Chemical Composition and Bioactive Compounds of Wild Edible Mushroom (Agaricus bisporus) from Al-Jabal Alakhdar in Libya | ||||
Journal of the Advances in Agricultural Researches | ||||
Article 5, Volume 23, Issue 3 - Serial Number 88, September 2018, Page 444-465 PDF (607.25 K) | ||||
Document Type: Research papers | ||||
View on SCiNiTO | ||||
Authors | ||||
Ahmed Aboubakr; Ashraf Zeitoun; Ahmed Elsaid Abdalla | ||||
Food Science Department, Faculty of Agriculture Saba Basha, Alexandria University | ||||
Abstract | ||||
Consumption of mushroom has increased remarkably because of their desirable aroma, taste and high nutritional content. Wild edible mushrooms are well known for their nutritious and antioxidant properties. The present study was conducted to evaluate chemical composition and nutritional values as well as evaluate the quality characteristics of sponge cake supplemented with Libyan wild edible mushroom(Agaricus bisporus). The results showed that wild edible mushroom contained high levels of proteins, fiber and total phenols and contained bioactive compounds as flavonoids, anthocyanins, tocopherols, ascorbic acid, β-carotene and lycopene. Wild edible mushroom contained considerably high amounts of minerals which the most abundant elements were potassium, calcium, sodium and magnesium followed by the iron, zinc and copper. Wild mushroom was rich source of essential and non-essential amino acids which eighteen amino acids were described. The major unsaturated fatty acids found in the studied samples were linoleic acid (C18:2) and oleic acid (C18:1), and the major saturated fatty acid was palmitic acid (C16:0). Chemical composition and sensory evaluation of sponge cake supplemented with 20% mushroom powder showed that prepared cake contained more protein and fiber and cake rated the most acceptable. Due to the investigated bioactive compounds of Libyan mushroom and its well-balanced nutritional profile, this mushroom can be consumed as functional food and further used as a medicinal ingredient. | ||||
Keywords | ||||
Edible Mushroom; chemical composition; bioactive compounds; nutritional content | ||||
References | ||||
Abdel-Kader, Z.M. (2001). “Enrichment of Egyptian Balady bread part 2: nutritional values and biological evaluation of enrichment with decorticated cracked broad bean flour (Vicia faba L)”, Nahrung Food, 45, 31-34.
Abdolgader, R.E., Bellail, A.A., Mousa, M.M. and Abraheem, M.F. (2016). Proximate and Mineral Contents in Fruiting Bodies of Edible Wild Mushroom from Al-Jabal Alakhdar Province/Libya. Ijsrm.Human, 4, 123-147.
Abraheem, M. (2015). Study of chemical composition and some heavy metal levels in wild edible mushrooms growing in Al-Jabel Alakhdar region of Libya. M.Sc. Thesis, University of Omar Al-Mukhtar, Libya.
Abugria, D.A. and McElhenney, W.H. (2013). Extraction of total phenolic and flavonoids from edible wild and cultivated medicinal mushrooms as affected by different solvents. J. Nat. Prod. Plant Resour., 3, 37-42.
Abugri , D.A., McElhenney, W.H. and Willian, K.R. (2017). Fatty Acid Profiling in Selected Cultivated Edible and Wild Medicinal Mushrooms in Southern United States. Journal of Experimental Food Chem., 2, 1-7.
Agrahar-Murugkar, D. and Subbulakshmi, G. (2005). Nutritional value of edible wild mushrooms collected from Meghalaya. Food Chem., 89, 599-603.
Agu, H.O., Ukonze, J.A. and Paul, K.A. (2010). Quality characteristics of bread made from wheat and mushroom, Nigerian Food J., 28, 188-198.
Akata, B., Ergönül, E. and Kalyoncu, F. (2012). Chemical Compositions and Antioxidant Activities of Wild Edible Mushroom. Int. J. Pharmacol., 8, 134–138.
Akyüz, M. and Kirbağ, S. (2010). Nutritive value of wild edible and cultured mushrooms. Turkish J. of Biology, 34, 97-102.
Alfaig, E.A. (2017). Chemical composition and nutritional value of some wild mushrooms in Blue Nile State. PhD Thesis, Omdurman Islamic University, Sudan
Arora, B., Kamal, S. and Sharma, V. (2017). Sensory, nutritional and quality attributes of sponge cake supplemented with mushroom (Agaricus bisporus) powder. Nutri. and Food Sci., 47, 578-590.
Atri, N.S., Sharma, S.K., Joshi, R., Gulati, A. and Gulati, A. (2013). Nutritional and Neutraceutical composition of five wild culinary-medicinal species from Northwest India. Inter. J. of medicinal mushrooms, 15, 49-56.
AOAC (2006). Official Methods of Analysis. 18th Edn. Association of Official Analytical Chemists Inc., Arlington, TX., USA.
Barroetaveña, C. and Toledo, C.V. (2017). Functional Food Properties and Applications. In "Wild Plants, Mushrooms and Nuts": Ed. I. C. F. R. Ferreira, P. Morales and L. Barros, John Wiley & Sons, Ltd., pp. 65–81.
Barros, L., Venturini, B., Baptista, P., Estevinho, L. and Ferreira, I. (2008a). Chemical Composition and Biological Properties of Portuguese Wild Mushrooms: A Comprehensive Study. J. Agric. Food Chem., 56, 3856–3862.
Barros, L., Cruz, T., Baptista, P., Estevinho, L. and Ferreira, I. (2008b). Wild and commercial mushrooms as source of nutrients and nutraceuticals. Food and Chem. Toxicol., 46, 2742–2747.
Barros, L., Ferreira, M.J., Queiros, B., Ferreira, I. and Baptista, P. (2007). Total phenols, ascorbic acid, beta- carotene and lycopene in Portuguese wild edible mushrooms and their antioxidant activities. Food Chem., 103, 413-419.
Barros, L., Dueñas, M., Ferreira, I. and Morris, M. (2009). Phenolic acids determination by HPLC-DAD-ESI/MS in sixteen different Portuguese wild mushrooms species. Food Chem. Toxicol., 47, 1076-1079.
Bernaś, E., Jaworska, G. and Kmiecik, W. (2006). Storage and processing of edible mushrooms. Acta Sci. Pol. Technol. Aliment., 5, 5–23.
Bhushan, A. and Kulshreshtha, M. (2018). The medicinal mushroom Agaricus bisporus: Review of phytopharmacology and potential role in the treatment of various diseases. J. of Nature and Sci. of Medicine, 1, 1-9.
Celestine., A., Venturini, B. and Baptista, P. (2013). Proximate and mineral element compositions of five edible wild Mushroom species in Nigeria. Research J. of Pharmaceutical, Biological and Chemical Sci.,4, 22 -29.
Cheung, L. M., Cheung, P. C. and Ooi, V. E. (2003). Antioxidant activity and total phenolics of edible mushroom extracts. Food Chem., 81, 249–255.
Colak, A., Faiz, Ö. and Sesli, E. (2009). Nutritional composition of some wild edible mushrooms. Turkish J. of Biochem., 34, 25–31.
Cruz, C., Noel-Suberville, C. and Montury, M. (1997). Fatty acid content and some flavour compound release in two strains of Agaricus bisporus according to three stages of development. J. Agric. Food Chem., 45, 64-67.
Elmastas, M., Isildak, O., Turkekul, I. and Temur, N. (2007). Determination of antioxidant activity and antioxidant compounds in wild edible mushrooms, J. Food Compos. Anal., 20, 337–345.
FAO/WHO (1989). Protein quality evaluation. Report of the joint FAO/WHO expert consultation. Food and Nutrition Paper 51; Food and Agriculture Organizations and the World Health Organization:Rome, Italy.
Fernandes, A., Petrović, J., Barros, L., Soković, M., Martins, A. and Ferreira, I. C. F. R. (2016). Chemical characterization, screening of the bioactive properties and specific antimicrobial effects.LWT–Food Sci. Technol., 69, 91–97.
Ferreira, I.C.F.R., Vaz, J.A.,Vasconcelos, M.H. and Anabela, M. (2010). Compounds from wild mushrooms with antitumor potential. Anti-Cancer Agents in Medicinal Chem., 10, 424-436.
Folch, J., Lees, M. and Bloune, S.G. (1957). A simple method for their isolation and purification of total lipids from animal tissues. Biological Chem., 266, 497-509.
Gan, C., Amira, B. and Asmah, R. (2013). Antioxidant analysis of different types of edible mushrooms. Int. Food Res. J., 20, 1095-1102.
Gąsecka, M., Siwulski, M. and Mleczek, M. (2017). Evaluation of bioactive compounds content and antioxidant properties of soil-growing and wood-growing edible mushrooms, J. Food Process. Preserv., 11, 13386 - 13395.
Gençcelep, H., Uzun, Y., Tunçtürk, Y. and Demirel, K. (2009). Determination of mineral contents of wild edible mushrooms. Food Chem., 113, 1033-1036.
Goyal, R., Grewal, R. and Goyal, R. (2015). Fatty acid composition and dietary fibre constituents of mushrooms of North India. Emirates J. of Food and Agri., 27, 927-930.
Greenfield, H., and Southgate, D. (1992). Determination of food carbohydrates, London, Applied Science Publishers.
He, J. and Giusti, M.M. (2010). Anthocyanins: natural colorants with health-promoting properties. Annu. Rev. Food Sci. Technol., 1, 163-187.
Johnsy, G., Sargunam, S.D., Dinesh, M.G. and Kaviyarasan, V. (2011). Nutritive value of edible wild mushrooms. Botany Res. Inter., 4, 69-74.
Kalac, P. (2016). Edible Mushrooms: Chemical composition and nutritional value. Academia press, USA.
Kalac, P. (2012). Chemical composition and nutritional value of European species of wild growing mushrooms. In " Mushrooms: Types, properties and nutrition ". Nova Science Publisher, Andres and N. Baumann (Eds.), pp. 130–151.
Kalac, P. and Svoboda, L. (2000). A review of trace element concentrations in edible mushrooms. Food Chem., 69, 273-281.
Kaya, A., Gençcelep, H., Uzun, Y. and Demirel, K. (2011). Analysis of trace metal levels in wild mushrooms. Asian J. of Chem., 23, 1099-1103.
Koyyalamudi, S.R., Vysetti, B. and Pang, G. (2013). Micronutrient mineral content of the fruiting bodies of Australian cultivated Agaricus bisporus white button mushrooms. J. of Food Composition and Analysis, 31, 109-114.
Kumari, B and Atri, N.S. (2014). Nutritional and nutraceutical potential of wild edible macrolepiotoid mushrooms of north India. Inter. J. of Pharmacy and Pharmaceutical Sciences, 6, 200-204.
Lee, K., Yun., I., Kim, K. and Job, J. (2011). Amino acid and fatty acid compositions of edible mushroom. J. Food Compost. Anal., 24, 175-178.
Liu, Y., Sun, J., Luo, Z., Rao, S. and Xu, R. (2012). Chemical composition of five wild edible mushrooms collected from southwest China and their antihyperglycemic and antioxidant activity. Food and Chemical Toxicol., 50, 1238–1244.
Liu, J., Jia, L. and Kan, J. (2013). In vitro and in vivo antioxidant activity of ethanolic extract of white button mushroom. Food Chem. Toxicol., 51, 310-316.
Longvah, J. and Y. G. Deosthale. (1998). Compositional and nutritional studies on edible wild mushroom from Northeast India. Food Chem., 63, 331-334.
Magga, J. A. (1981). Mushroom flavor. J. Agric. Food Chem., 29, 1-4.
Mallikarjuna, A., Ranjini,M. and Vijayalakshmi, N. (2012). Mineral Composition of Four Edible Mushrooms from India. J. of Chem., 80, 5280-5284.
Mandeel, Q.A. and Al-Laith, A.A. (2007). Ethnomycological aspects of the desert truffle among native Bahraini and non-Bahraini peoples of the Kingdom of Bahrain. J. Ethnopharm., 110, 118-129.
Mattila, P., Könkö, K. and Jalava, T. (2002). Basic composition and amino acid contents of mushrooms cultivated in Finland. J Agric. Food Chem., 50, 6419–6422.
Mocan, A., Fernandes, A., Barros, L., Crişan, G., Smiljković, M. and Ferreira, C. (2017). Chemical composition and bioactive properties of the wild mushroom: a study with samples from Romania. Food and Function Food, 11, 45-52.
Muszyńska, B., Opoka, W., Zając, M. and Rojowski, J. (2013). Edible mushrooms in prophylaxis and treatment of human diseases. Med. Inter. Rev., 101, 170–183.
Nagy, M. (2016). Research regarding the upper valorisation of some vegetable sources rich in bioactive compounds in order to obtain an innovative meat product. Ph.D. Thesis.University of Garanada, South Africa.
Nakalembe, I., Kabasa, J. D. and Olila, D. (2015). Comparative nutrient composition of selected wild edible mushrooms from two agro-ecological zones, Uganda. Springer Plus, 4, 1-15.
Novaes, M., Valadares, F., Reis, M., Gonçalves, D. and Menezes, M. (2011). The effects of dietary supplementation with Agaricales mushrooms and other medicinal fungi on breast cancer. Clinics (Sao Paulo), 66, 2133–2139.
Okafor, J., Okafor, G.I/, Ozumba, A.U. and Elemo, G.N. (2012). Quality characteristics of bread made from wheat and Nigerian oyster mushroom (Pleurotus pulmonarius) powder. Pakistan J. of Nutri., 11, 5-10. Omer, I. (2017). Chemical composition and nutritional value of wild mushrooms in Blue Nile State. Ph.D. Thesis, Sudan University of Science and Technology, Sudan.
Ozturk, M, Kivrak, S. Turkoglu, A. and Ozler, M. (2011). In vitro antioxidant and antimicrobial activity studies on three Agaricus species with fatty acid compositions and iron contents. Food Chem. Toxicol., 49, 1353–1360.
Pereira, E., Barros, L., Martins, A. and Ferreira, I.C.F.R. (2012). Towards chemical and nutritional inventory of Portuguese wild edible mushrooms in different habitats. Food Chem., 130, 394–403.
Rai, R. D., Ahlawat, O. P. and Verma, R. N. (1998). Nutritional value and postharvest technology of mushrooms. National Research Centre for Mushroom, Chambaghat, Solan.
Reis, F. S., Barros, L., Martins, A. and Ferreira, I. C. F. R. (2012). Chemical composition and nutritional value of the most widely appreciated cultivated mushrooms: An inter-species comparative study, Food Chem. Toxicol., 50, 191–197.
Reis, F. S., Pereira, E., Martins, A. and Ferreira, I.C. (2011). Biomolecule profiles in edible wild mushrooms with antioxidant value. Molecules, 16, 4328-4338.
Roedig-Penman, A., and Gordon, M. (1998). Antioxidant properties of myricetin and quercetin in oil. J. of the American Oil Chemists' Society, 75, 169-180.
Salehi, F., Kashaninejad, M., Fereshteh, A. and Najafi, A. (2016). Improvement of quality attributes of sponge cake using infrared dried button mushroom. J Food Sci. Technol., 53, 1418–1423.
Sankara-Rao, J., Kumar, K. and Kartheek, V. (2013). Bioactive molecules and their antioxidant activity of Agaricus bisporus. J. Chem. Biol. Sci., 3, 1222-1228.
Schellman, B., Hilz, M.J. and Opitz, O. (1980). Cadmium an Kopfer Ausscheidung nach Aufnahme von Champignon-mahlzeiten. Zeitschrift für Lebensmittel-Untersuchung und-Forschung, 171, 189-192.
Senatore, F., Dini, A. and Marino, A. (1988). Chemical constituents of some Basidiomycetes. J. Sci. Food Agric., 45, 337-345.
Sesseira, I.C., Barros, L. and, Abreu, R.M. (2009). Antioxidants in wild mushrooms. Curr. Med. Chem., 16, 1543-1560.
Sheikh, M.A., Kumar, A., Islam, M. and Mahomud, M. (2010). The effect of mushroom powder on the quality of cake. Progress. Agric., 21, 205 – 214.
Singleton, V.L. and Rossi, J.A. (1965). Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagents. Am. J. Enol. Vitic., 16, 144-158.
Soković, M., Ćirić, A., Glamočlija, A. and Stojković, D. (2017). Functional Food Properties and Applications In: "Wild Plants, Mushrooms and Nuts". Ed. I. C. F. R. Ferreira, P. Morales and L. Barros, John Wiley & Sons, Ltd., pp. 83–122.
Soylak, M., Saracoðlu, S. and Mendil, D. (2005). Determination of trace metals in mushroom samples from Kayseri, Turkey. Food Chem., 92, 649-652.
Svoboda, L., Zimmermannova, K. and Kalac, P. (2000). Concentrations of mercury, cadmium, lead and copper in fruiting bodies of edible mushrooms. Sci. of the Total Environ., 246, 61-67.
Sudheepa, N. M. and Sridhar, K. R. (2014). Nutritional composition of two wild mushrooms consumed in India. Mycology, 5, 64–72.
Tajalli, F., Soltanian, H., Rezaeian, S. and Pourianfar, H. (2015). Antioxidant capacity of several Iranian wild and cultivated strains of the button mushroom. Brazilian J. of Microbiology, 46, 769-776.
Taofiq, O., Heleno, S.A., Calhelha, R. C., Alves, M. J., Barros, L. nd Ferreira, I. C. F. R. (2017). The potential of Ganoderma lucidum extracts as bioactive ingredients in topical formulations. Food Chem. Toxicol., 108, 139–147.
Toledo, C. V., Barroetaveñ, C., Fernandes, A., Barros, L. and Ferreira, I. C. F. R. (2016). Chemical and antioxidant properties of wild edible mushrooms from native nothofagus spp. forest, Argentina, Molecules, 21, 1–15.
Trappe, J.M., Claridge, A., Arora, D. and Smit, W. (2008). Desert truffles of the African Kalahari: ecology, ethnomycology, and taxonomy. Econ. Bot., 62, 521–529.
Tseng, Y. and Mau, J. (1999). Nucleotides in mushrooms, Agaricus bisporus, during post-harvest storage. J. of the Sci. of Food and Agric., 79, 1519-1523.
Upadhyaya, J., Raut, J. and Koirala, N. (2017). Analysis of nutritional and nutraceutical properties of wild mushrooms of Nepal. Microbiology, 12, 136-145.
Uzun, Y., Genccelep, H., Kaya, A. and Akcay, M. (2011). The Mineral Contents of some wild edible mushrooms. Ekoloji, 20, 6-12.
Vamanu, E. and Nita, S. (2014). Antioxidant capacity and the correlation with major phenolic compounds, anthocyanin, and tocopherol content in various extracts from the wild edible Boletus edulis mushroom. BioMed research inter., 313, 905-910.
Verma, A. and Singh, V. (2014). Nutritional value and organoleptic evaluation of mushroom powder fortified Indian. Asian J. of Home Sci., 9, 78-81.
Vishwakarma, P., Singh, P. and Tripathi, N.N. (2017). Nutritional and antioxidant properties of wild edible macrofungi from North-Eastern Uttar Pradesh, India. Indian J. of Traditional Knowledge, 15, 143-148.
Wandati, W. (2013). Nutritional composition of wild edible mushrooms growing in Kenya and their utilization in food product development. M.Sc. Thesis, Kenyatta University of Agriculture and Technology, Kenya.
WHO (1993). Guidelines and upper limit of elements constitute in food. WHO publication Rome, pp 88-100.
Wang, X.M., Zhang, J., Wu, L.H., Zhao, Y.L., Tao, L., Li, J.Q., Wang, Y.Z. and Liu, H.G. (2014). A mini-review of chemical composition and nutritional value of edible wild-grown mushroom from China. Food Chem., 151, 279–285.
Yoo, Y.M., Nam, J.H., Kim, M.Y., Choi, J. and Park H.J. (2008). Pectolinarin prevent the hepatic injury in rats caused by d-galactosamine via an antioxidant mechanism. Biological and Pharmaceutical Bulletin, 31, 760–764. | ||||
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