Araştırma Makalesi
BibTex RIS Kaynak Göster

Silene compacta'nın Terapötik Potansiyelinin Ortaya Çıkarılması: Çözücü Özütleri Arasında Antioksidan ve Enzim İnhibitör Aktivitelerin Karşılaştırmalı Bir Çalışması

Yıl 2025, Cilt: 51 Sayı: 1, 7 - 17, 01.04.2025
https://doi.org/10.35238/sufefd.1544595

Öz

Son yıllarda, tıbbi bitkilerin farmakolojik araştırmalarına, özellikle fizyolojik ve farmakolojik etkilerine artan bir ilgi gösterilmiştir. Bu çalışma, Silene compacta bitkisinin su, metanol ve etil asetat özütlerinin kimyasal bileşimini, antioksidan ve enzim inhibitör aktivitelerini incelemektedir. Metanol özütü, toplam fenolik (30.88 mg GAEs/g) ve flavonoit (50.19 mg REs/g) içerikleri açısından en yüksek değerlere sahip olup, DPPH• (45.82 mg TEs/g) ve ABTS•+ (57.03 mg TEs/g) testlerinde, ayrıca CUPRAC ve FRAP testlerinde de üstün antioksidan aktiviteler göstermiştir. Buna karşın, etil asetat özütü, fenolik içerik açısından daha düşük olmasına rağmen, fosfomolibdenum testinde (275.10 mg TEs/g) dikkat çekici bir aktivite sergilemiş ve özellikle α-glukozidaz (1470.25 mg ACEs/g) ve AChE (3.11 mg GALAEs/g) üzerinde güçlü enzim inhibitör aktiviteleri göstermiştir. Su özütü, orta düzeyde fenolik içerik ile farklı testlerde dengeli antioksidan özellikler sergilemiş, ancak enzim inhibitör etkileri daha zayıf olmuştur. Korelasyon analizi, toplam fenolik içerik ile çoğu antioksidan test arasında güçlü pozitif ilişkiler olduğunu ortaya koymuş, bu da fenolik bileşiklerin gözlemlenen biyolojik aktiviteler üzerindeki önemini vurgulamaktadır. Bulgular, metanol özütünün güçlü antioksidan özellikler gerektiren uygulamalar için özellikle umut verici olduğunu, etil asetat özütünün ise enzim inhibisyonu ile ilgili uygulamalar için daha uygun olabileceğini önermektedir. Gelecek araştırmalar, S. compacta'nın terapötik potansiyelini tam olarak anlamak için in vivo çalışmaları ve farklı fitokimyasallar arasındaki sinerjik etkileri keşfetmeyi dikkate almalıdır.

Proje Numarası

23.GENEL.001

Kaynakça

  • Almasi, H., Zarei, M.A., (2021), α-glucosidase inhibition activity and antioxidant properties of aerial parts methanol extract from Silene ampullata Bioss and Campanula involucrate Auch. ex DC, Journal of Plant Research (Iranian Journal of Biology), 34, 1-20.
  • Anand, P., Singh, B., (2012), Synthesis and evaluation of novel 4-[(3H, 3aH, 6aH)-3-phenyl)-4, 6-dioxo-2-phenyldihydro-2H-pyrrolo [3, 4-d] isoxazol-5 (3H, 6H, 6aH)-yl] benzoic acid derivatives as potent acetylcholinesterase inhibitors and anti-amnestic agents, Bioorganic & Medicinal Chemistry, 20, 521-530.
  • Anand, P., Singh, B., (2013), A review on cholinesterase inhibitors for Alzheimer’s disease, Archives of Pharmacal Research, 36, 375-399.
  • Apak, R., Güçlü, K., Özyürek, M., Esin Karademir, S., Erçaǧ, E., (2006), The cupric ion reducing antioxidant capacity and polyphenolic content of some herbal teas, International Journal of Food Sciences and Nutrition, 57, 292-304.
  • Aygun, R.B., Zengin, G., Yıldıztugay, E., Jugreet, S., Yılmaz, M.A., Mahomoodally, F.M., (2022), Chemical characterization, anti-oxidant and anti-enzymatic properties of extracts from two Silene species: A focus on different plant parts and extraction methods, Process Biochemistry, 116, 206-213.
  • Bachurin, S.O., (2003), Medicinal chemistry approaches for the treatment and prevention of Alzheimer's disease, Medicinal Research Reviews, 23, 48-88.
  • Bajpai, V.K., Shukla, S., Kang, S.C., (2008), Chemical composition and antifungal activity of essential oil and various extract of Silene armeria L, Bioresource Technology, 99, 8903-8908.
  • Baytop, T., (1984), Therapy with plants in Turkey, İstanbul University Publ., İstanbul, 226-227.
  • Boğa, M., (2017), Chemical constituents, cytotoxic, antioxidant and cholinesterases inhibitory activities of Silene compacta (Fischer) extracts, Marmara Pharmaceutical Journal, 21, 445-454.
  • Castro, A., Martinez, A., (2001), Peripheral and dual binding site acetylcholinesterase inhibitors: implications in treatment of Alzheimer's disease, Mini Reviews in Medicinal Chemistry, 1, 267-272.
  • Chen, X.-X., Shi, Y., Chai, W.-M., Feng, H.-L., Zhuang, J.-X., Chen, Q.-X., (2014), Condensed tannins from Ficus virens as tyrosinase inhibitors: structure, inhibitory activity and molecular mechanism, PLoS One, 9, e91809.
  • Cittan, M., Çelik, A., (2018), Development and validation of an analytical methodology based on Liquid Chromatography–Electrospray Tandem Mass Spectrometry for the simultaneous determination of phenolic compounds in olive leaf extract, Journal of Chromatographic Science, 56, 336-343.
  • Colombres, M., Sagal, J.P., Inestrosa, N.C., (2004), An overview of the current and novel drugs for Alzheimer's disease with particular reference to anti-cholinesterase compounds, Current Pharmaceutical Design, 10, 3121-3130.
  • D’Mello, S.A., Finlay, G.J., Baguley, B.C., Askarian-Amiri, M.E., (2016), Signaling pathways in melanogenesis, International Journal of Molecular Sciences, 17, 1144.
  • Dasgupta, N., De, B., (2007), Antioxidant activity of some leafy vegetables of India: A comparative study, Food Chemistry, 101, 471-474.
  • de Sousa, E., Zanatta, L., Seifriz, I., Creczynski-Pasa, T.B., Pizzolatti, M.G., Szpoganicz, B., Silva, F.R.M.B., (2004), Hypoglycemic Effect and Antioxidant Potential of Kaempferol-3, 7-O-(α)-dirhamnoside from Bauhinia forficata Leaves, Journal of Natural Products, 67, 829-832.
  • Farnsworth, N.R., (1984), The role of medicinal plants in drug development, Natural Products and Drug Development, 17, 30-34.
  • Fujimoto, N., Onodera, H., Mitsumori, K., Tamura, T., Maruyama, S., Ito, A., (1999), Changes in thyroid function during development of thyroid hyperplasia induced by kojic acid in F344 rats, Carcinogenesis, 20, 1567-1572.
  • Gaidi, G., Miyamoto, T., Laurens, V., Lacaille-Dubois, M.-A., (2002), New Acylated Triterpene Saponins from Silene fortunei that Modulate Lymphocyte Proliferation, Journal of Natural Products, 65, 1568-1572.
  • Gąsiorowski, K., Brokos, B., Gleńsk, M., Schöpke, T., (1999), Immunomodulatory activity of the saponin-rich fraction from roots of Silene vulgaris Garcke: initial study, Pharmazie, 54, 864-866.
  • Glensk, M., Wray, V., Nimtz, M., Schöpke, T., (1999), Silenosides A− C, triterpenoid saponins from Silene vulgaris, Journal of Natural Products, 62, 717-721.
  • Hanamura, T., Hagiwara, T., Kawagishi, H., (2005), Structural and functional characterization of polyphenols isolated from acerola (Malpighia emarginata DC.) fruit, Bioscience, Biotechnology, and Biochemistry, 69, 280-286.
  • Hirshman, M.F., Horton, E.S., (1990), Glyburide increases insulin sensitivity and responsiveness in peripheral tissues of the rat as determined by the glucose clamp technique, Endocrinology, 126, 2407-2412.
  • Joompang, A., Jangpromma, N., Choowongkomon, K., Payoungkiattikun, W., Tankrathok, A., Viyoch, J., Luangpraditkun, K., Klaynongsruang, S., (2020), Evaluation of tyrosinase inhibitory activity and mechanism of Leucrocin I and its modified peptides, Journal of Bioscience and Bioengineering, 130, 239-246.
  • Kocak, M.S., Sarikurkcu, C., Cengiz, M., Kocak, S., Uren, M.C., Tepe, B., (2016), Salvia cadmica: Phenolic composition and biological activity, Industrial Crops and Products, 85, 204-212.
  • Kucukboyaci, N., Ozcelik, B., Adiguzel, N., Goren, A.C., (2010), Fatty-acid compositions of Silene vulgaris and S. cserei subsp. aeoniopsis seeds and their antimicrobial activities, Chemistry of Natural Compounds, 46, 88-91.
  • Ladner, C.J., Lee, J.M., (1998), Pharmacological drug treatment of Alzheimer disease: the cholinergi hypothesis revisited, Journal of Neuropathology and Experimental Neurology, 57, 719.
  • Laghetti, G., Perrino, P., (1994), Utilization of Silene vulgaris (Moench) Garcke in Italy, Economic Botany, 48, 337-339
  • Makhmudova, M.M., Bacher, M., Zengin, G., Rosenau, T., Youssef, F.S., Almasri, D.M., Elhady, S.S., Mamadalieva, N.Z., (2022), Silviridoside: A New Triterpene Glycoside from Silene viridiflora with Promising Antioxidant and Enzyme Inhibitory Potential, Molecules, 27, 8781.
  • Mamadalieva, N.Z., Ul’chenko, N., Yuldasheva, N., Egamberdieva, D., Zhanibekov, A., Dzhukharova, M.K., Glushenkova, A., (2010), Fatty-acid composition and antibacterial activity of CHCl3 extracts of three plants of the genus Silene, Chemistry of Natural Compounds, 46, 95-96.
  • Mukherjee, P.K., Wahile, A., (2006), Integrated approaches towards drug development from Ayurveda and other Indian system of medicines, Journal of Ethnopharmacology, 103, 25-35.
  • Nie, H., Liu, L., Yang, H., Guo, H., Liu, X., Tan, Y., Wang, W., Quan, J., Zhu, L., (2017), A novel heptapeptide with tyrosinase inhibitory activity identified from a phage display library, Applied Biochemistry and Biotechnology, 181, 219-232.
  • Ochiai, A., Tanaka, S., Imai, Y., Yoshida, H., Kanaoka, T., Tanaka, T., Taniguchi, M., (2016), New tyrosinase inhibitory decapeptide: Molecular insights into the role of tyrosine residues, Journal of Bioscience and Bioengineering, 121, 607-613.
  • Ouzounidou, G., (1994), Root growth and pigment composition in relationship to element uptake in Silene compacta plants treated with copper, Journal of Plant Nutrition, 17, 933-943.
  • Padmaja, M., Sravanthi, M., Hemalatha, K.P.J., (2011), Evaluation of antioxidant activity of two Indian medicinal plants, Journal of Phytology, 3, 86-91
  • Rai, K.N., Kaushalendra, K., Singh, J., (1997), Chemical Constituent from the Pods of Cassia glauca, Lam, Asian Journal of Chemistry, 9, 558-560.
  • Rawat, J.M., Pandey, S., Rawat, B., Rai, N., Preeti, P., Thakur, A., Butola, J.S., Bachheti, R.K., (2023), Traditional uses, active ingredients, and biological activities of Paris polyphylla Smith: a comprehensive review of an important Himalayan medicinal plant, Journal of Chemistry, 2023, 7947224.
  • Rice-evans, C.A., Miller, N.J., Bolwell, P.G., Bramley, P.M., Pridham, J.B., (1995), The relative antioxidant activities of plant-derived polyphenolic flavonoids, Free Radical Research, 22, 375-383.
  • Sarikurkcu, C., Andrade, J.C., Ozer, M.S., de Lima Silva, J.M.F., Ceylan, O., de Sousa, E.O., Coutinho, H.D.M., (2020), LC-MS/MS profiles and interrelationships between the enzyme inhibition activity, total phenolic content and antioxidant potential of Micromeria nervosa extracts, Food Chemistry, 328, 126930.
  • Sarikurkcu, C., Kirkan, B., Ozer, M.S., Ceylan, O., Atilgan, N., Cengiz, M., Tepe, B., (2018), Chemical characterization and biological activity of Onosma gigantea extracts, Industrial Crops and Products, 115, 323-329.
  • Sarikurkcu, C., Sahinler, S.S., Ceylan, O., Tepe, B., (2020), Onosma pulchra: Phytochemical composition, antioxidant, skin-whitening and anti-diabetic activity, Industrial Crops and Products, 154, 112632.
  • Sarikurkcu, C., Sahinler, S.S., Ceylan, O., Tepe, B., (2020), Onosma pulchra: Phytochemical composition, antioxidant, skin-whitening and anti-diabetic activity, Ind. Crops Prod., 154.
  • Selkoe, D.J., (2002), Deciphering the genesis and fate of amyloid β-protein yields novel therapies for Alzheimer disease, The Journal of Clinical Investigation, 110, 1375-1381.
  • Shulman, G.I., (2000), Cellular mechanisms of insulin resistance, The Journal of Clinical Investigation, 106, 171-176.
  • Slominski, A., Tobin, D.J., Shibahara, S., Wortsman, J., (2004), Melanin pigmentation in mammalian skin and its hormonal regulation, Physiological Reviews, 84, 1155-1228.
  • Sun, T., Tanumihardjo, S.A., (2007), An integrated approach to evaluate food antioxidant capacity, Journal of Food Science, 72, R159-R165.
  • Thakur, U., Shashni, S., Thakur, N., Rana, S.K., Singh, A., (2023), A review on Paris polyphylla Smith: A vulnerable medicinal plant species of a global significance, Journal of Applied Research on Medicinal and Aromatic Plants, 33, 100447.
  • Thapa, C.B., Paudel, M.R., Bhattarai, H.D., Pant, K.K., Devkota, H.P., Adhikari, Y.P., Pant, B., (2022), Bioactive secondary metabolites in Paris polyphylla Sm. and their biological activities: A review, Heliyon, 8.
  • Thilagam, E., Parimaladevi, B., Kumarappan, C., Mandal, S.C., (2013), α-Glucosidase and α-amylase inhibitory activity of Senna surattensis, Journal of Acupuncture and Meridian Studies, 6, 24-30.
  • Tripathi, G., (2002), Indigenous knowledge and traditional practices of some Himalayan medicinal plants, Himalayan Medicinal Plants Potential and Prospects, gyanodaya Prakashan, Nainital, 151-156.
  • Ubeid, A.A., Do, S., Nye, C., Hantash, B.M., (2012), Potent low toxicity inhibition of human melanogenesis by novel indole-containing octapeptides, Biochimica et Biophysica Acta (BBA)-General Subjects, 1820, 1481-1489.
  • Yao, Y., Sang, W., Zhou, M., Ren, G., (2010), Antioxidant and α-glucosidase inhibitory activity of colored grains in China, Journal of Agricultural and Food Chemistry, 58, 770-774.
  • Yue, J., Li, W., Wang, Y., (2021), Superiority verification of deep learning in the identification of medicinal plants: Taking Paris polyphylla var. yunnanensis as an example, Frontiers in Plant Science, 12, 752863.
  • Zengin, G., Rodrigues, M.J., Abdallah, H.H., Custodio, L., Stefanucci, A., Aumeeruddy, M.Z., Mollica, A., Rengasamy, K.R., Mahomoodally, M.F., (2018), Combination of phenolic profiles, pharmacological properties and in silico studies to provide new insights on Silene salsuginea from Turkey, Computational Biology and Chemistry, 77, 178-186.
  • Zengin, G., Uren, M.C., Kocak, M.S., Gungor, H., Locatelli, M., Aktumsek, A., Sarikurkcu, C., (2017), Antioxidant and Enzyme Inhibitory Activities of Extracts from Wild Mushroom Species from Turkey, International Journal of Medicinal Mushrooms, 19, 327-336.
  • Zibareva, L., Yeriomina, V.I., Munkhjargal, N., Girault, J.P., Dinan, L., Lafont, R., (2009), The phytoecdysteroid profiles of 7 species of Silene (Caryophyllaceae), Archives of Insect Biochemistry and Physiology: Published in Collaboration with the Entomological Society of America, 72, 234-248.

Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts

Yıl 2025, Cilt: 51 Sayı: 1, 7 - 17, 01.04.2025
https://doi.org/10.35238/sufefd.1544595

Öz

There has been a growing focus on the pharmacological research of medicinal plants, particularly their physiological and pharmacological effects. This study explores the chemical composition, antioxidant, and enzyme inhibitory activities of water, methanol, and ethyl acetate extracts from Silene compacta. The methanol extract demonstrated the highest total phenolic (30.88 mg GAEs/g) and flavonoid (50.19 mg REs/g) contents, translating to superior antioxidant activities in the DPPH• (45.82 mg TEs/g) and ABTS•+ (57.03 mg TEs/g) assays, as well as in CUPRAC and FRAP assays. In contrast, the ethyl acetate extract, while lower in phenolics, exhibited remarkable activity in the phosphomolybdenum assay (275.10 mg TEs/g) and showed strong enzyme inhibitory activities, particularly against α-glucosidase (1470.25 mg ACEs/g) and AChE (3.11 mg GALAEs/g). The water extract, with intermediate phenolic content, displayed balanced antioxidant properties across different assays, but its enzyme inhibitory effects were weaker. Correlation analysis revealed strong positive relationships between total phenolic content and most antioxidant assays, underscoring the importance of phenolic compounds in contributing to the observed bioactivities. The findings suggest that methanol extracts are particularly promising for applications requiring potent antioxidant properties, while ethyl acetate extracts might be more suited for enzyme inhibition-related applications. Future research should consider in vivo studies and explore the synergistic effects among different phytochemicals to fully understand the therapeutic potential of S. compacta.

Destekleyen Kurum

Afyonkarahisar Health Sciences University Scientific Research Projects Coordination Unit

Proje Numarası

23.GENEL.001

Teşekkür

This study was supported by Afyonkarahisar Health Sciences University Scientific Research Projects Coordination Unit project number 23.GENEL.001.

Kaynakça

  • Almasi, H., Zarei, M.A., (2021), α-glucosidase inhibition activity and antioxidant properties of aerial parts methanol extract from Silene ampullata Bioss and Campanula involucrate Auch. ex DC, Journal of Plant Research (Iranian Journal of Biology), 34, 1-20.
  • Anand, P., Singh, B., (2012), Synthesis and evaluation of novel 4-[(3H, 3aH, 6aH)-3-phenyl)-4, 6-dioxo-2-phenyldihydro-2H-pyrrolo [3, 4-d] isoxazol-5 (3H, 6H, 6aH)-yl] benzoic acid derivatives as potent acetylcholinesterase inhibitors and anti-amnestic agents, Bioorganic & Medicinal Chemistry, 20, 521-530.
  • Anand, P., Singh, B., (2013), A review on cholinesterase inhibitors for Alzheimer’s disease, Archives of Pharmacal Research, 36, 375-399.
  • Apak, R., Güçlü, K., Özyürek, M., Esin Karademir, S., Erçaǧ, E., (2006), The cupric ion reducing antioxidant capacity and polyphenolic content of some herbal teas, International Journal of Food Sciences and Nutrition, 57, 292-304.
  • Aygun, R.B., Zengin, G., Yıldıztugay, E., Jugreet, S., Yılmaz, M.A., Mahomoodally, F.M., (2022), Chemical characterization, anti-oxidant and anti-enzymatic properties of extracts from two Silene species: A focus on different plant parts and extraction methods, Process Biochemistry, 116, 206-213.
  • Bachurin, S.O., (2003), Medicinal chemistry approaches for the treatment and prevention of Alzheimer's disease, Medicinal Research Reviews, 23, 48-88.
  • Bajpai, V.K., Shukla, S., Kang, S.C., (2008), Chemical composition and antifungal activity of essential oil and various extract of Silene armeria L, Bioresource Technology, 99, 8903-8908.
  • Baytop, T., (1984), Therapy with plants in Turkey, İstanbul University Publ., İstanbul, 226-227.
  • Boğa, M., (2017), Chemical constituents, cytotoxic, antioxidant and cholinesterases inhibitory activities of Silene compacta (Fischer) extracts, Marmara Pharmaceutical Journal, 21, 445-454.
  • Castro, A., Martinez, A., (2001), Peripheral and dual binding site acetylcholinesterase inhibitors: implications in treatment of Alzheimer's disease, Mini Reviews in Medicinal Chemistry, 1, 267-272.
  • Chen, X.-X., Shi, Y., Chai, W.-M., Feng, H.-L., Zhuang, J.-X., Chen, Q.-X., (2014), Condensed tannins from Ficus virens as tyrosinase inhibitors: structure, inhibitory activity and molecular mechanism, PLoS One, 9, e91809.
  • Cittan, M., Çelik, A., (2018), Development and validation of an analytical methodology based on Liquid Chromatography–Electrospray Tandem Mass Spectrometry for the simultaneous determination of phenolic compounds in olive leaf extract, Journal of Chromatographic Science, 56, 336-343.
  • Colombres, M., Sagal, J.P., Inestrosa, N.C., (2004), An overview of the current and novel drugs for Alzheimer's disease with particular reference to anti-cholinesterase compounds, Current Pharmaceutical Design, 10, 3121-3130.
  • D’Mello, S.A., Finlay, G.J., Baguley, B.C., Askarian-Amiri, M.E., (2016), Signaling pathways in melanogenesis, International Journal of Molecular Sciences, 17, 1144.
  • Dasgupta, N., De, B., (2007), Antioxidant activity of some leafy vegetables of India: A comparative study, Food Chemistry, 101, 471-474.
  • de Sousa, E., Zanatta, L., Seifriz, I., Creczynski-Pasa, T.B., Pizzolatti, M.G., Szpoganicz, B., Silva, F.R.M.B., (2004), Hypoglycemic Effect and Antioxidant Potential of Kaempferol-3, 7-O-(α)-dirhamnoside from Bauhinia forficata Leaves, Journal of Natural Products, 67, 829-832.
  • Farnsworth, N.R., (1984), The role of medicinal plants in drug development, Natural Products and Drug Development, 17, 30-34.
  • Fujimoto, N., Onodera, H., Mitsumori, K., Tamura, T., Maruyama, S., Ito, A., (1999), Changes in thyroid function during development of thyroid hyperplasia induced by kojic acid in F344 rats, Carcinogenesis, 20, 1567-1572.
  • Gaidi, G., Miyamoto, T., Laurens, V., Lacaille-Dubois, M.-A., (2002), New Acylated Triterpene Saponins from Silene fortunei that Modulate Lymphocyte Proliferation, Journal of Natural Products, 65, 1568-1572.
  • Gąsiorowski, K., Brokos, B., Gleńsk, M., Schöpke, T., (1999), Immunomodulatory activity of the saponin-rich fraction from roots of Silene vulgaris Garcke: initial study, Pharmazie, 54, 864-866.
  • Glensk, M., Wray, V., Nimtz, M., Schöpke, T., (1999), Silenosides A− C, triterpenoid saponins from Silene vulgaris, Journal of Natural Products, 62, 717-721.
  • Hanamura, T., Hagiwara, T., Kawagishi, H., (2005), Structural and functional characterization of polyphenols isolated from acerola (Malpighia emarginata DC.) fruit, Bioscience, Biotechnology, and Biochemistry, 69, 280-286.
  • Hirshman, M.F., Horton, E.S., (1990), Glyburide increases insulin sensitivity and responsiveness in peripheral tissues of the rat as determined by the glucose clamp technique, Endocrinology, 126, 2407-2412.
  • Joompang, A., Jangpromma, N., Choowongkomon, K., Payoungkiattikun, W., Tankrathok, A., Viyoch, J., Luangpraditkun, K., Klaynongsruang, S., (2020), Evaluation of tyrosinase inhibitory activity and mechanism of Leucrocin I and its modified peptides, Journal of Bioscience and Bioengineering, 130, 239-246.
  • Kocak, M.S., Sarikurkcu, C., Cengiz, M., Kocak, S., Uren, M.C., Tepe, B., (2016), Salvia cadmica: Phenolic composition and biological activity, Industrial Crops and Products, 85, 204-212.
  • Kucukboyaci, N., Ozcelik, B., Adiguzel, N., Goren, A.C., (2010), Fatty-acid compositions of Silene vulgaris and S. cserei subsp. aeoniopsis seeds and their antimicrobial activities, Chemistry of Natural Compounds, 46, 88-91.
  • Ladner, C.J., Lee, J.M., (1998), Pharmacological drug treatment of Alzheimer disease: the cholinergi hypothesis revisited, Journal of Neuropathology and Experimental Neurology, 57, 719.
  • Laghetti, G., Perrino, P., (1994), Utilization of Silene vulgaris (Moench) Garcke in Italy, Economic Botany, 48, 337-339
  • Makhmudova, M.M., Bacher, M., Zengin, G., Rosenau, T., Youssef, F.S., Almasri, D.M., Elhady, S.S., Mamadalieva, N.Z., (2022), Silviridoside: A New Triterpene Glycoside from Silene viridiflora with Promising Antioxidant and Enzyme Inhibitory Potential, Molecules, 27, 8781.
  • Mamadalieva, N.Z., Ul’chenko, N., Yuldasheva, N., Egamberdieva, D., Zhanibekov, A., Dzhukharova, M.K., Glushenkova, A., (2010), Fatty-acid composition and antibacterial activity of CHCl3 extracts of three plants of the genus Silene, Chemistry of Natural Compounds, 46, 95-96.
  • Mukherjee, P.K., Wahile, A., (2006), Integrated approaches towards drug development from Ayurveda and other Indian system of medicines, Journal of Ethnopharmacology, 103, 25-35.
  • Nie, H., Liu, L., Yang, H., Guo, H., Liu, X., Tan, Y., Wang, W., Quan, J., Zhu, L., (2017), A novel heptapeptide with tyrosinase inhibitory activity identified from a phage display library, Applied Biochemistry and Biotechnology, 181, 219-232.
  • Ochiai, A., Tanaka, S., Imai, Y., Yoshida, H., Kanaoka, T., Tanaka, T., Taniguchi, M., (2016), New tyrosinase inhibitory decapeptide: Molecular insights into the role of tyrosine residues, Journal of Bioscience and Bioengineering, 121, 607-613.
  • Ouzounidou, G., (1994), Root growth and pigment composition in relationship to element uptake in Silene compacta plants treated with copper, Journal of Plant Nutrition, 17, 933-943.
  • Padmaja, M., Sravanthi, M., Hemalatha, K.P.J., (2011), Evaluation of antioxidant activity of two Indian medicinal plants, Journal of Phytology, 3, 86-91
  • Rai, K.N., Kaushalendra, K., Singh, J., (1997), Chemical Constituent from the Pods of Cassia glauca, Lam, Asian Journal of Chemistry, 9, 558-560.
  • Rawat, J.M., Pandey, S., Rawat, B., Rai, N., Preeti, P., Thakur, A., Butola, J.S., Bachheti, R.K., (2023), Traditional uses, active ingredients, and biological activities of Paris polyphylla Smith: a comprehensive review of an important Himalayan medicinal plant, Journal of Chemistry, 2023, 7947224.
  • Rice-evans, C.A., Miller, N.J., Bolwell, P.G., Bramley, P.M., Pridham, J.B., (1995), The relative antioxidant activities of plant-derived polyphenolic flavonoids, Free Radical Research, 22, 375-383.
  • Sarikurkcu, C., Andrade, J.C., Ozer, M.S., de Lima Silva, J.M.F., Ceylan, O., de Sousa, E.O., Coutinho, H.D.M., (2020), LC-MS/MS profiles and interrelationships between the enzyme inhibition activity, total phenolic content and antioxidant potential of Micromeria nervosa extracts, Food Chemistry, 328, 126930.
  • Sarikurkcu, C., Kirkan, B., Ozer, M.S., Ceylan, O., Atilgan, N., Cengiz, M., Tepe, B., (2018), Chemical characterization and biological activity of Onosma gigantea extracts, Industrial Crops and Products, 115, 323-329.
  • Sarikurkcu, C., Sahinler, S.S., Ceylan, O., Tepe, B., (2020), Onosma pulchra: Phytochemical composition, antioxidant, skin-whitening and anti-diabetic activity, Industrial Crops and Products, 154, 112632.
  • Sarikurkcu, C., Sahinler, S.S., Ceylan, O., Tepe, B., (2020), Onosma pulchra: Phytochemical composition, antioxidant, skin-whitening and anti-diabetic activity, Ind. Crops Prod., 154.
  • Selkoe, D.J., (2002), Deciphering the genesis and fate of amyloid β-protein yields novel therapies for Alzheimer disease, The Journal of Clinical Investigation, 110, 1375-1381.
  • Shulman, G.I., (2000), Cellular mechanisms of insulin resistance, The Journal of Clinical Investigation, 106, 171-176.
  • Slominski, A., Tobin, D.J., Shibahara, S., Wortsman, J., (2004), Melanin pigmentation in mammalian skin and its hormonal regulation, Physiological Reviews, 84, 1155-1228.
  • Sun, T., Tanumihardjo, S.A., (2007), An integrated approach to evaluate food antioxidant capacity, Journal of Food Science, 72, R159-R165.
  • Thakur, U., Shashni, S., Thakur, N., Rana, S.K., Singh, A., (2023), A review on Paris polyphylla Smith: A vulnerable medicinal plant species of a global significance, Journal of Applied Research on Medicinal and Aromatic Plants, 33, 100447.
  • Thapa, C.B., Paudel, M.R., Bhattarai, H.D., Pant, K.K., Devkota, H.P., Adhikari, Y.P., Pant, B., (2022), Bioactive secondary metabolites in Paris polyphylla Sm. and their biological activities: A review, Heliyon, 8.
  • Thilagam, E., Parimaladevi, B., Kumarappan, C., Mandal, S.C., (2013), α-Glucosidase and α-amylase inhibitory activity of Senna surattensis, Journal of Acupuncture and Meridian Studies, 6, 24-30.
  • Tripathi, G., (2002), Indigenous knowledge and traditional practices of some Himalayan medicinal plants, Himalayan Medicinal Plants Potential and Prospects, gyanodaya Prakashan, Nainital, 151-156.
  • Ubeid, A.A., Do, S., Nye, C., Hantash, B.M., (2012), Potent low toxicity inhibition of human melanogenesis by novel indole-containing octapeptides, Biochimica et Biophysica Acta (BBA)-General Subjects, 1820, 1481-1489.
  • Yao, Y., Sang, W., Zhou, M., Ren, G., (2010), Antioxidant and α-glucosidase inhibitory activity of colored grains in China, Journal of Agricultural and Food Chemistry, 58, 770-774.
  • Yue, J., Li, W., Wang, Y., (2021), Superiority verification of deep learning in the identification of medicinal plants: Taking Paris polyphylla var. yunnanensis as an example, Frontiers in Plant Science, 12, 752863.
  • Zengin, G., Rodrigues, M.J., Abdallah, H.H., Custodio, L., Stefanucci, A., Aumeeruddy, M.Z., Mollica, A., Rengasamy, K.R., Mahomoodally, M.F., (2018), Combination of phenolic profiles, pharmacological properties and in silico studies to provide new insights on Silene salsuginea from Turkey, Computational Biology and Chemistry, 77, 178-186.
  • Zengin, G., Uren, M.C., Kocak, M.S., Gungor, H., Locatelli, M., Aktumsek, A., Sarikurkcu, C., (2017), Antioxidant and Enzyme Inhibitory Activities of Extracts from Wild Mushroom Species from Turkey, International Journal of Medicinal Mushrooms, 19, 327-336.
  • Zibareva, L., Yeriomina, V.I., Munkhjargal, N., Girault, J.P., Dinan, L., Lafont, R., (2009), The phytoecdysteroid profiles of 7 species of Silene (Caryophyllaceae), Archives of Insect Biochemistry and Physiology: Published in Collaboration with the Entomological Society of America, 72, 234-248.
Toplam 56 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Bitki Biyokimyası
Bölüm Araştırma Makaleleri
Yazarlar

Cengiz Sarıkürkcü 0000-0001-5094-2520

Proje Numarası 23.GENEL.001
Yayımlanma Tarihi 1 Nisan 2025
Gönderilme Tarihi 6 Eylül 2024
Kabul Tarihi 22 Ekim 2024
Yayımlandığı Sayı Yıl 2025 Cilt: 51 Sayı: 1

Kaynak Göster

APA Sarıkürkcü, C. (2025). Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts. Selçuk Üniversitesi Fen Fakültesi Fen Dergisi, 51(1), 7-17. https://doi.org/10.35238/sufefd.1544595
AMA Sarıkürkcü C. Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts. sufefd. Nisan 2025;51(1):7-17. doi:10.35238/sufefd.1544595
Chicago Sarıkürkcü, Cengiz. “Unlocking The Therapeutic Potential of Silene Compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts”. Selçuk Üniversitesi Fen Fakültesi Fen Dergisi 51, sy. 1 (Nisan 2025): 7-17. https://doi.org/10.35238/sufefd.1544595.
EndNote Sarıkürkcü C (01 Nisan 2025) Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts. Selçuk Üniversitesi Fen Fakültesi Fen Dergisi 51 1 7–17.
IEEE C. Sarıkürkcü, “Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts”, sufefd, c. 51, sy. 1, ss. 7–17, 2025, doi: 10.35238/sufefd.1544595.
ISNAD Sarıkürkcü, Cengiz. “Unlocking The Therapeutic Potential of Silene Compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts”. Selçuk Üniversitesi Fen Fakültesi Fen Dergisi 51/1 (Nisan 2025), 7-17. https://doi.org/10.35238/sufefd.1544595.
JAMA Sarıkürkcü C. Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts. sufefd. 2025;51:7–17.
MLA Sarıkürkcü, Cengiz. “Unlocking The Therapeutic Potential of Silene Compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts”. Selçuk Üniversitesi Fen Fakültesi Fen Dergisi, c. 51, sy. 1, 2025, ss. 7-17, doi:10.35238/sufefd.1544595.
Vancouver Sarıkürkcü C. Unlocking The Therapeutic Potential of Silene compacta: A Comparative Study of Antioxidant and Enzyme Inhibitory Activities Across Solvent Extracts. sufefd. 2025;51(1):7-17.

Dergi Sahibi: Selçuk Üniversitesi Fen Fakültesi Adına Rektör Prof. Dr. Hüseyin YILMAZ
Selçuk Üniversitesi Fen Fakültesi Fen Dergisi temel bilimlerde ve diğer uygulamalı bilimlerde özgün sonuçları olan Türkçe ve İngilizce makaleleri kabul eder. Dergide ayrıca güncel yenilikleri içeren derlemelere de yer verilebilir.
Selçuk Üniversitesi Fen Fakültesi Fen Dergisi;
İlk olarak 1981 yılında S.Ü. Fen-Edebiyat Fakültesi Dergisi olarak yayın hayatına başlamış; 1984 yılına kadar (Sayı 1-4) bu adla yayınlanmıştır.
1984 yılında S.Ü. Fen-Edeb. Fak. Fen Dergisi olarak adı değiştirilmiş 5. sayıdan itibaren bu isimle yayınlanmıştır.
3 Aralık 2008 tarih ve 27073 sayılı Resmi Gazetede yayımlanan 2008/4344 sayılı Bakanlar Kurulu Kararı ile Fen-Edebiyat Fakültesi; Fen Fakültesi ve Edebiyat Fakültesi olarak ayrılınca 2009 yılından itibaren dergi Fen Fakültesi Fen Dergisi olarak çıkmıştır.
2016 yılından itibaren DergiPark’ta taranmaktadır.


88x31.png

Selçuk Üniversitesi Fen Fakültesi Fen Dergisi Creative Commons Atıf 4.0 Uluslararası Lisansı (CC BY-NC 4.0) ile lisanslanmıştır.