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Review

Nutritional Quality of Wet and Dry Processed Moringa oleifera Lam. Leaves: A Review

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References

  • Jahn, S. A. A. On the Introduction of a Tropical Multipurpose Tree to China, Traditional and Potential Utilization of Moringa Oleifera Lamarck. Senckenb. Biol. 1996, 75(1/2), 243–254.
  • Amaglo, N. K.; Bennett, R. N.; Lo Curto, R. B.; Rosa, E. A. S.; Lo Turco, V.; Giuffrida, A.; Curto, A. L.; Crea, F.; Timpo, G. M. Profiling Selected Phytochemicals and Nutrients in Different Tissues of the Multipurpose Tree Moringa Oleifera Lam. Grown in Ghana. Food Chem. 2010, 122(4), 1047–1054. DOI: 10.1016/j.foodchem.2010.03.073.
  • Pandey, A.; Pradheep, K.; Gupta, R.; Nayar, E. R.; Bhandari, D. C. ‘Drumstick Tree’ (Moringa Oleifera Lam.), A Multipurpose Potential Species in India. Genet. Resour. Crop Evol. 2011, 58(3), 453–460. DOI: 10.1007/s10722-010-9629-6.
  • Leone, A.; Spada, A.; Battezzati, A.; Schiraldi, A.; Aristil, J.; Bertoli, S. Cultivation, Genetic, Ethnopharmacology, Phytochemistry and Pharmacology of Moringa Oleifera Leaves, an Overview. Int. J. Mol. Sci. 2015, 16(6), 12791–12835. DOI: 10.3390/ijms160612791.
  • Falowo, A. B.; Mukumbo, F. E.; Idamokoro, E. M.; Lorenzo, J. M.; Afolayan, A. J.; Muchenje, V. Multi-functional Application of Moringa Oleifera Lam. In Nutrition and Animal Food Products, A Review. Food Res. Int. 2018, 106, 317–334. DOI: 10.1016/j.foodres.2017.12.079.
  • Nouman, W.; Anwar, F.; Gull, T.; Newton, A.; Rosa, E.; Domínguez-PERLES, R. Profiling of Polyphenolics, Nutrients and Antioxidant Potential of Germplasm’s Leaves from Seven Cultivars of Moringa Oleifera Lam. Ind. Crop Prod. 2016, 83, 166–176. DOI: 10.1016/j.indcrop.2015.12.032.
  • Oyeyinka, A. T.; Oyeyinka, S. A. Moringa Oleifera as a Food Fortificant, Recent Trends and Prospects. J. Saudi Soc. Agric. Sci. 2016, 17(2), 127–136.
  • Anwar, F.; Latif, S.; Ashraf, M.; Gilani, A. H. Moringa Oleifera, a Food Plant with Multiple Medicinal Uses. Phytother. Res. 2007, 21(1), 17–25. DOI: 10.1002/ptr.2023.
  • Coppin, J. P.; Xu, Y.; Chen, H.; Pan, M.-H.; Ho, C.-T.; Juliani, R.; Simon, J. E.; Wu, Q. Determination of Flavonoids by LC/MS and Anti-inflammatory Activity in Moringa Oleifera. J. Funct. Foods. 2013, 5, 1892–1899. DOI: 10.1016/j.jff.2013.09.010.
  • Saini, R. K.; Sivanesan, I.; Keum, Y. S. Phytochemicals of Moringa Oleifera, a Review of Their Nutritional, Therapeutic and Industrial Significance. 3 Biotech. 2016, 6(203). DOI: 10.1007/s13205-016-0526-3.
  • Sreelatha, S.; Jeyachitra, A.; Padma, P. R. Antiproliferation and Induction of Apoptosis by Moringa Oleifera Leaf Extract on Human Cancer Cells. Food Chem. Toxicol. 2011, 49(6), 1270–1275. DOI: 10.1016/j.fct.2011.03.006.
  • Gopalakrishnan, L.; Doriya, K.; Kumar, D. S. Moringa Oleifera, A Review on Nutritive Importance and Its Medicinal Application. Food Sci. Hum. Well. 2016, 5(2), 49–56. DOI: 10.1016/j.fshw.2016.04.001.
  • Vorster, H. J.; The Role and Production of Traditional Leafy Vegetables in Three Rural Communities in South Africa. MSc Dissertation, University of Pretoria, Pretoria, South Africa, 2007.
  • Van Rensberg, J.; Van Averbeke, W. S.; Slabbert, W.; Faber, M.; van Jaarsveld, P.; van Heerden, I.; Wenhold, F.; Oelofse, A. African Leafy Vegetables in South Africa. Water SA. 2007, 33, 317–326. DOI: 10.4314/wsa.v33i3.180589.
  • Uusiku, N. P.; Oelofse, A.; Duodu, K. G.; Bester, M. J.; Faber, M. Nutritional Value of Leafy Vegetables of sub-Saharan Africa and Their Potential Contribution to Human Health, A Review. J. Food Compos. Anal. 2010, 23(6), 499–509. DOI: 10.1016/j.jfca.2010.05.002.
  • Bvenura, C.; Afolayan, A. J. Ethnobotanical Survey of Wild Vegetables in Mbashe and Nkonkobe Municipalities, Eastern Cape Province, South Africa. Acta Bot. Gallica. 2014, 161(2), 189–199. DOI: 10.1080/12538078.2014.909327.
  • Popoola, J. O.; Obembe, O. O. Local Knowledge, Use Pattern and Geographical Distribution of Moringa Oleifera Lam. (Moringaceae) In. Nigeria. J. Ethnopharmacol. 2013, 150(2), 682–691. DOI: 10.1016/j.jep.2013.09.043.
  • Stevens, G. C.; Baiyeri, K. P.; Akinnnagbe, O. Ethno-medicinal and Culinary Uses of Moringa Oleifera Lam. In Nigeria. J. Med. Plants Res. 2013, 7, 799–804.
  • Freiberger, C. E.; Vanderjagt, D. J.; Pastuszyn, A.; Glew, R. S.; Mounkaila, G.; Millson, M.; Glew, R. H. Nutrient Content of the Edible Leaves of Seven Wild Plants from Niger. Plant Food Hum. Nutr. 1998, 53(1), 57–69. DOI: 10.1023/A:1008080508028.
  • Gabaza, M.; Muchuweti, M.; Vandamme, P.; Raes, K. Can Fermentation Be Used as a Sustainable Strategy to Reduce Iron and Zinc Binders in Traditional African Fermented Cereal Porridges or Gruels? Food Rev. Int. 2017, 33(6), 561–586. DOI: 10.1080/87559129.2016.1196491.
  • Ramachandran, C.; Peter, K. V.; Gopalakrishnan, P. K. Drumstick (Moringa Oleifera): A Multipurpose Indian Vegetable. Econ. Bot. 1980, 34, 276–283. DOI: 10.1007/BF02858648.
  • UNITED STATES DEPARTMENT OF AGRICULTURE (USDA). USDA National Nutrient Database for Standard Reference http://www.ars.usda.gov/nutrientdata (accessed 11 February 2019 and 23 May 2019).
  • World Health Organization, Food And Agriculture Organization of the United Nations. Guidelines on Food Fortification with Micronutrients; World Health Organization: Geneva, Switzerland, 2006.
  • Shiriki, D.; Igyor, M. A.; Gernah, D. I. Nutritional Evaluation of Complementary Food Formulations from Maize, Soybean and Peanut Fortified with Moringa Oleifera Leaf Powder. Food Nutr. Sci. 2015, 6, 494–500.
  • Glover-Amengor, M.; Aryeetey, R.; Afari, E.; Nyarko, A. Micronutrient Composition and Acceptability of Moringa Oleifera Leaf-fortified Dishes by Children in Ada-East District, Ghana. Food Sci. Nutr. 2016, 5(2), 317–322. DOI: 10.1002/fsn3.395.
  • Olson, M. E.; Sankaran, R. P.; Fahey, J. W.; Grusak, M. A.; Odee, D.; Nouman, W. Leaf Protein and Mineral Concentrations across the “Miracle Tree” Genus Moringa. PLoS ONE. 2016, 11(7), e0159782. DOI: 10.1371/journal.pone.0159782.
  • Arise, A. K.; Arise, R. O.; Sanusi, M. O.; Esan, O. T.; Oyeyinka, S. A. Effect of Moringa Oleifera Flower Fortification on the Nutritional Quality and Sensory Properties of Weaning Food. Croatian J. Food Sci. Tech. 2014, 6(2), 65–71. DOI: 10.17508/CJFST.2014.6.2.01.
  • Hernandez, H.; Montalvo, I.; Sousa, V.; Sotelo, A. The Protein Efficiency Ratios of 30:70 Mixtures of Animal, Vegetable Protein are Similar or Higher than Those of the Animal Food Alone. J. Nutr. 1996, 126(2), 571–584.
  • Hassan, F. A. M.; Bayoumi, H. M.; Abd EL-Gawad, M. A. M.; Enab, A. K.; Youssef, Y. B. Utilization of Moringa Oleifera Leaves Powder in Production of Yoghurt. Int. J. Dairy Sci. 2016, 11, 69–74. DOI: 10.3923/ijds.2016.69.74.
  • Sánchez-Machado, D.; Núñez-Gastélum, J. A.; Reyes-Moreno, C.; Ramírez-Wong, B.; López-Cervantes, J. Nutritional Quality of Edible Parts of Moringa Oleifera. Food Anal. Methods. 2010, 3(3), 175–180. DOI: 10.1007/s12161-009-9106-z.
  • Gibson, R. S.; Perlas, L.; Hotz, C. Improving the Bioavailability of Nutrients in Plant Foods at the Household Level. Proc. Nutr. Soc. 2006, 65(2), 160–168. DOI: 10.1079/PNS2006489.
  • Joint FAO/WHO Expert Consultation on Human Vitamin and Mineral Requirements. Vitamin and Mineral Requirements in Human Nutrition: Report of a Joint FAO/WHO Expert Consultation, Bangkok, Thailand, 21–30 September 1998; World Health Organization: Rome, Italy, 2004.
  • Gupta, K.; Barat, G. K.; Wagle, D. S.; Chawla, H. K. L. Nutrient Contents and Antinutritional Factors in Conventional and Non-conventional Leafy Vegetables. Food Chem. 1989, 31(2), 105–116. DOI: 10.1016/0308-8146(89)90021-6.
  • Barminas, J. T.; Charles, M.; Emmanuel, D. Mineral Composition of Non-conventional Leafy Vegetables. Plant Food Hum. Nutri. 1998, 53(1), 29–36. DOI: 10.1023/A:1008084007189.
  • Jongrungruangchok, S.; Bunrathep, S.; Songsak, T. Nutrients and Minerals Content of Eleven Different Samples of Moringa Oleifera Cultivated in Thailand. J. Health Res. 2010, 24(3), 123–127.
  • Valdez-Solana, M. A.; Mejĺa-Garcĺa, V. Y.; Téllez-Valencia, A.; García-Arenas, G.; Salas-Pacheco, J.; Alba-Romero, J. J.; Sierra-Campos, E. Nutritional Content and Elemental and Phytochemical Analyses of Moringa Oleifera Grown in Mexico. J. Chem. 2015, 2015, 1–9. DOI: 10.1155/2015/860381.
  • Abadias, M.; Usall, J.; Anguera, M.; Solsona, C.; Viñas, I. Microbiological Quality of Fresh, Minimally-processed Fruit and Vegetables, and Sprouts from Retail Establishments. Int. J. Food Microbiol. 2008, 123(1–2), 121–129. DOI: 10.1016/j.ijfoodmicro.2007.12.013.
  • Babu, A. K.; Kumaresan, G.; Raj, V. A. A.; Velraj, R. Review of Leaf Drying, Mechanism and Influencing Parameters, Drying Methods, Nutrient Preservation and Mathematical Models. Renew. Sust. Energ. Rev. 2018, 90, 536–556. DOI: 10.1016/j.rser.2018.04.002.
  • Sobukola, O. P.; Dairo, O. U.; Sanni, L. O.; Odunewu, A. V.; Fafiolu, B. O. Thin Layer Drying Process of Some Leafy Vegetables under Open Sun. Food Sci. Technol. Int. 2007, 13(1), 35–40. DOI: 10.1177/1082013207075953.
  • Negi, P. S.; Roy, S. K. Effect of Drying Conditions on Quality of Green Leaves during Long Term Storage. Food Res. Int. 2001, 34(4), 283–287. DOI: 10.1016/S0963-9969(00)00165-4.
  • Murthy, M. V. R. A Review of New Technologies, Models and Experimental Investigations of Solar Driers. Renew. Sust. Energ. Rev. 2009, 13(4), 835–844. DOI: 10.1016/j.rser.2008.02.010.
  • Jain, D.; Tiwari, G. N. Thermal Aspects of Open Sun Drying of Various Crops. Energy. 2003, 28(1), 37–54. DOI: 10.1016/S0360-5442(02)00084-1.
  • Sharma, V. K.; Colangelo, A.; Spagna, G. Experimental Investigation of Different Solar Dryers Suitable for Fruit and Vegetable Drying. Renew. Energ. 1995, 6(4), 413–424. DOI: 10.1016/0960-1481(94)00075-H.
  • Alakali, J. S.; Kucha, C. T.; Rabiu, I. A. Effect of Drying Temperature on the Nutritional Quality of Moringa Oleifera Leaves. Afr. J. Food Sci. 2015, 9(7), 395–399.
  • Mosha, T. C.; Pace, R. D.; Adeyeye, S.; Mtebe, K.; Laswai, H. Proximate Composition and Mineral Content of Selected Tanzanian Vegetables and the Effect of Traditional Processing on the Retention of Ascorbic Acid, Riboflavin and Thiamine. Plant Food Hum. Nutr. 1995, 48(3), 235–245. DOI: 10.1007/BF01088445.
  • Sablani, S. S. Drying of Fruits and Vegetables, Retention of Nutritional/functional Quality. Dry. Technol. 2006, 24(2), 123–135. DOI: 10.1080/07373930600558904.
  • Santos, P. H. S.; Silva, M. A. Retention of Vitamin C in Drying Processes of Fruits and vegetables—A Review. Dry. Technol. 2008, 26(12), 1421–1437. DOI: 10.1080/07373930802458911.
  • Clydesdale, F. M.; Ho, C. T.; Lee, C. Y.; Mondy, N. I.; Shewfelt, R. L. The Effects of Postharvest Treatment and Chemical Interactions on the Bioavailability of Ascorbic Acid, Thiamin, Vitamin A, Carotenoids, and Minerals. Crit. Rev. Food Sci. Nutr. 1991, 30(6), 599–638.
  • Saini, R. K.; Nile, S. H.; Park, S. W. Carotenoids from Fruits and Vegetables, Chemistry, Analysis, Occurrence, Bioavailability and Biological Activities. Food Res. Int. 2015, 76, 735–750. DOI: 10.1016/j.foodres.2015.07.047.
  • Khoo, H.-E.; Prasad, K. N.; Kong, K.-W.; Jiang, Y.; Ismail, A. Carotenoids and Their Isomers, Color Pigments in Fruits and Vegetables. Molecules. 2011, 16, 1710–1711. DOI: 10.3390/molecules16021710.
  • Lavelli, V.; Zanoni, B.; Zaniboni, A. Effect of Water Activity on Carotenoid Degradation in Dehydrated Carrots. Food Chem. 2007, 104(4), 1705–1711. DOI: 10.1016/j.foodchem.2007.03.033.
  • Pénicaud, C.; Achir, N.; Dhuique-Mayer, C.; Dornier, M.; Bohuon, P. Degradation of β-carotene during Fruit and Vegetable Processing or Storage, Reaction Mechanisms and Kinetic Aspects, a Review. Fruits. 2011, 66, 417–440. DOI: 10.1051/fruits/2011058.
  • Djuikwo, V. N. D.; Ejoh, R. A.; Gouado, I.; Mbofung, C. M.; Tanumihardjo, S. A. Determination of Major Carotenoids in Processed Tropical Leafy Vegetables Indigenous to Africa. Food Nutr. Sci. 2011, 2(8), 793–802.
  • Chandler, L. A.; Schwartz, S. J. Isomerization and Losses of Trans-beta-carotene in Sweet Potatoes as Affected by Processing Treatments. J. Agric. Food Chem. 1988, 36(1), 129–133. DOI: 10.1021/jf00079a033.
  • Hollósy, F. Effects of Ultraviolet Radiation on Plant Cells. Micron. 2002, 33(2), 179–197. DOI: 10.1016/S0968-4328(01)00011-7.
  • Saini, R. K.; Shetty, N. P.; Prakash, M.; Giridhar, P. Effect of Dehydration Methods on Retention of Carotenoids, Tocopherols, Ascorbic Acid and Antioxidant Activity in Moringa Oleifera Leaves and Preparation of a RTE Product. J. Food Sci. Technol. 2014, 51(9), 2176–2182. DOI: 10.1007/s13197-014-1264-3.
  • Fellows, P. J. Blanching. In Food Processing Technology, 4th ed.; Fellows, P.J., Ed.; Woodhead Publishing: Duxford, United Kingdom, 2017; pp 525–538.
  • Xiao, Y.; Huang, W.; Li, D.; Song, J.; Liu, C.; Wei, Q.; Zhang, M.; Yang, Q. Thermal Degradation Kinetics of All-trans and Cis-carotenoids in a Light-induced Model System. Food Chem. 2018, 239, 360–368. DOI: 10.1016/j.foodchem.2017.06.107.
  • Esper, A.; Mühlbauer, W. Solar Drying - an Effective Means of Food Preservation. Renew. Energ. 1998, 15(1), 95–100. DOI: 10.1016/S0960-1481(98)00143-8.
  • Canjura, F. L.; Schwartz, S. J.; Nunes, R. V. Degradation Kinetics of Chlorophylls and Chlorophyllides. J. Food Sci. 1991, 56(6), 1639–1643. DOI: 10.1111/j.1365-2621.1991.tb08660.x.
  • Gauthier-Jaques, A.; Bortlik, K.; Hau, J.; Fay, L. B. Improved Method to Track Chlorophyll Degradation. J. Agric. Food Chem. 2001, 49(3), 1117–1122. DOI: 10.1021/jf000384c.
  • Ekechukwu, O. V.; Norton, B. Review of Solar-energy Drying Systems II, an Overview of Solar Drying Technology. Energy Convers. Manag. 1999, 40(6), 615–655. DOI: 10.1016/S0196-8904(98)00093-4.
  • Mongi, R. J.; Ndabikunze, B. K.; Wicklund, T.; Chove, L. M.; Chove, B. E. Effect of Solar Drying Methods on Total Phenolic Contents and Antioxidant Activity of Commonly Consumed Fruits and Vegetables (Mango, Banana, Pineapple and Tomato) in Tanzania. Afr. J. Food Sci. 2015, 9(5), 291–300. DOI: 10.5897/AJFS2015.1232.
  • Nobosse, P.; Fomang, E. N.; Mbofung, C. M. F. The Effect of Steam Blanching and Drying Method on Nutrients, Phytochemicals and Antioxidant Activity of Moringa (Moringa Oleifera L.) Leaves. Am. J. Food Sci. Technol. 2017, 5(2), 53–60.
  • Xiao, H.-W.; Pan, Z.; Deng, L.-Z.; EL-Masha, H.; Yang, X.-H.; Mujumdar, A. S.; Gao, Z.-J.; Zhang, Q. Recent Developments and Trends in Thermal Blanching – A Comprehensive Review. Inform. Process. Agric. 2017, 4, 101–127.
  • Selman, J. D. Vitamin Retention during Blanching of Vegetables. Food Chem. 1994, 49(2), 137–147. DOI: 10.1016/0308-8146(94)90150-3.
  • De Corcuera, J. I. R.; Cavalieri, R. P.; Powers, J. R. Blanching of Foods. In Encyclopedia of Agricultural, Food and Biological Engineering, Heldman, D.R. Ed.; Marcel Dekker Inc: New York, 2004; pp 1–5. DOI: 10.1081/E-EAFE-120030417.
  • Maseko, I.; Mabhaudhi, T.; Tesfay, S.; Araya, H.; Fezzehazion, M.; Plooy, C. African Leafy Vegetables, A Review of Status, Production and Utilization in South Africa. Sustainability. 2018, 10(1), 1–16.
  • Babalola, O. O.; Tugbobo, O. S.; Daramola, A. S. Effect of Processing on the Vitamin C Content of Seven Nigerian Green Leafy Vegetables. Adv. J. Food Sc. Technol. 2010, 2, 303–305.
  • Mziray, R. S.; Imungi, J. K.; Karuri, E. G. Nutrient and Antinutrient in Contents of Raw and Cooked Amaranthus Hybridus. Ecol. Food Nutr. 2001, 40(1), 53–65.
  • Gidamis, A. B.; Panga, J. T.; Sarwatt, S. V.; Chove, B. E.; Shayo, N. B. Nutrient and Antinutrient Contents in Raw and Cooked Young Leaves and Immature Pods of Moringa Oleifera Lam. Ecol. Food Nutr. 2003, 42(6), 399–411. DOI: 10.1080/03670240390268857.
  • Patel, P. B.; Patel, P. V.; Joshi, S. B.; Pandya, D. D.; Chaudhary, M. K.; Patel, B. G.; Joshi, A. B. Effect of Different Blanching Treatments on Ascorbic Acid Retention in Green Leafy Vegetables. Int. J. Agr. Sci. 2016, 8(51), 2353–2355.
  • Waldron, K. W.; Parker, M. L.; Smith, A. C. Plant Cell Walls and Food Quality. Compr. Rev. Food Sci. Food Saf. 2003, 2(4), 128–146. DOI: 10.1111/j.1541-4337.2003.tb00019.x.
  • Hirono, H.; Uesugi, R. Changes in the Content of Pectic Substances in Tea Leaves (Camellia Sinensis L.) During Steam Processing of Green Tea. Food Sci. Technol. Res. 2014, 20(4), 859–865. DOI: 10.3136/fstr.20.859.
  • Musa, N. M.; Ibrahim, M.; Yakubu, S.; Mohammed, U. A.; Joel, A. S. Kinetic Modelling of Vitamin C Degradation in Leafy Vegetables during Blanching. Chem. Biomol. Eng. 2017, 2(4), 173–179.
  • Sreeramulu, N.; Ndossi, G. D.; Mtotomwema, K. Effect of Cooking on the Nutritive Value of Common Food Plants of Tanzania, Part 1—Vitamin C in Some of the Wild Green Leafy Vegetables. Food Chem. 1983, 10(3), 205–210. DOI: 10.1016/0308-8146(83)90056-0.
  • Wang, J.; Law, C.-L.; Mujumdar, A. S.; Xiao, H.-W. The Degradation Mechanism and Kinetics of Vitamin C in Fruits and Vegetables during Thermal Processing. In Drying Technologies for Foods, Fundamentals and Applications, 1st ed.; Nema, P.K., Kaur, B.P., Mujumdar, A., Eds.; CRC Press: New Delhi, India, 2017; pp 275–301.
  • Gil, A. I.; Ferreres, F.; Tomás-Barberán, F. A. Effect of Postharvest Storage and Processing on the Antioxidant Constituents (Flavonoids and Vitamin C) of Fresh-cut Spinach. J. Agric. Food Chem. 1999, 47, 2213–2217. DOI: 10.1021/jf981200l.
  • Davey, M. W.; Van Montagu, M.; Inzé, D.; Sanmartin, M.; Kanellis, A.; Smirnoff, N.; Benzie, I. J. J.; Strain, J. J.; Favell, D.; Plant, F. J. L-ascorbic Acid, Chemistry, Function, Metabolism, Bioavailability and Effects of Processing. J. Sci. Food Agric. 2000, 80(7), 825–860.
  • Deutsch, J. C. Dehydroascorbic Acid. J. Chromatogr. A. 2000, 881(1), 299–307. DOI: 10.1016/S0021-9673(00)00166-7.
  • Faboya, O. O. P. The Effect of Pre-process Handling Conditions on the Ascorbic Acid Content of Green Leafy Vegetables. Food Chem. 1990, 38(4), 297–303. DOI: 10.1016/0308-8146(90)90187-9.
  • Mulokozi, G.; Svanberg, U. Effect of Traditional Open Sun-drying and Solar Cabinet Drying on Carotene Content and Vitamin A Activity of Green Leafy Vegetables. Plant Food Hum. Nutr. 2003, 58(3), 1–15. DOI: 10.1023/B:QUAL.0000041153.28887.9c.
  • Kaushal, M.; Sharma, K. D.; Attri, S. Effect of Blanching on Nutritional Quality of Dehydrated Colocasia, (Colocasia Esculenta (L.) Schott Leaves. Indian J. Nat. Prod. Resour. 2013, 42(2), 161–164.
  • Institute of Medicine. Dietary Reference Intakes for Vitamin A, Vitamin K, Arsenic, Boron, Chromium, Copper, Iodine, Iron, Manganese, Molybdenum, Nickel, Silicon, Vanadium and Zinc. The; National Academies Press: Washington, DC, 2001; pp 1–773.
  • Baloch, A. K.; Buckle, K. A.; Edwards, R. A. Effect of Sulphur Dioxide and Blanching on the Stability of Carotenoids of Dehydrated Carrot. J. Sci. Food Agric. 1987, 40(2), 179–187. DOI: 10.1002/jsfa.2740400210.
  • Lal, G. Physico-chemical Qualities of Solar Dried Fruits of Karonda (Carisa Carandus L.) As Affected by Blanching and Potassium Metabisulphite. Ann. Arid Zone. 2009, 48(1), 71–73.
  • Negi, P. S.; Roy, S. K. Effect of Blanching and Drying Methods on β-carotene, Ascorbic Acid and Chlorophyll Retention of Leafy Vegetables. LWT - Food Sci. Technol. 2000, 33(4), 295–298. DOI: 10.1006/fstl.2000.0659.
  • Murcia, M. A.; López-Ayerra, B.; Martinez-Tomé, M.; Vera, A. M.; García-Carmona, F. Evolution of Ascorbic Acid and Peroxidase during Industrial Processing of Broccoli. J. Sci. Food Agric. 2000, 80(13), 1882–1886. DOI: 10.1002/1097-0010(200010)80:13<1882::AID-JSFA729>3.0.CO;2-B.
  • Akpapunam, M. A. Effects of Wilting, Blanching and Storage Temperatures on Ascorbic Acid and Total Carotenoids Content of Some Nigerian Fresh Vegetables. Plant Food Hum. Nutr. 1984, 34(3), 177–180. DOI: 10.1007/BF01091466.
  • Garcia, E.; Barrett, D. M. Fresh-cut Fruits. In Processing Fruits, Science and Technology, 2nd ed.; Barrett, D.M., Somogyi, L., Ramaswamy, H., Eds.; CRC Press: Florida, United States of America, 2005; pp 53–72.
  • Mensah, P. Fermentation — The Key to Food Safety Assurance in Africa? Food Control. 1997, 8(5), 271–278. DOI: 10.1016/S0956-7135(97)00020-0.
  • Oguntoyinbo, F. A.; Fusco, V.; Cho, G. S.; Kabisch, J.; Neve, H.; Bockelmann, W.; Huch, M.; Frommherz, L.; Trierweiler, B.; Becker, B.;, et al. Produce from Africa’s Gardens, Potential for Leafy Vegetable and Fruit Fermentations. Front. Microbiol. 2016. DOI: 10.3389/fmicb.2016.00981.
  • Chelule, P. K.; Mokoena, M. P.; Gqaleni, N. Advantages of Traditional Lactic Acid Bacteria Fermentation of Food in Africa. In Current Research Technology and Education Topics in Applied Microbiology and Microbial Biotechnology; Méndez-Vilas, A., Ed.; Formatex Research Center: Badajoz, Spain, 2010; pp 1160–1167.
  • Furukawa, S.; Watanabe, T.; Toyama, H.; Morinaga, Y. Significance of Microbial Symbiotic Coexistence in Traditional Fermentation. J. Biosci. Bioeng. 2013, 116(5), 533–539. DOI: 10.1016/j.jbiosc.2013.05.017.
  • Difo, V. H.; Onyike, E.; Ameh, D. A.; Njoku, G. C.; Ndidi, U. S. Changes in Nutrient and Antinutrient Composition of Vigna Racemosa Flour in Open and Controlled Fermentation. J. Food Sci. Technol. 2015, 52(9), 6043–6048. DOI: 10.1007/s13197-014-1637-7.
  • Tamang, J. P.; Watanabe, K.; Holzapfel, W. H. Review, Diversity of Microorganisms in Global Fermented Foods and Beverages. Front. Microbiol. 2016, 7(377). DOI: 10.3389/fmicb.2016.00377.
  • Filannino, P.; Di Cagno, R.; Gobbetti, M. Metabolic and Functional Paths of Lactic Acid Bacteria in Plant Foods, Get Out of the Labyrinth. Curr. Opin. Biotechnol. 2018, 49, 64–72. DOI: 10.1016/j.copbio.2017.07.016.
  • Thierry, N. N.; Léopold, T. N.; Didier, M.; Moses, F. M. C. Effect of Pure Culture Fermentation on Biochemical Composition of Moringa Oleifera Lam Leaves Powders. Food Nutr. Sci. 2013, 4, 851–859.
  • Nour, A. A. M.; Ibrahim, M. A. E. M. Effect of Supplementation with Moringa Leaves Powder (MLP) and Fermentation on Chemical Composition, Total Minerals Contents and Sensory Characteristics of Sorghum Flour. Int. J. Sci. Res. 2016, 5(3), 672–677.
  • Osman, N. M.; Ahmed, I. A. M.; Babiker, E. E. Fermentation and Cooking of Sicklepod (Cassia Obtusifolia) Leaves, Changes in Chemical and Amino Acid Composition, Antinutrients and Protein Fractions and Digestibility. Int. J. Food Sci. Technol. 2010, 45, 124–132. DOI: 10.1111/j.1365-2621.2009.02111.x.
  • Salem, A. S.; Salama, W. M.; Hassanein, A. M.; El Ghandour, H. M. A. Enhancement of Nutritional and Biological Values of Labneh by Adding Dry Leaves of Moringa Oleifera as Innovative Dairy Products. World Appl. Sci. J. 2013, 22(11), 1594–1602.
  • Vanajakshi, V.; Vijayendra, S. V. N.; Varadaraj, M. C.; Venkateswaran, G.; Agrawal, R. Optimization of a Probiotic Beverage Based on Moringa Leaves and Beetroot. LWT - Food Sci. Technol. 2015, 63(2), 1268–1273. DOI: 10.1016/j.lwt.2015.04.023.
  • Avilés-Gaxiola, S.; Chuck-Hernández, C.; Saldívar, S. O. S. Inactivation Methods of Trypsin Inhibitor in Legumes, A Review. J. Food Sci. 2018, 83(1), 17–29. DOI: 10.1111/1750-3841.13985.

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