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Ticari Spirulina ve Undaria Ekstraktlarının Oksidatif Stres İndeksi, Antioksidan Aktivitesi ve Fenolik Bileşimi

Yıl 2025, Cilt: 16 Sayı: 3, 610 - 619, 30.09.2025
https://doi.org/10.18663/tjcl.1789353

Öz

Amaç: Bu çalışma, farklı polaritedeki çözücülerle elde edilen ticari Spirulina ve Undaria ekstraktlarının antioksidan aktivitelerini, toplam oksidan/antioksidan durumlarını ve fenolik profillerini karşılaştırmayı amaçladı.
Yöntemler: Ekstraktlar hekzan, etanol ve su kullanılarak hazırlandı. Antioksidan aktiviteler DPPH, ABTS, CUPRAC ve metal şelatlama testleriyle değerlendirildi. Toplam fenolik (TPC), toplam flavonoid (TFC) ve fenolik aldehit içerikleri spektrofotometrik olarak ölçüldü. Fenolik kimlikler ve profiller, gerçek standartlarla çoklu reaksiyon izleme modunda LC-MS/MS kullanılarak analiz edildi. Toplam antioksidan durum (TAS), toplam oksidan durum (TOS) ve oksidatif stres indeksi (OSI) ticari kitlerle belirlendi.
Bulgular: Spirulina’nın etanol ve hekzan ekstraktları, Undaria’ya kıyasla daha güçlü radikal süpürücü ve şelatlama aktiviteleri gösterdi ve DPPH/ABTS testlerinde daha düşük IC₅₀ değerlerine sahipti. Spirulina, tüm çözücü fraksiyonlarında daha yüksek TAS ve daha düşük OSI sergiledi. Fenolik profil analizleri Spirulina’da vanilin, vanilik asit ve gentisik asit gibi küçük fenoliklerin baskın olduğunu gösterdi; Undaria ise yüksek molekül ağırlıklı florotaninlere dayanıyordu. Çözücü polaritesi belirleyici oldu; etanol ve hekzan ekstraktları fenolik içerik ve antioksidan aktivite açısından suya üstünlük sağladı.
Sonuç: Spirulina ekstraktları, fenolik çeşitliliği ve antioksidan kapasitesiyle Undaria’dan üstün bulunmuş, kahverengi alglerin her zaman polifenolce daha zengin olduğu yönündeki algıya meydan okumuştur. Klasik testlerin OSI ile birlikte kullanılması, Spirulina’nın fonksiyonel gıda ve nutrasötik potansiyelini daha güçlü şekilde ortaya koymaktadır.

Kaynakça

  • Leyane TS, Jere SW, and Houreld NN. Oxidative Stress in Ageing and Chronic Degenerative Pathologies: Molecular Mechanisms Involved in Counteracting Oxidative Stress and Chronic Inflammation. Int J Mol Sci. 2022;23(13):7273.
  • Wu R, Feng J, Yang Y, et al. Significance of Serum Total Oxidant/Antioxidant Status in Patients with Colorectal Cancer. PLoS One. 2017;12(1):e0170003.
  • Lobo V, Patil A, Phatak A, and Chandra N. Free radicals, antioxidants and functional foods: Impact on human health. Pharmacogn Rev. 2010;4(8):118-26.
  • Arslan NP, Albayrak S, Budak-Savas A, et al. Algal and Fungal Antioxidants Alleviate Oxidative Stress-Induced Reproductive Defects. Food Sci Nutr. 2025;13(5):e70301.
  • Shoham S, Pintel N, and Avni D. Oxidative Stress, Gut Bacteria, and Microalgae: A Holistic Approach to Manage Inflammatory Bowel Diseases. Antioxidants (Basel). 2025;14(6):697.
  • Stunda-Zujeva A, Berele M, Lece A, and Šķesters A. Comparison of antioxidant activity in various spirulina containing products and factors affecting it. Scientific Reports. 2023;13(1):4529.
  • Karkos PD, Leong SC, Karkos CD, Sivaji N, and Assimakopoulos DA. Spirulina in clinical practice: evidence-based human applications. Evid Based Complement Alternat Med. 2011;2011:531053.
  • Machado H, Machado JP, Alves C, et al. Exploring the Pharmacological Landscape of Undaria pinnatifida: Insights into Neuroprotective Actions and Bioactive Constituents. Nutraceuticals. 2025;5(3):20.
  • Gumus NE. Nanofiber Applications From Hijiki Macroalgae: Antibacterial and Cytotoxicity Properties in Biocompatible Polymers. Biopolymers. 2025;116(1):e23650.
  • Esim N, Dawar P, Arslan NP, et al. Natural metabolites with antioxidant activity from micro-and macro-algae. Food Bioscience. 2024;62:105089.
  • Seal T. HPLC determination of phenolic acids, flavonoids and ascorbic acid in four different solvent extracts of Zanthoxylum acanthopodium, a wild edible plant of Meghalaya state of India. Int. J. Pharm. Pharm. Sci. 2016;8(3):103-09.
  • Slinkard K and Singleton VL. Total phenol analysis: automation and comparison with manual methods. American journal of enology and viticulture. 1977;28(1):49-55.
  • Park YK, Koo MH, Ikegaki M, and Contado J. Comparison of the flavonoid aglycone contents of Apis mellifera propolis from various regions of Brazil. Arq. Biol. Tecnol. 1997;40(1):97-106.
  • Erel O. A novel automated method to measure total antioxidant response against potent free radical reactions. Clin Biochem. 2004;37(2):112-9.
  • Erel O. A new automated colorimetric method for measuring total oxidant status. Clin Biochem. 2005;38(12):1103-11.
  • Argon H, Banu K, Zeliha Ü, Süleyman D, and Turan A. Phenolic Content and In-vitro Antioxidant Activity of Olea europaea L. subs. oleaster Leaves by Supercritical CO 2 Extraction. Ereğli Tarım Bilim. Derg. 2023;3:75-85.
  • Finamore A, Palmery M, Bensehaila S, and Peluso I. Antioxidant, Immunomodulating, and Microbial-Modulating Activities of the Sustainable and Ecofriendly Spirulina. Oxid Med Cell Longev. 2017;2017:3247528.
  • Martelli F, Cirlini M, Lazzi C, Neviani E, and Bernini V. Edible Seaweeds and Spirulina Extracts for Food Application: In Vitro and In Situ Evaluation of Antimicrobial Activity towards Foodborne Pathogenic Bacteria. Foods. 2020;9(10):1442.
  • Stunda-Zujeva A, Berele M, Lece A, and Skesters A. Comparison of antioxidant activity in various spirulina containing products and factors affecting it. Sci Rep. 2023;13(1):4529.
  • Masoumifeshani B, Abedian Kenari A, Sottorff I, Crüsemann M, and Amiri Moghaddam J. Identification and evaluation of antioxidant and anti-aging peptide fractions from enzymatically hydrolyzed proteins of Spirulina platensis and Chlorella vulgaris. Marine Drugs. 2025;23(4):162.
  • Machu L, Misurcova L, Vavra Ambrozova J, et al. Phenolic content and antioxidant capacity in algal food products. Molecules. 2015;20(1):1118-33.
  • Park JS, Han JM, Park SW, et al. Subcritical Water Extraction of Undaria pinnatifida: Comparative Study of the Chemical Properties and Biological Activities across Different Parts. Mar Drugs. 2024;22(8):344.
  • Guldas M, Ziyanok-Demirtas S, Sahan Y, Yildiz E, and Gurbuz O. Antioxidant and anti-diabetic properties of Spirulina platensis produced in Turkey. Food Science and Technology. 2020;41:615-25.
  • Zhao Y, Zheng Y, Wang J, et al. Fucoidan extracted from Undaria pinnatifida: Source for nutraceuticals/functional foods. Marine drugs. 2018;16(9):321.
  • Shen P, Gu Y, Zhang C, et al. Metabolomic approach for characterization of polyphenolic compounds in Laminaria japonica, Undaria pinnatifida, Sargassum fusiforme and Ascophyllum nodosum. Foods. 2021;10(1):192.
  • Golmakani M-T, Moosavi-Nasab M, Keramat M, and Mohammadi M-A. Arthrospira platensis extract as a natural antioxidant for improving oxidative stability of common kilka (Clupeonella cultriventris caspia) oil. Turkish Journal of Fisheries and Aquatic Sciences. 2018;18(11):1315-23.
  • Oguzkan SB, Guroy BK, Tonus SS, Guroy D, and Kılıc HI. The bioactive component and DNA protective capability of cultured Spirulina in Turkey (Marmara Region). Genetics of Aquatic Organisms. 2018;2(1):007-12.
  • Cichoński J and Chrzanowski G. Microalgae as a source of valuable phenolic compounds and carotenoids. Molecules. 2022;27(24):8852.
  • Al-Khalaifah H and Uddin S. Assessment of sargassum sp., spirulina sp., and gracilaria sp. as poultry feed supplements: Feasibility and environmental implications. Sustainability. 2022;14(14):8968.
  • Taboada M, Millán R, and Miguez M. Nutritional value of the marine algae wakame (Undaria pinnatifida) and nori (Porphyra purpurea) as food supplements. Journal of Applied Phycology. 2013;25(5):1271-76.
  • Bleakley S and Hayes M. Algal proteins: extraction, application, and challenges concerning production. Foods. 2017;6(5):33.
  • Akbarizareh M, Ofoghi H, and Hadizadeh M. Assessment of Phenolic Components of the microalgae Spirulina platensis using two methods of Chromatography, TLC and HPLC. Journal of Marine Biology. 2019;11(3):13-24.
  • Lee H-H, Kim J-S, Jeong J-H, et al. Effect of different solvents on the extraction of compounds from different parts of Undaria pinnatifida (Harvey) Suringar. Journal of Marine Science and Engineering. 2022;10(9):1193.
  • Uzlaşır T, Şaşmaz HK, and Kelebek H. Comparison of extraction techniques for determining bioactive compounds and antioxidant activity of Spirulina platensis. Turkish Journal of Agriculture-Food Science and Technology. 2024;12(4):554-60.

Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts

Yıl 2025, Cilt: 16 Sayı: 3, 610 - 619, 30.09.2025
https://doi.org/10.18663/tjcl.1789353

Öz

Aim: This study aimed to compare the antioxidant activities, total oxidant/antioxidant status, and phenolic profiles of commercial Spirulina and Undaria extracts obtained with solvents of different polarity.
Methods: Extracts were prepared using hexane, ethanol, and water. Antioxidant activities were assessed by DPPH, ABTS, CUPRAC, and metal chelation assays. Total phenolic (TPC), total flavonoid (TFC), and phenolic aldehyde contents were quantified spectrophotometrically. Phenolic identities and profiles were analyzed using LC–MS/MS in multiple reaction monitoring mode with authentic standards. Total antioxidant status (TAS), total oxidant status (TOS), and oxidative stress index (OSI) were measured using commercial kits.
Results: Spirulina ethanol and hexane extracts exhibited the strongest radical-scavenging and chelating activities, with lower IC₅₀ values in DPPH and ABTS assays compared with Undaria. Spirulina consistently showed higher TAS and lower OSI, indicating a more favorable oxidative balance. Phenolic profiling revealed vanillin, vanillic acid, and gentisic acid as dominant in Spirulina, whereas Undaria was richer in high-molecular-weight phlorotannins but yielded lower TPC and TFC values. Solvent polarity strongly influenced outcomes: ethanol and hexane extracts provided higher phenolic content and stronger antioxidant activity than water.
Conclusion: Spirulina extracts demonstrated superior antioxidant activity and phenolic diversity compared to Undaria, challenging the perception that brown algae always dominate in polyphenol content. By integrating classical assays with oxidative stress indices, this study highlights Spirulina’s potential as a more effective source of functional antioxidants.

Kaynakça

  • Leyane TS, Jere SW, and Houreld NN. Oxidative Stress in Ageing and Chronic Degenerative Pathologies: Molecular Mechanisms Involved in Counteracting Oxidative Stress and Chronic Inflammation. Int J Mol Sci. 2022;23(13):7273.
  • Wu R, Feng J, Yang Y, et al. Significance of Serum Total Oxidant/Antioxidant Status in Patients with Colorectal Cancer. PLoS One. 2017;12(1):e0170003.
  • Lobo V, Patil A, Phatak A, and Chandra N. Free radicals, antioxidants and functional foods: Impact on human health. Pharmacogn Rev. 2010;4(8):118-26.
  • Arslan NP, Albayrak S, Budak-Savas A, et al. Algal and Fungal Antioxidants Alleviate Oxidative Stress-Induced Reproductive Defects. Food Sci Nutr. 2025;13(5):e70301.
  • Shoham S, Pintel N, and Avni D. Oxidative Stress, Gut Bacteria, and Microalgae: A Holistic Approach to Manage Inflammatory Bowel Diseases. Antioxidants (Basel). 2025;14(6):697.
  • Stunda-Zujeva A, Berele M, Lece A, and Šķesters A. Comparison of antioxidant activity in various spirulina containing products and factors affecting it. Scientific Reports. 2023;13(1):4529.
  • Karkos PD, Leong SC, Karkos CD, Sivaji N, and Assimakopoulos DA. Spirulina in clinical practice: evidence-based human applications. Evid Based Complement Alternat Med. 2011;2011:531053.
  • Machado H, Machado JP, Alves C, et al. Exploring the Pharmacological Landscape of Undaria pinnatifida: Insights into Neuroprotective Actions and Bioactive Constituents. Nutraceuticals. 2025;5(3):20.
  • Gumus NE. Nanofiber Applications From Hijiki Macroalgae: Antibacterial and Cytotoxicity Properties in Biocompatible Polymers. Biopolymers. 2025;116(1):e23650.
  • Esim N, Dawar P, Arslan NP, et al. Natural metabolites with antioxidant activity from micro-and macro-algae. Food Bioscience. 2024;62:105089.
  • Seal T. HPLC determination of phenolic acids, flavonoids and ascorbic acid in four different solvent extracts of Zanthoxylum acanthopodium, a wild edible plant of Meghalaya state of India. Int. J. Pharm. Pharm. Sci. 2016;8(3):103-09.
  • Slinkard K and Singleton VL. Total phenol analysis: automation and comparison with manual methods. American journal of enology and viticulture. 1977;28(1):49-55.
  • Park YK, Koo MH, Ikegaki M, and Contado J. Comparison of the flavonoid aglycone contents of Apis mellifera propolis from various regions of Brazil. Arq. Biol. Tecnol. 1997;40(1):97-106.
  • Erel O. A novel automated method to measure total antioxidant response against potent free radical reactions. Clin Biochem. 2004;37(2):112-9.
  • Erel O. A new automated colorimetric method for measuring total oxidant status. Clin Biochem. 2005;38(12):1103-11.
  • Argon H, Banu K, Zeliha Ü, Süleyman D, and Turan A. Phenolic Content and In-vitro Antioxidant Activity of Olea europaea L. subs. oleaster Leaves by Supercritical CO 2 Extraction. Ereğli Tarım Bilim. Derg. 2023;3:75-85.
  • Finamore A, Palmery M, Bensehaila S, and Peluso I. Antioxidant, Immunomodulating, and Microbial-Modulating Activities of the Sustainable and Ecofriendly Spirulina. Oxid Med Cell Longev. 2017;2017:3247528.
  • Martelli F, Cirlini M, Lazzi C, Neviani E, and Bernini V. Edible Seaweeds and Spirulina Extracts for Food Application: In Vitro and In Situ Evaluation of Antimicrobial Activity towards Foodborne Pathogenic Bacteria. Foods. 2020;9(10):1442.
  • Stunda-Zujeva A, Berele M, Lece A, and Skesters A. Comparison of antioxidant activity in various spirulina containing products and factors affecting it. Sci Rep. 2023;13(1):4529.
  • Masoumifeshani B, Abedian Kenari A, Sottorff I, Crüsemann M, and Amiri Moghaddam J. Identification and evaluation of antioxidant and anti-aging peptide fractions from enzymatically hydrolyzed proteins of Spirulina platensis and Chlorella vulgaris. Marine Drugs. 2025;23(4):162.
  • Machu L, Misurcova L, Vavra Ambrozova J, et al. Phenolic content and antioxidant capacity in algal food products. Molecules. 2015;20(1):1118-33.
  • Park JS, Han JM, Park SW, et al. Subcritical Water Extraction of Undaria pinnatifida: Comparative Study of the Chemical Properties and Biological Activities across Different Parts. Mar Drugs. 2024;22(8):344.
  • Guldas M, Ziyanok-Demirtas S, Sahan Y, Yildiz E, and Gurbuz O. Antioxidant and anti-diabetic properties of Spirulina platensis produced in Turkey. Food Science and Technology. 2020;41:615-25.
  • Zhao Y, Zheng Y, Wang J, et al. Fucoidan extracted from Undaria pinnatifida: Source for nutraceuticals/functional foods. Marine drugs. 2018;16(9):321.
  • Shen P, Gu Y, Zhang C, et al. Metabolomic approach for characterization of polyphenolic compounds in Laminaria japonica, Undaria pinnatifida, Sargassum fusiforme and Ascophyllum nodosum. Foods. 2021;10(1):192.
  • Golmakani M-T, Moosavi-Nasab M, Keramat M, and Mohammadi M-A. Arthrospira platensis extract as a natural antioxidant for improving oxidative stability of common kilka (Clupeonella cultriventris caspia) oil. Turkish Journal of Fisheries and Aquatic Sciences. 2018;18(11):1315-23.
  • Oguzkan SB, Guroy BK, Tonus SS, Guroy D, and Kılıc HI. The bioactive component and DNA protective capability of cultured Spirulina in Turkey (Marmara Region). Genetics of Aquatic Organisms. 2018;2(1):007-12.
  • Cichoński J and Chrzanowski G. Microalgae as a source of valuable phenolic compounds and carotenoids. Molecules. 2022;27(24):8852.
  • Al-Khalaifah H and Uddin S. Assessment of sargassum sp., spirulina sp., and gracilaria sp. as poultry feed supplements: Feasibility and environmental implications. Sustainability. 2022;14(14):8968.
  • Taboada M, Millán R, and Miguez M. Nutritional value of the marine algae wakame (Undaria pinnatifida) and nori (Porphyra purpurea) as food supplements. Journal of Applied Phycology. 2013;25(5):1271-76.
  • Bleakley S and Hayes M. Algal proteins: extraction, application, and challenges concerning production. Foods. 2017;6(5):33.
  • Akbarizareh M, Ofoghi H, and Hadizadeh M. Assessment of Phenolic Components of the microalgae Spirulina platensis using two methods of Chromatography, TLC and HPLC. Journal of Marine Biology. 2019;11(3):13-24.
  • Lee H-H, Kim J-S, Jeong J-H, et al. Effect of different solvents on the extraction of compounds from different parts of Undaria pinnatifida (Harvey) Suringar. Journal of Marine Science and Engineering. 2022;10(9):1193.
  • Uzlaşır T, Şaşmaz HK, and Kelebek H. Comparison of extraction techniques for determining bioactive compounds and antioxidant activity of Spirulina platensis. Turkish Journal of Agriculture-Food Science and Technology. 2024;12(4):554-60.
Toplam 34 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Farmasotik Biyoteknoloji
Bölüm Araştırma Makalesi
Yazarlar

Hatice Banu Keskinkaya 0000-0002-6970-6939

Yayımlanma Tarihi 30 Eylül 2025
Gönderilme Tarihi 22 Eylül 2025
Kabul Tarihi 28 Eylül 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 16 Sayı: 3

Kaynak Göster

APA Keskinkaya, H. B. (2025). Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts. Turkish Journal of Clinics and Laboratory, 16(3), 610-619. https://doi.org/10.18663/tjcl.1789353
AMA Keskinkaya HB. Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts. TJCL. Eylül 2025;16(3):610-619. doi:10.18663/tjcl.1789353
Chicago Keskinkaya, Hatice Banu. “Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts”. Turkish Journal of Clinics and Laboratory 16, sy. 3 (Eylül 2025): 610-19. https://doi.org/10.18663/tjcl.1789353.
EndNote Keskinkaya HB (01 Eylül 2025) Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts. Turkish Journal of Clinics and Laboratory 16 3 610–619.
IEEE H. B. Keskinkaya, “Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts”, TJCL, c. 16, sy. 3, ss. 610–619, 2025, doi: 10.18663/tjcl.1789353.
ISNAD Keskinkaya, Hatice Banu. “Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts”. Turkish Journal of Clinics and Laboratory 16/3 (Eylül2025), 610-619. https://doi.org/10.18663/tjcl.1789353.
JAMA Keskinkaya HB. Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts. TJCL. 2025;16:610–619.
MLA Keskinkaya, Hatice Banu. “Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts”. Turkish Journal of Clinics and Laboratory, c. 16, sy. 3, 2025, ss. 610-9, doi:10.18663/tjcl.1789353.
Vancouver Keskinkaya HB. Oxidative Stress Index, Antioxidant Activity, and Phenolic Composition of Commercial Spirulina and Undaria Extracts. TJCL. 2025;16(3):610-9.


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