[en] The consecutive extraction via different solvents of increasing/decreasing polarity, which
allowed a pre-fractionation of the extracted compounds, is widely used as major method for
extraction of polyphenols. Thus, the phenolic compounds of Ceratonia siliqua L., at unripe
and ripe stages, were extracted by four solvents of increasing polarity (hexane, chloroform,
ethyl acetate, and acetone/water (70:30, v/v), consecutively. The extracts were evaluated for
their total phenolic and flavonoid contents, while the antioxidant capacity was assessed in vitro
using DPPH radical and hydrogen peroxide (H2O2) scavenging assays. The phenolic profile
has been carried out by HPLC-MS/MS. The results showed that the phenolic contents and
antioxidant capacity varied with the nature of extracts and the ripening stage. The 70% aqueous
acetone and the ethyl acetate extracts contained the highest phenolic and flavonoid contents,
and subsequently showed a pronounced scavenging activity on DPPH and hydrogen peroxide at
unripe and ripe stages. The HPLC-MS/MS allowed the identification of five free phenolic acids
(gallic, syringic, cinnamic, p-coumaric and ellagic acid for the first time) and five flavonoids
(apigenin, naringenin, kaempferol, quercetin rhamnoside and myricetin rhamnoside) at both
ripening stages.
Bachir Bey, M., Meziant, L., Benchikh, Y. and Louaileche, H. 2014. Deployment of response surface methodology to optimize recovery of dark fresh fig (Ficus carica L., var. Azenjar) total phenolic compounds and antioxidant activity. Food Chemistry 162: 277-282
Baravalia, Y., Kaneria, M., Vaghasiya, Y., Parekh, J. and Chanda, S. 2009. Antioxidant and antibacterial activity of Diospyrose benum Roxb. leaf extracts. Turkish Journal of Biology 33: 159-164
Batlle, I. and Tous, J. 1997. Carob tree: Ceratonia siliqua L. Promoting the conservation and use of underutilized and neglected crops.17, p.9-20. Institute of Plant Genetics and Crop Plant Research, Gatersleben/International Plant Genetic Resources Institute, Rome, Italy
Bekir, J., Mars, M., Souchard J.P. and Bouajila, J. 2013. Assessment of antioxidant, anti-inflammatory, anticholinesterase and cytotoxic activities of pomegranate (Punica granatum) leaves. Food Chemical and Toxicology 55: 470-475
Benchikh, Y. and Louaileche, H. 2014. Effects of extraction conditions on the recovery of phenolic compounds and in vitro antioxidant activity of carob (Ceratonia siliqua L.) pulp. Acta Botanica Gallica: Botany Letters 161(2): 175-181
Benchikh, Y., Louaileche, H., George, B. and Merlin, A. 2014. Changes in bioactive phytochemical content and in vitro antioxidant activity of carob (Ceratonia siliqua L.) as influenced by fruit ripening. Industrial Crops and Products 60: 298-303
Benchikh, Y., Paris, C., Louaileche, H., Charbonnel, C., Ghoul, M., Chebil, L. 2016. Comparative characterization of green and ripe carob (Ceratonia siliqua L.): physicochemical attributes and phenolic profile. SDRP-Journal of Food Science & Technology 2 (1): 1-7
Bernardo-Gil, M.G., Roque, R., Roseiro, L.B., Duarte, L.C., Gírio, F. and Esteves, P. 2011. Supercritical extraction of carob kibbles (Ceratonia siliqua L.). The Journal of Supercritical Fluids 59: 36-42
Bourgaud, F., Gravot, A., Milesi, S., Gontier, E., 2001. Production of plant secondary metabolites: a historical perspective. Plant Science 161: 839-851
Brand-Williams, W., Cuvelier, M. and Berset, E.C. 1995. Use of a free radical method to evaluate antioxidant activity. Lebensmittel-Wissenschaft and Technology 28:25-30
Chaalal, M., Touati, N. and Louaileche, H. 2012. Extraction of phenolic compounds and in vitro antioxidant capacity of prickly pear seeds. Acta Botanica Gallica 159:467-475
Corsi, L., Avallone, R., Cosenza, F., Farina, F., Baraldi, C. and Baraldi, M. 2002. Antiproliferative effects of Ceratonia siliqua L. on mouse hepatocellular carcinoma cell line. Fitoterapia 73: 674-684
Crozier, A., Jaganath, I.B. and Clifford, M.N. 2006. Phenols, Polyphenols and Tannins: An Overview. In Heap, Crozier, A., Clifford, M. N. and Ashihara, H. (Eds). Plant Secondary Metabolites: Occurrence, Structure and Role in the Human Diet, p. 1-24. UK: Blackwell Publishing Ltd
Custódio, L., Fernandes, E., Escapa, A.L., Fajardo, A., Aligué, R., Alberício, F., Neng, N.-R., Nogueira, J.M.F. and Romano, A. 2011. Antioxidant and cytotoxic activities of carob tree fruit pulps are strongly influenced by gender and cultivar. Journal of Agriculture and Food Chemistry 59: 7005-7012
Dorman, H.J.D. and Hiltunen, R. 2004. Fe (III) reductive and free radical-scavenging properties of summer savory (Satureja hortensis L.) extract and subfractions. Food Chemistry 88:193-199
El Hajaji, H., Lachkar, N., Alaoui, K., Cherrah, Y., Farah, A., Ennabili, A., El Bali, B. and Lachkar, M. 2011. Antioxidant activity, phytochemical screening, and total phenolic content of extracts from three genders of carob tree barks growing in Morocco. Arabian Journal of Chemistry 4: 321-324
Food and Agriculture Organization of the United Nations (FAO). (2015). Retrieved on March 09, 2016 from Website: http://faostat.fao.org/site/567/desktopdefault. aspx
Gross, G. G. 1985. Biosynthesis and Metabolism of Phenolic Acids and Monolignols. In Heap, Higuchi, T. (Ed). Biosynthesis and Biodegradation of Wood Components, p. 229-271. USA: Academic Press Inc
Gull, J., Sultana, B., Anwar, F., Naseer, R., Ashraf, M. and Ashrafuzzaman, M. 2012. Variation in antioxidant attributes at three ripening stages of guava (Psidium guajava L.) fruit from different geographical regions of Pakistan. Molecules17: 3165-3180
Halliwell, B. and Gutteridge, J.M.C. 1981. Formation of thiobarbituric acid reactive substances from deoxyribose in the presence of iron salts: the role of superoxide and hydroxyl radicals. FEBS Letters 128: 347-352
Jan, S., Rashid Khan, M., Rashid, U. and Bokhari, J. 2013. Assessment of Antioxidant Potential, Total Phenolics and Flavonoids of Different Solvent Fractions of Monotheca Buxifolia Fruit. Osong Public Health and Research Perspectives 4: 246-254
Kaneria, M.J., Bapodara, M.B. and Chanda, S.V. 2012. Effect of extraction techniques and solvents on antioxidant activity of pomegranate (Punica granatum L.) leaf and stem. Food Analytical Methods 5: 396-404
Karababa, E. and Coskuner, Y. 2013. Physical properties of carob bean (Ceratonia siliqua L.): an industrial gumyielding crop. Industrial Crops and Products 42: 440-446
Khled khoudja, N., Boulekbache-Makhlouf, L. and Madani, K. 2014. Antioxidant capacity of crude extracts and their solvent fractions of selected Algerian Lamiaceae. Industrial Crops and Products 52: 177-182
Kriaa, W., Fetoui, H., Makni, M., Zeghal, N. and Drira, N.E. 2013. Phenolic Contents and Antioxidant Activities of Date Palm (Phoenix dactylifera L.) Leaves. International Journal of Food Properties.1220-1232
Makris, D.P. and Kefalas, P. 2004. Carob pod (Ceratonia siliqua L.) as source of polyphenolic antioxidants. Food Technology and Biotechnology 42: 105-108
Morton, J. F. 1987. Carob. Fruits of warm climates, p.65-69. Miami: Creative Resource Systems, Inc
Naczk, M. and Shahidi, F. 2004. Extraction and analysis of phenolics in food. Journal of Chromatography A 1054: 95-111
Ouzounidou, G., Vekiari, S., Asfi, M., Gork, M.G., Sakcali, M.S. and Ozturk, M. 2012. Photosynthetic characteristics of Carob Tree (Ceratonia siliqua L.) and chemical composition of its fruit on diurnal and seasonal basis. Pakistan Journal of Botany 44:1689-1695
Owen, R.W., Haubner, R., Hull, W.E., Erben, G., Spiegelhalder, B., Bartsch, H. and Haber, B. 2003. Isolation and structure elucidation of the major individual polyphenols in carob fibre. Food Chemistry and Toxicology 41: 1727-1738
Papagiannopoulos, M., Wollseifen, H.R., Mellenthin, A., Haber, B. and Galensa, R. 2004. Identification and quantification of polyphenols in carob fruit (Ceratonia siliquia L.) and derived products by HPLC-UV-ESI/MS. Journal of Agricultural and Food Chemistry 52: 3784-3791
Patel, DK., Kumar, R., Prasad, SK. and Hemalatha, S. 2011. Pedalium murex Linn (Pedaliaceae) fruits: a comparative antioxidant activity of its different fractions. Asian Pacific Journal of Tropical Biomedicine. 395-400
Quettier-Deleu, C., Gressier, B., Vasseur, J., Dine, T., Brunet, C., Luyckx, M., Cazin, M., Cazin, J.C., Bailleul, F. andTrotin, F. 2000. Phenolic compounds and antioxidant activities of buckweat (Fagopyrum esculentum Moench) hulls and flour. Journal of Ethnopharmacology 72:35-42
Rice-Evans, C. A., Miller, N. J., and Paganga, G. 1996. Structure-antioxidant activity relationships of flavonoids and phenolic acids. Free Radical Biology and Medicine 20 (7): 933-956
Roseiro, L.B., Duarte, L.C., Oliveira, D.L., Roque, R., Bernardo-Gil, M.G., Martins, A.I., Sepúlveda, C., Almeida, J., Meireles, M., Gírio, F.M. and Rauter, A.P. 2013. Super-critical, ultrasound and conventional extracts from carob (Ceratonia siliqua L.) biomass: effect on the phenolic profile and antiproliferative activity. Industrial Crops and Products 47: 132-138
Roukas, T. 1999. Citric acid production from carob pod by solid-state fermentation. Enzyme Microbiology and Technology 24: 54-59
Ruch, R.J., Cheng, S.J. and Klaunig, J.E. 1989. Prevention of cytotoxicity and inhibition of intercellular communication by antioxidant catechins isolated from Chinese green tea. Carcinogenesis 10: 1003-1008
Samanta, A., Das G. and Das S.K. 2011. Roles of flavonoids in plants. International Journal of Pharmaceutical Science and Technology 6: 12-35
Sebai, H., Souli, A., Chehimi, L., Rtibi, K., Amri, M., El-Benna, J. and Sakly, M. 2013. In vitro and in vivo antioxidant properties of Tunisian carob (Ceratonia siliqua L.). Journal of Medicinal Plants Research 7: 85-90
Singleton, V.L. and Rossi, J.A. 1965. Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagents. American Journal Enology and Viticulture 16: 144-158