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Articles

Comparative Spectrophotometric and Chromatographic Assessment of Antioxidant Capacity in Different Marine Algae

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References

  • Airanthi MKWA, Hosokawa M, Miyashita K. 2011. Comparative antioxidant activity of edible Japanese brown seaweeds. J Food Sci. 76(1):C104–11.
  • Ak İ, Türker G, Antioxidant activities of Eucheuma sp. 2019. Antioxidant activities of Eucheuma sp. (Rhodophyceae) and Laminaria sp. (Phaeophyceae). Turk J Agric - Food Sci Technol. 7(sp1):154–59.
  • Apak R, Güçlü K, Özyürek M, Karademir SE. 2004. Novel total antioxidant capacity index for dietary polyphenols and vitamins C and E, using their cupric ion reducing capability in the presence of neocuproine: CUPRAC method. J Agric Food Chem. 52(26):7970–81.
  • Apak R, Özyürek M, Güçlü K, Çapanoğlu E. 2016. Antioxidant activity/capacity measurement. 1. Classification, physicochemical principles, mechanisms, and electron transfer (ET)-based assays. J Agric Food Chem. 64(5):997–1027.
  • Audibert L, Fauchon M, Blanc N, Hauchard D, Ar Gall E. 2010. Phenolic compounds in the brown seaweed Ascophyllum nodosum: Distribution and radical-scavenging activities. Phytochem Anal. 21(5):399–405.
  • Belda M, Sanchez D, Bover E, Prieto B, Padrón C, Cejalvo D, Lloris JM. 2016. Extraction of polyphenols in Himanthalia elongata and determination by high performance liquid chromatography with diode array detector prior to its potential use against oxidative stress. J Chromatogr B Analyt Technol Biomed Life Sci. 1033–1034:334–41.
  • Brand-Williams W, Cuvelier ME, Berset C. 1995. Use of a free radical method to evaluate antioxidant activity. Food Sci Technol. 28(1):25–30.
  • Chirinos R, Rogez H, Campos D, Pedreschi R, Larondelle Y. 2007. Optimization of extraction conditions of antioxidant phenolic compounds from mashua (Tropaeolum tuberosum Ruíz & Pavón) tubers. Sep Purif Technol. 55(2):217–25.
  • Farasat M, Khavari-Nejad RA, Nabavi SMB, Namjooyan F. 2014. Antioxidant activity, total phenolics and flavonoid contents of some edible green seaweeds from Northern Coasts of the Persian Gulf. Iran J Pharm Res. 8(1):163.
  • Fung A, Hamid N, Lu J. 2013. Fucoxanthin content and antioxidant properties of Undaria pinnatifida. Food Chem. 136(2):1055–62.
  • Granato D, Shahidi F, Wrolstad R, Kilmartin P, Melton LD, Hidalgo FJ, Miyashita K, Camp JV, Alasalvar C, Ismail AB, et al. 2018. Antioxidant activity, total phenolics and flavonoids contents: Should we ban in vitro screening methods? Food Chem. 264:471–75.
  • Grina F, Ullah Z, Kaplaner E, Moujahid A, Eddoha R, Nasser B, Terzioğlu P, Yilmaz MA, Ertaş A, Öztürk M, et al. 2020. In vitro enzyme inhibitory properties, antioxidant activities, and phytochemical fingerprints of five Moroccan seaweeds. S Afr J Bot. 128:152–60.
  • Jimenez-Lopez C, Pereira AG, Lourenço-Lopes C, Garcia-Oliveira P, Cassani L, Fraga-Corral M, Prieto MA, Simal-Gandara J. 2021. Main bioactive phenolic compounds in marine algae and their mechanisms of action supporting potential health benefits. Food Chem. 341:128262.
  • Karadeniz F, Kang KH, Park JW, Park SJ, Kim SK. 2014. Anti-HIV-1 activity of phlorotannin derivative 8,4‴-dieckol from Korean brown alga Ecklonia cava. Biosci Biotechnol Biochem. 78(7):1151–58.
  • Kellogg J, Grace MH, Lila MA. 2014. Phlorotannins from Alaskan seaweed inhibit carbolytic enzyme activity. Mar Drugs. 12(10):5277–94.
  • Khan SUD. 2021. Environmental sustainability: A clean energy aspect versus poverty. Environ Sci Pollut Res. 28(11):13097–104.
  • Koivikko R, Loponen J, Pihlaja K, Jormalainen V. 2007. High-performance liquid chromatographic analysis of phlorotannins from the brown alga Fucus vesiculosus. Phytochem Anal. 18(4):326–32.
  • Li Y, Fu X, Duan D, Liu X, Xu J, Gao X. 2017. Extraction and identification of phlorotannins from the brown alga, Sargassum fusiforme (Harvey) Setchell. Marine Drugs. 15(2):49.
  • Machu L, Misurcova L, Ambrozova JV, Orsavova J, Mlcek J, Sochor J, Jurikova T. 2015. Phenolic content and antioxidant capacity in algal food products. Molecules. 20(1):1118–33.
  • Pádua D, Rocha E, Gargiulo D, Ramos AA. 2005. Bioactive compounds from brown seaweeds: Phloroglucinol, fucoxanthin and fucoidan as promising therapeutic agents against breast cancer. Phytochem Lett. 14:91–98.
  • Pereira L. 2016. Edible seaweeds of the world. 1st ed. Boca Raton: CRC Press. ISBN: 978-1-4987-3047.
  • Pereira L, Critchley AT. 2020. The COVID-19 novel coronavirus pandemic 2020: Seaweeds to the rescue? Why does substantial, supporting research about the antiviral properties of seaweed polysaccharides seem to go unrecognized by the pharmaceutical community in these desperate times? J Appl Phycol. 32(3):1875–77.
  • Prior RL, Wu X, Schaich K. 2005. Standardized methods for the determination of antioxidant capacity and phenolics in foods and dietary supplements. J Agric Food Chem. 53(10):4290–302.
  • Puspita M, Déniel M, Widowati I, Radjasa OK, Douzenel P, Marty C, Vandanjon L, Bedoux G, Bourgougnon N. 2017. Total phenolic content and biological activities of enzymatic extracts from Sargassum muticum (yendo) Fensholt. J Appl Phycol. 29(5):2521–37.
  • Rajauria G, Foley B, Abu-Ghannam N. 2016. Identification and characterization of phenolic antioxidant compounds from brown Irish seaweed Himanthalia elongata using LC-DAD–ESI-MS/MS. Innov Food Sci Emerg Technol. 37:261–68.
  • 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 Radic Biol Med. 26(9–10):1231–37.
  • Sabeena Farvin KH, Jacobsen C. 2013. Phenolic compounds and antioxidant activities of selected species of seaweeds from Danish coast. Food Chem. 138(2–3):1670–81.
  • Safafar H, Wagenen J, Van Møller P, Jacobsen C. 2015. Carotenoids, phenolic compounds and tocopherols contribute to the antioxidative properties of some microalgae species grown on industrial wastewater. Mar Drugs. 13(12):7339–56.
  • Shahidi F, Zhong Y. 2015. Measurement of antioxidant activity. J Funct Foods. 18:757–81.
  • Shakambari G, Ashokkumar B, Varalakshmi P. 2015. Phlorotannins from Brown Algae: Inhibition of advanced glycation end products formation in high glucose induced Caenorhabditis elegans. Indian J Exp Biol. 53(6):371–79.
  • Singleton VL, Orthofer R, Lamuela-Raventós RM. 1999. Analysis of total phenols and other oxidation substrates and antioxidants by means of Folin-Ciocalteu reagent. Methods Enzymol. 299:152–78.
  • Stiger V, Horiguchi T, Yoshida T, Coleman AW, Masuda M. 2003. Phylogenetic relationships within the genus Sargassum (Fucales, Phaeophyceae), inferred from ITS-2 nrDNA, with an emphasis on the taxonomic subdivision of the genus. Phycol Res. 51(1):1–10.
  • Tierney MS, Smyth TJ, Rai DK, Soler-Vila A, Croft AK, Brunton N. 2013. Enrichment of polyphenol contents and antioxidant activities of Irish brown macroalgae using food-friendly techniques based on polarity and molecular size. Food Chem. 139(1–4):753–61.
  • Vázquez-Rodríguez B, Gutiérrez-Uribe JA, Antunes-Ricardo M, Santos-Zea L, Cruz-Suárez LE. 2020. Ultrasound-assisted extraction of phlorotannins and polysaccharides from Silvetia compressa (Phaeophyceae). J Appl Phycol. 32(2):1441–53.
  • Vlaisavljević S, Rašeta M, Berežni S, Passamonti S, Tramer F. 2021. Four selected commercial seaweeds: Biologically active compounds, antioxidant and cytotoxic properties. Int J Food Sci Nutr. 72(6):757–66.
  • Wang T, Jónsdóttir R, Liu H, Gu L, Kristinsson HG, Raghavan S, Ólafsdóttir G. 2012. Antioxidant capacities of phlorotannins extracted from the brown algae Fucus vesiculosus. J Agric Food Chem. 60(23):5874–83.
  • Yalçın S, Karakaş Ö, Okudan EŞ, Başkan KS, Çekiç SD, Apak R. 2021a. HPLC detection and “antioxidant capacity determination of brown, red and green algal pigments in seaweed extracts. J Chromatogr Sci. 59(4):325–37.
  • Yalçın S, Uzun M, Karakaş Ö, Sözgen Başkan K, Okudan EŞ, Apak MR. 2021b. Determination of total antioxidant capacities of algal pigments in seaweed by the combination of high-performance liquid chromatography (HPLC) with a cupric reducing antioxidant capacity (CUPRAC) assay. Anal Lett. 54(14):2239–58.
  • Yildiz L, Başkan KS, Tütem E, Apak R. 2008. Combined HPLC-CUPRAC (cupric ion reducing antioxidant capacity) assay of parsley, celery leaves, and nettle. Talanta. 77(1):304–13.
  • Yoruklu HC, Ozkaya B, Demir A. 2022. Optimization of liquid fertilizer production from waste seaweed: A design of experiment based statistical approach. Chemosphere. 286(Pt 3):131885.
  • Yoshie Y, Wang W, Petillo D, Suzuki T. 2000. Distribution of catechins in Japanese seaweeds. Fisheries Sci. 66(5):998–1000.

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