves. Journal of Taibah University for Science, 9, 34–40.
  • • Wang, S., & Marcone, M. F. (2011). The biochemistry and biological properties of the world's most expensive underground edible mushroom, Truffles. Food Research International, 44, 2567–2581.
  • • Wasser, S. P. (2011). Current findings, future trends, and unsolved problems in studies of medicinal mushrooms. Applied Microbiology & Biotechnology, 89, 1323–1332.
  • • Wasser, S. P. (2014). Medicinal mushroom science, current perspectives, advances, evidences, and challenges. Biomedical Journal, 37, 345–356.
  • • Wasser, S. P., & Weis, A. L. (1999). Medicinal properties of substances occurring in higher basidiomycetes mushrooms, current perspective (review). International Journal of Medicinal Mushrooms, 1, 31–62.
  • • Xiao, Y., Zhang, Q., Miao, J., Rui, X., Li, T. & Dong, M. (2015). Antioxidant activity and DNA damage protection of mung beans processed by solid state fermentation with Cordyceps militaris SN- 18. Innovative Food Science & Emerging Technologies, 31, 216–225.
  • • Živković, L., Bajić, V., Bruić, M., Borozan, S., Popić, K., Topalović, D., & Spremo- Potparević, B. (2019). Antigenotoxic and antioxidant potential of medicinal mushrooms (Immune Assist) against DNA damage induced by free radicals-an in vitro study. Mutation Research Genetic Toxicology & Environmental Mutagenesis, 845, 403078.
Toplam 43 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Eczacılık ve İlaç Bilimleri, Sağlık Kurumları Yönetimi
Bölüm Original Article
Yazarlar

Mehmet Akyüz Bu kişi benim 0000-0003-3986-3498

Işık Didem Karagöz Bu kişi benim 0000-0001-6527-2750

Şule İnci Bu kişi benim 0000-0002-4022-5269

İbrahim Halil Kılıç Bu kişi benim 0000-0002-0272-5131

Sevda Kırbağ Bu kişi benim 0000-0002-4337-8236

Başak Simitçioğlu Bu kişi benim 0000-0002-2678-569X

Yayımlanma Tarihi 31 Ağustos 2021
Gönderilme Tarihi 16 Eylül 2020
Yayımlandığı Sayı Yıl 2021 Cilt: 51 Sayı: 2

Kaynak Göster

APA Akyüz, M., Karagöz, I. D., İnci, Ş., Kılıç, İ. H., vd. (2021). Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey. İstanbul Journal of Pharmacy, 51(2), 198-203.
AMA Akyüz M, Karagöz ID, İnci Ş, Kılıç İH, Kırbağ S, Simitçioğlu B. Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey. iujp. Ağustos 2021;51(2):198-203.
Chicago Akyüz, Mehmet, Işık Didem Karagöz, Şule İnci, İbrahim Halil Kılıç, Sevda Kırbağ, ve Başak Simitçioğlu. “Cytotoxicity and DNA Protective Effects of the Terfezia and Picoa Species from the Eastern Region of Turkey”. İstanbul Journal of Pharmacy 51, sy. 2 (Ağustos 2021): 198-203.
EndNote Akyüz M, Karagöz ID, İnci Ş, Kılıç İH, Kırbağ S, Simitçioğlu B (01 Ağustos 2021) Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey. İstanbul Journal of Pharmacy 51 2 198–203.
IEEE M. Akyüz, I. D. Karagöz, Ş. İnci, İ. H. Kılıç, S. Kırbağ, ve B. Simitçioğlu, “Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey”, iujp, c. 51, sy. 2, ss. 198–203, 2021.
ISNAD Akyüz, Mehmet vd. “Cytotoxicity and DNA Protective Effects of the Terfezia and Picoa Species from the Eastern Region of Turkey”. İstanbul Journal of Pharmacy 51/2 (Ağustos 2021), 198-203.
JAMA Akyüz M, Karagöz ID, İnci Ş, Kılıç İH, Kırbağ S, Simitçioğlu B. Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey. iujp. 2021;51:198–203.
MLA Akyüz, Mehmet vd. “Cytotoxicity and DNA Protective Effects of the Terfezia and Picoa Species from the Eastern Region of Turkey”. İstanbul Journal of Pharmacy, c. 51, sy. 2, 2021, ss. 198-03.
Vancouver Akyüz M, Karagöz ID, İnci Ş, Kılıç İH, Kırbağ S, Simitçioğlu B. Cytotoxicity and DNA protective effects of the Terfezia and Picoa species from the eastern region of Turkey. iujp. 2021;51(2):198-203.