Comparison of different extraction techniques for obtaining extracts from brown seaweeds and their potential effects as angiotensin I-converting enzyme (ACE) inhibitors
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  • 作者:Alex Olivares-Molina ; Katherina Fernández
  • 关键词:Brown algae ; Angiotensin I ; converting enzyme ; Inhibition ; Phlorotannins ; Carbohydrates
  • 刊名:Journal of Applied Phycology
  • 出版年:2016
  • 出版时间:April 2016
  • 年:2016
  • 卷:28
  • 期:2
  • 页码:1295-1302
  • 全文大小:480 KB
  • 参考文献:Adams JMM, Ross AB, Anastasakis K, Hodgson EM, Gallagher JA, Jones JM, Donnison IS (2011) Seasonal variation in the chemical composition of the bioenergy feedstock Laminaria digitata for thermochemical conversion. Bioresour Technol 102:226–234CrossRef PubMed
    Al Shohaib S, Raweily E (2000) Acute tubular necrosis due to captopril. Am J Nephrol 20:149–152CrossRef PubMed
    Arnold TM, Targett NM (1998) Quantifying in situ rates of phlorotannin synthesis and polymerization in marine brown algae. J Chem Ecol 24:577–595CrossRef
    Bhuyan BJ, Mugesh G (2011) Synthesis, characterization and antioxidant activity of angiotensin converting enzyme inhibitors. Org Biomol Chem 9:1356–1365CrossRef PubMed
    Bhuyan BJ, Mugesh G (2012) Antioxidant activity of peptide-based angiotensin converting enzyme inhibitors. Org Biomol Chem 10:2237–2247CrossRef PubMed
    Bligh EG, Dyer WJ (1959) A rapid method of total lipid extraction and purification. Can J Biochem Physiol 37:911–917CrossRef PubMed
    Breton F, Cérantola S, Ar Gall E (2011) Distribution and radical scavenging activity of phenols in Ascophyllum nodosum (Phaeophyceae). J Exp Mar Biol Ecol 399:167–172CrossRef
    Cardozo KHM, Guaratini T, Barros MP, Falcão VR, Tonon AP, Lopes NP, Campos S, Torres MA, Souza AO, Colepicolo P, Pinto E (2007) Metabolites from algae with economical impact. Comp Biochem Physiol C 146:60–78CrossRef
    Cerpa-Calderón FK, Kennedy JA (2008) Berry integrity and extraction of skin and seed proanthocyanidins during red wine fermentation. J Agric Food Chem 56:9006–9014CrossRef PubMed
    Cruces E, Huovinen P, Gómez I (2012) Phlorotannin and antioxidant responses upon short-term exposure to UV radiation and elevated temperature in three south Pacific kelps. Photochem Photobiol 88:58–66CrossRef PubMed
    DuBois M, Gilles KA, Hamilton JK, Rebers PA, Smith F (1956) Colorimetric method for determination of sugars and related substances. Anal Chem 28:350–356CrossRef
    El-Said GF, El-Sikaily A (2013) Chemical composition of some seaweed from Mediterranean Sea coast, Egypt. Environ Monit Assess 185:6089–6099CrossRef PubMed PubMedCentral
    Endringer DC, Oliveira OV, Braga FC (2014) In vitro and in silico inhibition of angiotensin-converting enzyme by carbohydrates and cyclitols. Chem Pap 68:37–45CrossRef
    Eriz G, Sanhueza V, Roeckel M, Fernández K (2011) Inhibition of the angiotensin-converting enzyme by grape seed and skin proanthocyanidins extracted from Vitis vinífera L. cv. País. LWT Food Sci Technol 44:860–865CrossRef
    García-Ríos V, Ríos-Leal E, Robledo D, Freile-Pelegrin Y (2012) Polysaccharides composition from tropical brown seaweeds. Phycol Res 60:305–3151CrossRef
    Godoy S, Roeckel M, Fernández K (2012) Influence of the structure and composition of the País grape proanthocyanidins on the inhibition of angiotensin I-converting enzyme (ACE). Food Chem 134:346–350CrossRef
    mez I, Westermeier R (1995) Energy contents and organic constituents in Antarctic and south Chilean marine brown algae. Polar Biol 15:597–602CrossRef
    Gupta S, Abu-Ghannam N (2011) Bioactive potential and possible health effects of edible brown seaweeds. Trends Food Sci Technol 22:315–326CrossRef
    Heo SJ, Park EJ, Lee KW, Jeon YJ (2005) Antioxidant activities of enzymatic extracts from brown seaweeds. Bioresour Technol 96:1613–1623CrossRef PubMed
    Je J, Park P, Kim B, Kim S (2006) Antihypertensive activity of chitin derivatives. Biopolymers 83:250–254CrossRef PubMed
    Jerez M, Selga A, Sineiro J, Torres JL, Núñez MJ (2007) A comparison between bark extracts from Pinus pinaster and Pinus radiata: antioxidant activity and procyanidin composition. Food Chem 100:439–444CrossRef
    Julius S, Nesbitt SD, Egan BM et al (2006) Feasibility of treating prehypertension with an angiotensin-receptor blocker. New Engl J Med 354:1685–1697CrossRef PubMed
    Kadam SU, Tiwari BK, O’Donnell CP (2013) Application of novel extraction technologies for bioactives from marine algae. J Agric Food Chem 61:4667–4675CrossRef PubMed
    Kearney PM, Whelton M, Reynolds K, Muntner P, Whelton PK, He J (2005) Global burden of hypertension: analysis of worldwide data. Lancet 365:217–223CrossRef PubMed
    Kendel M, Couzinet-Mossion A, Viau M, Fleurence J, Barnathan G, Wielgosz-Collin G (2012) Seasonal composition of lipids, fatty acids, and sterols in the edible red alga Grateloupia turuturu. J Appl Phycol 25:425–432CrossRef
    Kim SK, Himaya SWA (2011) Medicinal effects of phlorotannins from marine brown algae. Adv Food Nutr Res 64:97–109CrossRef PubMed
    Koivikko R, Loponen J, Honkanen T, Jormalainen V (2005) Contents of soluble, cell-wall-bound and exuded phlorotannins in the brown alga Fucus vesiculosus, with implications on their ecological functions. J Chem Ecol 31:195–212CrossRef PubMed
    Koivikko R, Loponen J, Pihlaja K, Jormalainen V (2007) High-performance liquid chromatographic analysis of phlorotannins from the brown alga Fucus vesiculosus. Phytochem Anal 18:326–332CrossRef PubMed
    Li Y, Qian ZJ, Ryu B, Lee SH, Kim MM, Kim SK (2009) Chemical components and its antioxidant properties in vitro: an edible marine brown alga, Ecklonia cava. Bioorg Med Chem 17:1963–1973CrossRef PubMed
    Li YX, Wijesekara I, Li Y, Kim SK (2011) Phlorotannins as bioactive agents from brown algae. Process Biochem 46:2219–2224CrossRef
    Lohith K, Vijayakumar GR, Somashekar BR, Sivakumar R, Divakar S (2006) Glycosides and amino acyl esters of carbohydrates as potent inhibitors of angiotensin converting enzyme. Eur J Med Chem 41:1059–1072CrossRef PubMed
    Lordan S, Smyth TJ, Soler-Vila A, Stanton C, Ross RP (2013) The α-amylase and α-glucosidase inhibitory effects of Irish seaweed extracts. Food Chem 141:2170–2176CrossRef PubMed
    Lowry OH, Rosebrough NJ, Farr AL, Randall RJ (1951) Protein measurement with the Folin phenol reagent. J Biol Chem 193:265–275PubMed
    Macaya EC, Rothäusler E, Thiel M, Molis M, Wahl M (2005) Induction of defenses and within-alga variation of palatability in two brown algae from the northern-central coast of Chile: effects of mesograzers and UV radiation. J Exp Mar Bio Ecol 325:214–227CrossRef
    Manns D, Deutschle AL, Saake B, Meyer AS (2014) Methodology for quantitative determination of the carbohydrate composition of brown seaweeds (Laminariaceae). RSC Adv 4:25736CrossRef
    Marinho-Soriano E, Fonseca PC, Carneiro MAA, Moreira WSC (2006) Seasonal variation in the chemical composition of two tropical seaweeds. Bioresour Technol 97:2402–2406CrossRef PubMed
    Michalak I, Chojnacka K (2015) Algae as production systems of bioactive compounds. Eng. Life Sci 15:160–176CrossRef
    Murray CJ, Lopez D (1997) Global mortality, disability, and the contribution of risk factors: Global Burden of Disease Study. Lancet 349:1436–1442CrossRef PubMed
    Ngo DN, Qian ZJ, Je JY, Kim MM, Kim SK (2008) Aminoethyl chitooligosaccharides inhibit the activity of angiotensin converting enzyme. Process Biochem 43:119–123CrossRef
    Papenfus HB, Stirk WA, Finnie JF, Van Staden J (2012) Seasonal variation in the polyamines of Ecklonia maxima. Bot Mar 55:539–546CrossRef
    Park PJ, Je JY, Kim SK (2003) Angiotensin I converting enzyme (ACE) inhibitory activity of hetero-chitooligosaccharides prepared from partially different deacetylated chitosans. J Agric Food Chem 51:4930–4934CrossRef PubMed
    Percival E, McDowell RH (1967) Chemistry and enzymology of marine algal polysaccharides. Academic Press, London, 219 pp
    Rengasamy KRR, Aderogba MA, Amoo SO, Stirk WA, Van Staden J (2013) Potential antiradical and alpha-glucosidase inhibitors from Ecklonia maxima (Osbeck) Papenfuss. Food Chem 141:1412–1415CrossRef PubMed
    Samarakoon KW, O-Nam K, Ko JY, Lee JH, Kang MC, Kim D, Lee JB, Lee JS, Jeon YJ (2013) Purification and identification of novel angiotensin-I converting enzyme (ACE) inhibitory peptides from cultured marine microalgae (Nannochloropsis oculata) protein hydrolysate. J Appl Phycol 25:1595–1606CrossRef
    Schiener P, Black KD, Stanley MS, Green DH (2015) The seasonal variation in the chemical composition of the kelp species Laminaria digitata, Laminaria hyperborea, Saccharina latissima and Alaria esculenta. J Appl Phycol 27:363–373CrossRef
    Schoenwaelder MEA, Clayton MN (1998) Secretion of phenolic substances into the zygote wall and cell plate in embryos of Hormosira andAcrocarpia (Fucales, Phaeophyceae). J Phycol 34:969–980CrossRef
    Serrano E, Laurent V, Elena I, Mendiola JA, Ana T, Luc M, Vale S (2013) Green improved processes to extract bioactive phenolic compounds from brown macroalgae using Sargassum muticum as model. Talanta 104:44–52CrossRef
    Smith JL, Summers G, Wong R (2010) Nutrient and heavy metal content of edible seaweeds in New Zealand. N Z J Crop Hort Sci 38:19–28CrossRef
    Thomas NV, Kim SK (2011) Potential pharmacological applications of polyphenolic derivatives from marine brown algae. Environ Toxicol Pharmacol 32:325–335CrossRef PubMed
    Vijayabaskar P, Shiyamala V (2012) Antioxidant properties of seaweed polyphenol from Turbinaria ornata (Turner) J. Agardh, 1848. Asian Pac J Trop Biomed 2:S90–S98CrossRef
    Vo TS, Ngo DH, Kim SK (2012) Marine algae as a potential pharmaceutical source for anti-allergic therapeutics. Process Biochem 47:386–394CrossRef
    Westermeier R, Murúa P, Patiño DJ, Muñoz L, Ruiz A, Müller DG (2012) Variations of chemical composition and energy content in natural and genetically defined cultivars of Macrocystis from Chile. J Appl Phycol 24:1191–1201CrossRef
    Wijesekara I, Kim SK (2010) Angiotensin-I-converting enzyme (ACE) inhibitors from marine resources: prospects in the pharmaceutical industry. Mar Drugs 8:1080–1093CrossRef PubMed PubMedCentral
    Wijesinghe WP, Jeon YJ (2012) Enzyme-assistant extraction (EAE) of bioactive components: a useful approach for recovery of industrially important metabolites from seaweeds: a review. Fitoterapia 83:6–12CrossRef PubMed
    Wijesinghe WP, Ko SC, Jeon YJ (2011) Effect of phlorotannins isolated from Ecklonia cava on angiotensin I-converting enzyme (ACE) inhibitory activity. Nutr Res Pract 5:93–100CrossRef PubMed PubMedCentral
    Wijesinghe WP, Ahn G, Lee WW, Kang MC, Kim EA, Jeon YJ (2013) Anti-inflammatory activity of phlorotannin-rich fermented Ecklonia cava processing by-product extract in lipopolysaccharide-stimulated RAW 264.7 macrophages. J Appl Phycol 25:1207–1213CrossRef
    Yamada A, Sakurai T, Ochi D, Mitsuyama E, Yamauchi K, Abe F (2013) Novel angiotensin I-converting enzyme inhibitory peptide derived from bovine casein. Food Chem 141:3781–3789CrossRef PubMed
  • 作者单位:Alex Olivares-Molina (1)
    Katherina Fernández (1)

    1. Bioengineering Laboratory, Department of Chemical Engineering, Faculty of Engineering, Universidad de Concepción, Barrio Universitario s/n, P.O. Box 160-C, 4030000, Concepción, Chile
  • 刊物主题:Plant Sciences; Freshwater & Marine Ecology; Plant Physiology; Ecology;
  • 出版者:Springer Netherlands
  • ISSN:1573-5176
文摘
An extraction protocol was developed to maximize the amount of extracts obtained from three brown seaweeds, Lessonia nigrescens (in two stages of development), Macrocystis pyrifera, and Durvillaea antarctica, and to evaluate them as natural inhibitors of the angiotensin I-converting enzyme (ACE). Two extraction methods were used, an enzymatic method (cellulase and α-amylase) and a conventional method (maceration). The extracts were analyzed to determine the extraction yield (%), the total phenolic and carbohydrate concentrations, and the ACE inhibition. Juvenile L. nigrescens extracts obtained by α-amylase exhibited the highest extraction yield (37.72 ± 4.13 %), the highest ACE inhibition (95.61 ± 0.33 %), and the lowest IC50 (10.10 ± 1.55 μg PGE mg−1 seaweed) among the studied extracts. Extraction by maceration produced extracts with chemical characteristics that were less favorable for inhibiting ACE than the enzymatic extraction. The presence of phlorotannins and carbohydrates in these brown seaweeds after enzymatic extraction could be responsible for the superior ACE inhibitory activity of the extracts. Thus, these molecules could be considered as potential phytopharmaceuticals for the development of new ACE inhibitors.

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