Research Article
BibTex RIS Cite

Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family

Year 2024, Volume: 54 Issue: 3, 403 - 408, 30.12.2024
https://doi.org/10.26650/IstanbulJPharm.2024.1099972

Abstract

Background and Aims: Plants from the Lamiaceae family are shown to have pharmacological activities, including antiinflammatory, antidiabetic, antiasthmatic, hypolipidemic, antibacterial. This research measured the antioxidant and neuroprotective capacity of methanol extracts from the Marrubium vulgare L., Phlomis armeniaca Willd., Thymus haussknechtii Velen. and, Thymus kotschyanus Boiss. & Hohen plants in cellular and cell-free systems.
Methods: The neuroprotective potential of Marrubium vulgare, Phlomis armeniaca, Thymus haussknechtii, and T. kotschyanus were determined against H2O2 toxicity in SH-SY5Y, the human neuroblastoma cell line. The antioxidant capacity of methanol extracts was examined by radical scavenging assays using static exempt chemical groups, 2.2’-diphenyl-1-picrylhydrazyl-hydrate (DPPH) and 2.2’-azinobis (3-ethylbenzothiazoline-6-sulfonic acid) (ABTS). Folin-Ciocalteau and Aluminum chloride assays were used to measure phenolic and flavonoid contents of the extracts.
Results: Following these experiments, the effect of three different concentrations of extracts (1, 10 and 100 μg/mL) on cell viability was assessed by a WST-1 [2-(4-iodophenyl)-3-(4-nitrophenyl)-5-(2,4-disulfophenyl)-2H-tetrazolium)]. The methanol extract of Marrubium vulgare was found to have the highest antiradical activity against DPPH (76.439±0.42%). The Thymus kotschyanus (10μg/mL) protected cells from H2O2-induced toxicity in all the extracts (p<0.05).
Conclusion: In our report, we suggest that Thymus kotschyanus have potential neuroprotective activity because of the existence of polyphenolic compounds, flavonoids, and phenolic acids.

References

  • Abdelhalim, A., & Hanrahan, J. (2021). Biologically active com-pounds from Lamiaceae family: Central nervous system ef-fects. Natural Products Chemistry, 68, 255-315. https://doi.org/ 10.1016/B978-0-12-819485-0.00017-7 google scholar
  • ACimovic, M., Jeremic, K., Salaj,N., Gavaric,N., Kiprovski,B., Sikora, V., & Zeremski, T. (2020). Marrubium vulgare L.: A phyto-chemical and pharmacological overview, Molecules, 25, 2898. https://doi.org/10.3390/molecules25122898 google scholar
  • Afonso, A.F., Pereira, O.R., Neto, R.T., Silva, A.M.S., & Cardoso, S.M. (2017). Health-promoting effects of Thymus herba-barona, Thymus pseudolanuginosus, and Thymus caespititius decoctions. International Journal of Molecular Science, 18(9), 1879. https: //doi.org/10.3390/ijms18091879 google scholar
  • Akbulut, T.D., Kose, F.A., Demirci, B., & Baykan, S. (2023). Chem-ical profile and cytotoxicity evaluation of aerial parts of Mar-rubium vulgare L. from different locations in Turkey. Chemistry & Biodiversity, 20, e20220118 https://dx.doi.org/10.1002/cbdv. 202201188 google scholar
  • Amri, B., Martino, E., Vitulo, F., Corana, F., Ben-Kaab, L.B., Rui, M., ... Collina, S. (2017). Marrubium vulgare L. leave ex-tract: phytochemical composition, antioxidant and wound heal-ing properties. Molecules, 22(11), 1-18. https://doi.org/10.3390/ molecules22111851 google scholar
  • Aybey, A. (2020). Antibacterial and antibiofilm properties of Phlomis and Stachys species. Bangladesh Journal of Botany, 49(2), 257263. https://doi.org/10.3329/bjb.v49i2.49299 google scholar
  • Boroomand, N., Sadat-Hosseini, M., Moghbeli, M., & Farajpour, M. (2018). Phytochemical components, total phenol and mineral contents and antioxidant activity of six major medicinal plants from Rayen, Iran. Natural Product Research, 32(5), 564-567. https://doi.org/10.1080/14786419.2017.1315579 google scholar
  • Brahmi, N., Scognamiglio, M., Pacifico, S., Mekhoukhe, A., Madani, K., Fiorentino, A., & Monaco, P. (2015). H-1 NMR based metabolic profiling of eleven Algerian aromatic plants and evalu-ation of their antioxidant and cytotoxic properties. Food Research International, 76(3), 334-341. https://doi.org/10.1016/j.foodres. 2015.07.005 google scholar
  • Cavallaro, V., Baier, C.J., Murray, M.G., Estevez-Braun, A., & Mur-ray, A.P. (2018). Neuroprotective effects of Flaveria bidentis and Lippia salsa extracts on SH-SY5Y cells. South African Journal of Botany, 119, 318-324. https://doi.org/10.1016/j.sajb.2018.10.006 google scholar
  • Celep, F, Dirmenci T (2017). Systematic and biogeographic overview of Lamiaceae in Turkey. Natural Volatiles and Essential Oil Re-search, 4(4), 14-27. google scholar
  • Chang, C.C., Yang, M.H., Wen, H.M., & Chern, J.C. (2002). Estima-tion of total flavonoid content in propolis by two complementary colorimetric methods. Journal of Food and Drug Analyses, 10(3), 178-182. https://doi.org/10.38212/2224-6614.2748 google scholar
  • Dastmalchi, K., Dorman, H.J.D., Viorela, H., & Hiltunen, R, (2007). Plants as potential source for drug development against Alzheimer’s disease. International Journal of Biomedicine and Pharmaceututical Sciences, 1(2), 83-104. google scholar
  • Deshmukh UB, Reddy ES, Shende MB (2022). Marrubium asuma-niae, a new name proposed for a Marrubium species (Lami-aceae) in the flora Turkey. Phytotaxa, 543 (2), 161-162. https: //doi.org/10.11646/phytotaxa.543.2.6 google scholar
  • Dibas, J.I., Yaghi, B.M., Mansi, I.A., Mhaidat, N.M., & Al-Abrounie, K.F.S. (2017). Screening for cytotoxic and antioxidant activity of selected wild plants at Shafa Badran, Amman, Jordan. Research Journal of Pharmaceutical, Biological and Chemical Science, 8(2), 489-497. google scholar
  • El Haouari, M., & Rosado, J.Â. (2019). Phytochemical, antidiabetic and cardiovascular properties of Urtica dioica L. (Urticaceae): A Review. Mini Reviews in. Medicinal Chemistry, 19(1), 63-71. https://doi.org/10.2174/1389557518666180924121528 google scholar
  • Fukumoto, L.R., & Mazza, G. (2000). Assessing antioxidant and prooxidant activities of phenolic compounds. Journal of Agricul-tural Food Chemistry, 48(8), 3597-3604. https://doi.org/10.1021/ jf000220w google scholar
  • Gavaric, A., Vladic, J., Vujetic, J., Radnovic, D., Volaric, A., Zivkovic, J., Savikin, K., & Vidovic, S. (2022). The applica-tion of ultrasonic waves and microwaves to improve antihyper-glycaemic and antimicrobial activities of Marrubium vulgare ex-tracts. Antibiotics-Basels, 11(11), 1475. https://doi.org/10.3390/ antibiotics11111475 google scholar
  • Ginsburg, I., Kohen, R., & Koren, E. (2011). Microbial and host cells acquire enhanced oxidant-scavenging abilities by binding polyphenols. Archives of Biochemistry and Biophys, 506, 12-23. https://doi.org/10.1016/j.abb.2010.11.009 google scholar
  • Hassan, I.M., Ibrahim,W.N.W., Yusuf, F.M., Ahmad, S.A., & Ah-mad S. (2021). Neuroprotective and antioxidant effect of Cur-cuma longa (Rhizome) methanolic extract on SH-SY5Y cells and Javanese medaka. Pakistan Journal of Pharmaceutical Sciences, 34(1), 47-56. google scholar
  • Jordan, M.J., Martinez, R.M., Martinez, C., Monino, I., & So-tomayor, J.A. (2009). Polyphenolic extract and essential oil qual-ity of Thymus zygis ssp. gracilis shrubs cultivated under differ-ent watering levels. Industrial Crops and Products, 29, 145-153. http://dx.doi.org/10.1016/j.indcrop.2008.04.021 google scholar
  • Kunter, I., Tarabishi, M.T., Zabib, N., Ercetin, T., Ilktaç, M., Goger, F., Kosar, M. (2023). New data for endemic Phlomis cypria post from North Cyprus: Biological activities and LC MS/MS analysis. Indian Journal of Pharmaceutical Education Research, 57(2),511-518. http://dx.doi.org/10.5530/ijper.57.2.62 google scholar
  • Lodhi, S., Vadnere, G.P., Sharma, V.K., Usman, R. (2017). Marru-bium vulgare L.: A review on phytochemical and pharmacolog-ical aspects. Journal of Intercultural Ethnopharmacology, 6(4), 429-452. http://dx.doi.org/10.5455/jice.20170713060840 google scholar
  • Loubidi, M., Jouha, J., Tber, Z., Suzenet, F., Akssira, M., Erdogan, M.A., ... Guillaumet, G. (2018). Efficient synthesis and first re-gioselective C-6 direct arylation of imidazo [2,1-c] [1,2,4] tri-azine scaffold and their evaluation in H2O2 -induced oxidative stress. European Journal of Medicinal Chemistry, 145, 113-123. https://doi.org/10.1016/j.ejmech.2017.12.081 google scholar
  • Ozturk, N. (2015). Phenolic composition and antioxidant activity of the different extracts from Thymus longicaulis C Presl. subsp. longicaulis var. longicaulis and T. longicaulis C. Presl. subsp. longicaulis var. subisophyllus growing in Turkey. Pakistan Journal of Pharmaceutical Sciences, 28(2), 465-472. google scholar
  • Poznyak, A.V., Grechko, A.V., Orekhova, V.A., Chegodaev, Y.S., Wu, W.K., & Orekhov, N.A. (2020). Oxidative stress and antioxidants in atherosclerosis development and treatment. Biology (Basel), 9(3), 60. https://doi.org/10.3390/biology9030060 google scholar
  • Re, R„ Pellegrini, N., Proteggente, A., Pannala, A., Yang, M., & Rice-Evans, C. (1999). Antioxidant activity applying an improved ABTS radical cation decolorization assay. Free Radical Biol-ogy & Medicine, 26(9-10), 1231-1237. https://doi.org/10.1016/ s0891-5849(98)00315-3 google scholar
  • Sarıkurkcu, C., & Zeljkovic, S.C. (2020). Chemical composition and antioxidant activity of Phlomis leucophracta, an endemic species from Turkey. Natural Product Research, 34(6), 851-854. https: //doi.org/10.1080/14786419.2018.1502767 google scholar
  • Selvi, S., Polat, R., Çakılcıoğlu, U., & Celep, F. (2022). An eth-nobotanical review on medicinal plants of the Lamiaceae fam-ily in Turkey, Tukish Journal of Botany, 46(4), 283-332. https: //doi.org/10.55730/1300-008X.2712 google scholar
  • Silva, J., Alves, C., Freitas, R., Martins, A., Pinteus, S., Ribeiro, J., Gaspar, H., Alfonso, A., & Pedrosa, R. (2019). Antioxidant and neuroprotective potential of the brown seaweed bifurcaria in an in vitro parkinson’s disease model. Marine Drugs, 17(2), 85. https: //doi.org/10.3390/md17020085 google scholar
  • Tarhan, L., Urek, R.O., Oner, A., & Nakipoglu, B. (2022). Evalua-tion of phenolic profiles, antioxidant activities, and cytotoxic and apoptotic potentials of Phlomis angustissima and Phlomis fruti-cosa, medicinal plants from Turkey. European Journal of Integra-tive Medicine, 55, 102188. https://doi.org/10.1016/j.eujim.2022. 102188 google scholar
  • Tohidi, B., Rahimmalek, B., & Arzani, A. (2017). Essential oil com-position, total phenolic, flavonoid contents, and antioxidant ac-tivity of Thymus species collected from different regions of Iran. Food Chemistry, 220, 153-161. https://doi.org/10.1016/j. foodchem.2016.09.203 google scholar
  • Uttara, B., Singh, A.V., Zamboni, P., & Mahajan, R.T. (2009). Ox-idative stress andneurodegenerative diseases: A review of up-stream and downstream antioxidant therapeutic options. Cur-rent Neuropharmacology,7(1), 65-74. https://doi.org/10.2174/ 157015909787602823 google scholar
  • Uysal, A., Gunes, E., Sarikurkcu, C., Celik, H., Durak, Y., & Uren, M.C. (2016). New prospective materials for chemoprevention: three Phlomis. British Journal of Pharmaceutical Research, 10(3), 1-13. google scholar
  • Ververis, A., Savvidou, G., Ioannou, K., Nicolaou, P., Christodolou, K., & Plioukas, M. (2020). Greek Sage exhibits neuroprotective activity against amyloid beta-induced toxicity. Evidence-Based Complementary and Alternative Medicine, 2975284. https://doi.org/10.1155/2020/2975284 google scholar
  • Woisky, R.G., & Salatino, A. (1998). Analysis of propolis:some pa-rameters and prepcedures for chemical quality control. Journal of Agricultural Research, 37, 99-105. google scholar
  • Yigitkan, S., Akdeniz, M., Yener, I., Seker, Z., Yilmaz, M.A., Firat, M., ... Erdogan Orhan, I. (2022). Comprehensive study of chemical composition and biological activity of Thymus pubescens Boiss. et Kotschy ex & Celak. South African Journal of Botany, 149, 425-434. https://doi.org/10.1016/j.sajb.2022.06.037 google scholar
  • Zvezdina, E.V., Dayronas Z.V., Bochkareva I.I., Zilfikarov I.N., Babaeva E.Y., Ferubko E.V., ... Ibragimov T.A. (2020). Mem-bers of the family Lamiaceae Lindl. as sources of medic-inal plant raw materials to obtain neurotropic drugs. Phar-macy & Pharmacology, 8(1), 4-28. https://doi.org/10.19163/ 2307-9266-2020-8-1-4-28 google scholar
Year 2024, Volume: 54 Issue: 3, 403 - 408, 30.12.2024
https://doi.org/10.26650/IstanbulJPharm.2024.1099972

Abstract

References

  • Abdelhalim, A., & Hanrahan, J. (2021). Biologically active com-pounds from Lamiaceae family: Central nervous system ef-fects. Natural Products Chemistry, 68, 255-315. https://doi.org/ 10.1016/B978-0-12-819485-0.00017-7 google scholar
  • ACimovic, M., Jeremic, K., Salaj,N., Gavaric,N., Kiprovski,B., Sikora, V., & Zeremski, T. (2020). Marrubium vulgare L.: A phyto-chemical and pharmacological overview, Molecules, 25, 2898. https://doi.org/10.3390/molecules25122898 google scholar
  • Afonso, A.F., Pereira, O.R., Neto, R.T., Silva, A.M.S., & Cardoso, S.M. (2017). Health-promoting effects of Thymus herba-barona, Thymus pseudolanuginosus, and Thymus caespititius decoctions. International Journal of Molecular Science, 18(9), 1879. https: //doi.org/10.3390/ijms18091879 google scholar
  • Akbulut, T.D., Kose, F.A., Demirci, B., & Baykan, S. (2023). Chem-ical profile and cytotoxicity evaluation of aerial parts of Mar-rubium vulgare L. from different locations in Turkey. Chemistry & Biodiversity, 20, e20220118 https://dx.doi.org/10.1002/cbdv. 202201188 google scholar
  • Amri, B., Martino, E., Vitulo, F., Corana, F., Ben-Kaab, L.B., Rui, M., ... Collina, S. (2017). Marrubium vulgare L. leave ex-tract: phytochemical composition, antioxidant and wound heal-ing properties. Molecules, 22(11), 1-18. https://doi.org/10.3390/ molecules22111851 google scholar
  • Aybey, A. (2020). Antibacterial and antibiofilm properties of Phlomis and Stachys species. Bangladesh Journal of Botany, 49(2), 257263. https://doi.org/10.3329/bjb.v49i2.49299 google scholar
  • Boroomand, N., Sadat-Hosseini, M., Moghbeli, M., & Farajpour, M. (2018). Phytochemical components, total phenol and mineral contents and antioxidant activity of six major medicinal plants from Rayen, Iran. Natural Product Research, 32(5), 564-567. https://doi.org/10.1080/14786419.2017.1315579 google scholar
  • Brahmi, N., Scognamiglio, M., Pacifico, S., Mekhoukhe, A., Madani, K., Fiorentino, A., & Monaco, P. (2015). H-1 NMR based metabolic profiling of eleven Algerian aromatic plants and evalu-ation of their antioxidant and cytotoxic properties. Food Research International, 76(3), 334-341. https://doi.org/10.1016/j.foodres. 2015.07.005 google scholar
  • Cavallaro, V., Baier, C.J., Murray, M.G., Estevez-Braun, A., & Mur-ray, A.P. (2018). Neuroprotective effects of Flaveria bidentis and Lippia salsa extracts on SH-SY5Y cells. South African Journal of Botany, 119, 318-324. https://doi.org/10.1016/j.sajb.2018.10.006 google scholar
  • Celep, F, Dirmenci T (2017). Systematic and biogeographic overview of Lamiaceae in Turkey. Natural Volatiles and Essential Oil Re-search, 4(4), 14-27. google scholar
  • Chang, C.C., Yang, M.H., Wen, H.M., & Chern, J.C. (2002). Estima-tion of total flavonoid content in propolis by two complementary colorimetric methods. Journal of Food and Drug Analyses, 10(3), 178-182. https://doi.org/10.38212/2224-6614.2748 google scholar
  • Dastmalchi, K., Dorman, H.J.D., Viorela, H., & Hiltunen, R, (2007). Plants as potential source for drug development against Alzheimer’s disease. International Journal of Biomedicine and Pharmaceututical Sciences, 1(2), 83-104. google scholar
  • Deshmukh UB, Reddy ES, Shende MB (2022). Marrubium asuma-niae, a new name proposed for a Marrubium species (Lami-aceae) in the flora Turkey. Phytotaxa, 543 (2), 161-162. https: //doi.org/10.11646/phytotaxa.543.2.6 google scholar
  • Dibas, J.I., Yaghi, B.M., Mansi, I.A., Mhaidat, N.M., & Al-Abrounie, K.F.S. (2017). Screening for cytotoxic and antioxidant activity of selected wild plants at Shafa Badran, Amman, Jordan. Research Journal of Pharmaceutical, Biological and Chemical Science, 8(2), 489-497. google scholar
  • El Haouari, M., & Rosado, J.Â. (2019). Phytochemical, antidiabetic and cardiovascular properties of Urtica dioica L. (Urticaceae): A Review. Mini Reviews in. Medicinal Chemistry, 19(1), 63-71. https://doi.org/10.2174/1389557518666180924121528 google scholar
  • Fukumoto, L.R., & Mazza, G. (2000). Assessing antioxidant and prooxidant activities of phenolic compounds. Journal of Agricul-tural Food Chemistry, 48(8), 3597-3604. https://doi.org/10.1021/ jf000220w google scholar
  • Gavaric, A., Vladic, J., Vujetic, J., Radnovic, D., Volaric, A., Zivkovic, J., Savikin, K., & Vidovic, S. (2022). The applica-tion of ultrasonic waves and microwaves to improve antihyper-glycaemic and antimicrobial activities of Marrubium vulgare ex-tracts. Antibiotics-Basels, 11(11), 1475. https://doi.org/10.3390/ antibiotics11111475 google scholar
  • Ginsburg, I., Kohen, R., & Koren, E. (2011). Microbial and host cells acquire enhanced oxidant-scavenging abilities by binding polyphenols. Archives of Biochemistry and Biophys, 506, 12-23. https://doi.org/10.1016/j.abb.2010.11.009 google scholar
  • Hassan, I.M., Ibrahim,W.N.W., Yusuf, F.M., Ahmad, S.A., & Ah-mad S. (2021). Neuroprotective and antioxidant effect of Cur-cuma longa (Rhizome) methanolic extract on SH-SY5Y cells and Javanese medaka. Pakistan Journal of Pharmaceutical Sciences, 34(1), 47-56. google scholar
  • Jordan, M.J., Martinez, R.M., Martinez, C., Monino, I., & So-tomayor, J.A. (2009). Polyphenolic extract and essential oil qual-ity of Thymus zygis ssp. gracilis shrubs cultivated under differ-ent watering levels. Industrial Crops and Products, 29, 145-153. http://dx.doi.org/10.1016/j.indcrop.2008.04.021 google scholar
  • Kunter, I., Tarabishi, M.T., Zabib, N., Ercetin, T., Ilktaç, M., Goger, F., Kosar, M. (2023). New data for endemic Phlomis cypria post from North Cyprus: Biological activities and LC MS/MS analysis. Indian Journal of Pharmaceutical Education Research, 57(2),511-518. http://dx.doi.org/10.5530/ijper.57.2.62 google scholar
  • Lodhi, S., Vadnere, G.P., Sharma, V.K., Usman, R. (2017). Marru-bium vulgare L.: A review on phytochemical and pharmacolog-ical aspects. Journal of Intercultural Ethnopharmacology, 6(4), 429-452. http://dx.doi.org/10.5455/jice.20170713060840 google scholar
  • Loubidi, M., Jouha, J., Tber, Z., Suzenet, F., Akssira, M., Erdogan, M.A., ... Guillaumet, G. (2018). Efficient synthesis and first re-gioselective C-6 direct arylation of imidazo [2,1-c] [1,2,4] tri-azine scaffold and their evaluation in H2O2 -induced oxidative stress. European Journal of Medicinal Chemistry, 145, 113-123. https://doi.org/10.1016/j.ejmech.2017.12.081 google scholar
  • Ozturk, N. (2015). Phenolic composition and antioxidant activity of the different extracts from Thymus longicaulis C Presl. subsp. longicaulis var. longicaulis and T. longicaulis C. Presl. subsp. longicaulis var. subisophyllus growing in Turkey. Pakistan Journal of Pharmaceutical Sciences, 28(2), 465-472. google scholar
  • Poznyak, A.V., Grechko, A.V., Orekhova, V.A., Chegodaev, Y.S., Wu, W.K., & Orekhov, N.A. (2020). Oxidative stress and antioxidants in atherosclerosis development and treatment. Biology (Basel), 9(3), 60. https://doi.org/10.3390/biology9030060 google scholar
  • Re, R„ Pellegrini, N., Proteggente, A., Pannala, A., Yang, M., & Rice-Evans, C. (1999). Antioxidant activity applying an improved ABTS radical cation decolorization assay. Free Radical Biol-ogy & Medicine, 26(9-10), 1231-1237. https://doi.org/10.1016/ s0891-5849(98)00315-3 google scholar
  • Sarıkurkcu, C., & Zeljkovic, S.C. (2020). Chemical composition and antioxidant activity of Phlomis leucophracta, an endemic species from Turkey. Natural Product Research, 34(6), 851-854. https: //doi.org/10.1080/14786419.2018.1502767 google scholar
  • Selvi, S., Polat, R., Çakılcıoğlu, U., & Celep, F. (2022). An eth-nobotanical review on medicinal plants of the Lamiaceae fam-ily in Turkey, Tukish Journal of Botany, 46(4), 283-332. https: //doi.org/10.55730/1300-008X.2712 google scholar
  • Silva, J., Alves, C., Freitas, R., Martins, A., Pinteus, S., Ribeiro, J., Gaspar, H., Alfonso, A., & Pedrosa, R. (2019). Antioxidant and neuroprotective potential of the brown seaweed bifurcaria in an in vitro parkinson’s disease model. Marine Drugs, 17(2), 85. https: //doi.org/10.3390/md17020085 google scholar
  • Tarhan, L., Urek, R.O., Oner, A., & Nakipoglu, B. (2022). Evalua-tion of phenolic profiles, antioxidant activities, and cytotoxic and apoptotic potentials of Phlomis angustissima and Phlomis fruti-cosa, medicinal plants from Turkey. European Journal of Integra-tive Medicine, 55, 102188. https://doi.org/10.1016/j.eujim.2022. 102188 google scholar
  • Tohidi, B., Rahimmalek, B., & Arzani, A. (2017). Essential oil com-position, total phenolic, flavonoid contents, and antioxidant ac-tivity of Thymus species collected from different regions of Iran. Food Chemistry, 220, 153-161. https://doi.org/10.1016/j. foodchem.2016.09.203 google scholar
  • Uttara, B., Singh, A.V., Zamboni, P., & Mahajan, R.T. (2009). Ox-idative stress andneurodegenerative diseases: A review of up-stream and downstream antioxidant therapeutic options. Cur-rent Neuropharmacology,7(1), 65-74. https://doi.org/10.2174/ 157015909787602823 google scholar
  • Uysal, A., Gunes, E., Sarikurkcu, C., Celik, H., Durak, Y., & Uren, M.C. (2016). New prospective materials for chemoprevention: three Phlomis. British Journal of Pharmaceutical Research, 10(3), 1-13. google scholar
  • Ververis, A., Savvidou, G., Ioannou, K., Nicolaou, P., Christodolou, K., & Plioukas, M. (2020). Greek Sage exhibits neuroprotective activity against amyloid beta-induced toxicity. Evidence-Based Complementary and Alternative Medicine, 2975284. https://doi.org/10.1155/2020/2975284 google scholar
  • Woisky, R.G., & Salatino, A. (1998). Analysis of propolis:some pa-rameters and prepcedures for chemical quality control. Journal of Agricultural Research, 37, 99-105. google scholar
  • Yigitkan, S., Akdeniz, M., Yener, I., Seker, Z., Yilmaz, M.A., Firat, M., ... Erdogan Orhan, I. (2022). Comprehensive study of chemical composition and biological activity of Thymus pubescens Boiss. et Kotschy ex & Celak. South African Journal of Botany, 149, 425-434. https://doi.org/10.1016/j.sajb.2022.06.037 google scholar
  • Zvezdina, E.V., Dayronas Z.V., Bochkareva I.I., Zilfikarov I.N., Babaeva E.Y., Ferubko E.V., ... Ibragimov T.A. (2020). Mem-bers of the family Lamiaceae Lindl. as sources of medic-inal plant raw materials to obtain neurotropic drugs. Phar-macy & Pharmacology, 8(1), 4-28. https://doi.org/10.19163/ 2307-9266-2020-8-1-4-28 google scholar
There are 37 citations in total.

Details

Primary Language English
Subjects Pharmacology and Pharmaceutical Sciences (Other)
Journal Section Original Article
Authors

Tuğçe Fafal 0000-0002-7445-5855

Hüsniye Kayalar 0000-0001-7882-0517

Derviş Birim 0000-0002-5094-9949

Güliz Armağan 0000-0001-6466-2263

Burcu Sümer Tüzün 0000-0002-9194-3447

Pelin Taştan 0000-0003-0913-5369

Bijen Kıvçak 0000-0001-7645-1930

Publication Date December 30, 2024
Submission Date April 7, 2022
Published in Issue Year 2024 Volume: 54 Issue: 3

Cite

APA Fafal, T., Kayalar, H., Birim, D., Armağan, G., et al. (2024). Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family. İstanbul Journal of Pharmacy, 54(3), 403-408. https://doi.org/10.26650/IstanbulJPharm.2024.1099972
AMA Fafal T, Kayalar H, Birim D, Armağan G, Sümer Tüzün B, Taştan P, Kıvçak B. Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family. iujp. December 2024;54(3):403-408. doi:10.26650/IstanbulJPharm.2024.1099972
Chicago Fafal, Tuğçe, Hüsniye Kayalar, Derviş Birim, Güliz Armağan, Burcu Sümer Tüzün, Pelin Taştan, and Bijen Kıvçak. “Assessment of Antioxidant and Neuroprotective Activity of Plants from the Lamiaceae Family”. İstanbul Journal of Pharmacy 54, no. 3 (December 2024): 403-8. https://doi.org/10.26650/IstanbulJPharm.2024.1099972.
EndNote Fafal T, Kayalar H, Birim D, Armağan G, Sümer Tüzün B, Taştan P, Kıvçak B (December 1, 2024) Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family. İstanbul Journal of Pharmacy 54 3 403–408.
IEEE T. Fafal, H. Kayalar, D. Birim, G. Armağan, B. Sümer Tüzün, P. Taştan, and B. Kıvçak, “Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family”, iujp, vol. 54, no. 3, pp. 403–408, 2024, doi: 10.26650/IstanbulJPharm.2024.1099972.
ISNAD Fafal, Tuğçe et al. “Assessment of Antioxidant and Neuroprotective Activity of Plants from the Lamiaceae Family”. İstanbul Journal of Pharmacy 54/3 (December 2024), 403-408. https://doi.org/10.26650/IstanbulJPharm.2024.1099972.
JAMA Fafal T, Kayalar H, Birim D, Armağan G, Sümer Tüzün B, Taştan P, Kıvçak B. Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family. iujp. 2024;54:403–408.
MLA Fafal, Tuğçe et al. “Assessment of Antioxidant and Neuroprotective Activity of Plants from the Lamiaceae Family”. İstanbul Journal of Pharmacy, vol. 54, no. 3, 2024, pp. 403-8, doi:10.26650/IstanbulJPharm.2024.1099972.
Vancouver Fafal T, Kayalar H, Birim D, Armağan G, Sümer Tüzün B, Taştan P, Kıvçak B. Assessment of antioxidant and neuroprotective activity of plants from the Lamiaceae family. iujp. 2024;54(3):403-8.