Investigating the Nutritional Value and Bioactive Components of Medicinal Herbs under Various Drying Conditions for Ruminants — Oak Academic Publishing
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Investigating the Nutritional Value and Bioactive Components of Medicinal Herbs under Various Drying Conditions for Ruminants
Animal Production Research Division, Bangladesh Livestock Research Institute, Savar, Bangladesh
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Department of Animal Nutrition, Bangladesh Agricultural University, Mymensingh, Bangladesh
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Dairy Research and Training Centre, Bangladesh Livestock Research Institute, Savar, Bangladesh
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Biotechnology Research Division, Bangladesh Livestock Research Institute, Savar, Bangladesh
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Department of Animal Nutrition, Bangladesh Agricultural University, Mymensingh, Bangladesh
1 Animal Production Research Division, Bangladesh Livestock Research Institute, Savar, Bangladesh
2 Department of Animal Nutrition, Bangladesh Agricultural University, Mymensingh, Bangladesh
3 Dairy Research and Training Centre, Bangladesh Livestock Research Institute, Savar, Bangladesh
4 Biotechnology Research Division, Bangladesh Livestock Research Institute, Savar, Bangladesh
5 Department of Animal Nutrition, Bangladesh Agricultural University, Mymensingh, Bangladesh
The research was conducted to investigate the bioactive components and nutritional values of three medicinal herbs: moringa ( Moringa oleifera ), pineapple waste ( Ananas comosus ), and plantain ( Plantago lanceolata ), subjected to three drying methods: sun drying, shade drying, and freeze drying. The research aimed to identify the most effective drying technique for preserving specific bioactive components in these herbs. The experiment was carried out at Bangladesh Agricultural University in Mymensingh and the Bangladesh Livestock Research Institute in Savar. The herb’s proximate components were determined. The total phenolic and flavonoid concentrations in the herbs were measured using a UV spectrophotometer. The specific bioactive compounds from each herb, moringa: kaempferol and myricetin; pineapple waste: gallic acid and catechin; and plantain: aucubin and acteoside, were quantified using ultra-high-performance liquid chromatography. Additionally, the herb’s 24-hour in vitro gas production was also determined in ruminants. The herb’s moisture, ether extract, and ash contents differed significantly (P in vitro GP 24 production, dOM, and ME compared to the others. It can be concluded that freeze-drying is a more effective method for preserving herbs compared to the other two methods for supplementing ruminant diet.
Geraci, J.I., Garciarena, A.D., Gagliostro, G.A., Beauchemin, K.A. and Colombatto, D. (2012) Plant Extracts Containing Cinnamaldehyde, Eugenol and Capsicum Oleoresin Added to Feedlot Cattle Diets: Ruminal Environment, Short Term Intake Pattern and Animal Performance. Animal Feed Science and Technology , 176, 123-130. https://doi.org/10.1016/j.anifeedsci.2012.07.015
Jayasena, D.D. and Jo, C. (2013) Essential Oils as Potential Antimicrobial Agents in Meat and Meat Products: A Review. Trends in Food Science & Technology , 34, 96-108. https://doi.org/10.1016/j.tifs.2013.09.002
Kubra, I.R. and Rao, L.J.M. (2012) An Impression on Current Developments in the Technology, Chemistry, and Biological Activities of Ginger ( Zingiber officinale Roscoe). Critical Reviews in Food Science and Nutrition , 52, 651-688. https://doi.org/10.1080/10408398.2010.505689
Sellami, I.H., Wannes, W.A., Bettaieb, I., Berrima, S., Chahed, T., Marzouk, B., et al . (2011) Qualitative and Quantitative Changes in the Essential Oil of Laurus nobilis L. Leaves as Affected by Different Drying Methods. Food Chemistry , 126, 691-697. https://doi.org/10.1016/j.foodchem.2010.11.022
Leong, W.H., Teh, S.Y., Hossain, M.M., Nadarajaw, T., Zabidi-Hussin, Z., Chin, S., et al . (2020) Application, Monitoring and Adverse Effects in Pesticide Use: The Importance of Reinforcement of Good Agricultural Practices (GAPs). Journal of Environmental Management , 260, Article ID: 109987. https://doi.org/10.1016/j.jenvman.2019.109987
Nguyen, V.T., Van Vuong, Q., Bowyer, M.C., Van Altena, I.A. and Scarlett, C.J. (2015) Effects of Different Drying Methods on Bioactive Compound Yield and Antioxidant Capacity of Phyllanthus amarus . Drying Technology , 33, 1006-1017. https://doi.org/10.1080/07373937.2015.1013197
Orphanides, A., Goulas, V. and Gekas, V. (2015) Drying Technologies: Vehicle to High-Quality Herbs. Food Engineering Reviews , 8, 164-180. https://doi.org/10.1007/s12393-015-9128-9
Karaman, S., Toker, O.S., Çam, M., Hayta, M., Doğan, M. and Kayacier, A. (2014) Bioactive and Physicochemical Properties of Persimmon as Affected by Drying Methods. Drying Technology , 32, 258-267. https://doi.org/10.1080/07373937.2013.821480
Lin, L., Lei, F., Sun, D., Dong, Y., Yang, B. and Zhao, M. (2012) Thermal Inactivation Kinetics of Rabdosia serra (Maxim.) Hara Leaf Peroxidase and Polyphenol Oxidase and Comparative Evaluation of Drying Methods on Leaf Phenolic Profile and Bioactivities. Food Chemistry , 134, 2021-2029. https://doi.org/10.1016/j.foodchem.2012.04.008
Sultana, B., Anwar, F., Ashraf, M. and Saari, N. (2012) Effect of Drying Techniques on the Total Phenolic. Journal of Medicinal Plants Research , 6, 161-167.
Nadi, F. (2017) Bioactive Compound Retention in Echium amoenum Fisch. & C. A. Mey. Petals: Effect of Fluidized Bed Drying Conditions. Inter national Journal of Food Properties , 20, 2249-2260. https://doi.org/10.1080/10942912.2016.1233436
Nguyen, K.Q., Vuong, Q.V., Nguyen, M.H. and Roach, P.D. (2018) The Effects of Drying Conditions on Bioactive Compounds and Antioxidant Activity of the Australian Maroon Bush, Scaevola spinescens . Journal of Food P roc essing and Preservation , 42, e13711. https://doi.org/10.1111/jfpp.13711
Pham, H.N.T., Nguyen, V.T., Vuong, Q.V., Bowyer, M.C. and Scarlett, C.J. (2015) Effect of Extraction Solvents and Drying Methods on the Physicochemical and Antioxidant Properties of Helicteres hirsuta Lour. Leaves. Technologies , 3, 285-301. https://doi.org/10.3390/technologies3040285
Nguyen, V.T., Ueng, J.P. and Tsai, G.J. (2011) Proximate Composition, Total Phenolic Content, and Antioxidant Activity of Seagrape ( Caulerpa lentillifera ). Journal of Food Science , 76, C950-C958. https://doi.org/10.1111/j.1750-3841.2011.02289.x
AOAC, C.A. (2000) Official Methods of Analysis of the Association of Official Analytical Chemists. 17th Edition, AOAC.
Van Soest, P.J., Robertson, J.B. and Lewis, B.A. (1991) Methods for Dietary Fiber, Neutral Detergent Fiber, and Nonstarch Polysaccharides in Relation to Animal Nutrition. Journal of Dairy Science , 74, 3583-3597. https://doi.org/10.3168/jds.s0022-0302(91)78551-2
Kähkönen, M.P., Hopia, A.I., Vuorela, H.J., Rauha, J., Pihlaja, K., Kujala, T.S., et al . (1999) Antioxidant Activity of Plant Extracts Containing Phenolic Compounds. Journal of Agricultural and Food Chemistry , 47, 3954-3962. https://doi.org/10.1021/jf990146l
Slinkard, K. and Singleton, V.L. (1977) Total Phenol Analysis: Automation and Comparison with Manual Methods. American Journal of Enology and Viticulture , 28, 49-55. https://doi.org/10.5344/ajev.1977.28.1.49
Olajire, A.A. and Azeez, L. (2011) Total Antioxidant Activity, Phenolic, Flavonoid and Ascorbic Acid Contents of Nigerian Vegetables. African Journal of Food Science and Technology , 2, 22-29.
Shervington, L.A., Li, B.S., Shervington, A.A., Alpan, N., Patel, R., Muttakin, U., et al . (2018) A Comparative HPLC Analysis of Myricetin, Quercetin and Kaempferol Flavonoids Isolated from Gambian and Indian Moringa oleifera Leaves. Inter national Journal of Chemistry , 10, 28-37. https://doi.org/10.5539/ijc.v10n4p28
Li, T., Shen, P., Liu, W., Liu, C., Liang, R., Yan, N., et al . (2014) Major Polyphenolics in Pineapple Peels and Their Antioxidant Interactions. Inter national Journal of Food Properties , 17, 1805-1817. https://doi.org/10.1080/10942912.2012.732168
Al-Mamun, M., Abe, D., Kofujita, H., Tamura, Y. and Sano, H. (2008) Comparison of the Bioactive Components of the Ecotypes and Cultivars of Plantain ( Plantago lanceolata L.) Herbs. Animal Science Journal , 79, 83-88. https://doi.org/10.1111/j.1740-0929.2007.00501.x
ANKOM (2011) ANKOM Gas Production System Operator’s Manual. https://www.ankom.com/search?query=ANKOM%20gas%20production%20system%20operator%E2%80%99s%20manual.%20
Goering, H.K. and Van Soest, P.J. (1970) Forage Fiber Analyses (Apparatus, Reagents, Procedures, and Some Applications). Agriculture Handbook No. 379.
Menke, K.H. and Steingass, H. (1988) Estimation of the Energetic Feed Value Obtained from Chemical Analysis and Gas Production Using Rumen Fluid. Animal Research and Development , 28, 7-55.
Shalaby, N.A., Attallah, K.M., Omar, A.A. and Aboabdo, B.M. (2026) Study of Drying Techniques on Various Types of Fruits, Vegetables, and Herbs. ICCCM Journal of Social Sciences and Humanities , 5, 66-74. https://doi.org/10.53797/icccmjssh.v5i1.7.2026
Setiaboma, W., Kristanti, D. and Herminiati, A. (2019) The Effect of Drying Methods on Chemical and Physical Properties of Leaves and Stems Moringa oleifera Lam. P roc eedings of the 5 th Inter national Symposium on Applied Chemistry , Tangerang, 23-24 October 2019, 2175. https://doi.org/10.1063/1.5134594
Satwase, A.N., Pandhre, G.R., Sirsat, P.G. and Wade, Y.R. (2013) Studies on Drying Characteristics and Nutritional Composition of Drumstick Leaves by Using Sun, Shadow, Cabinet and Oven Drying Methods. Open Access Scientific Reports , 2, 584-587.
Umar, Y.B., Isyaku, A.H., Mohammed-Dabo, I.A., Bilal, S., Mashi, A.H. and Adamu, M.S. (2015) Effect of Drying Techniques on the Nutrients of Moringa Leaves. Federal University of Technology , 3, 55-60.
Dolma, N. and Tashi, S. (2020) Effect of Drying Time and Temperature Moringa oleifera . Research Journal of Agriculture , 8, 34-39.
Meyerzon, M. (2012) The Effects of Heat on Protein Food. https://scholar.google.com/scholar_lookup?title=The%20effects%20of%20heat%20on%20protein%20food.&author=Meyerzon%20M.%20(2012)
Derossi, A., Cassi, D. and Severini, C. (2011) Mass Transfer Mechanisms during Dehydration of Vegetable Food: Traditional and Innovative Approaches. In: Advanced Topics in Mass Transfer , Intech, 306-354.
Dai, J. and Mumper, R.J. (2010) Plant Phenolics: Extraction, Analysis and Their Antioxidant and Anticancer Properties. Molecules , 15, 7313-7352. https://doi.org/10.3390/molecules15107313
Khoddami, A., Wilkes, M.A. and Roberts, T.H. (2013) Techniques for Analysis of Plant Phenolic Compounds. Molecules , 18, 2328-2375. https://doi.org/10.3390/molecules18022328
Mphahlele, R.R., Fawole, O.A., Makunga, N.P. and Opara, U.L. (2016) Effect of Drying on the Bioactive Compounds, Antioxidant, Antibacterial and Antityrosinase Activities of Pomegranate Peel. BMC Complementary and Alternative Medicine , 16, Article No. 143. https://doi.org/10.1186/s12906-016-1132-y
Ademiluyi, A.O., Aladeselu, O.H., Oboh, G. and Boligon, A.A. (2018) Drying Alters the Phenolic Constituents, Antioxidant Properties, α -Amylase, and α -Glucosidase Inhibitory Properties of Moringa ( Moringa oleifera ) Leaf. Food Science & Nutrition , 6, 2123-2133. https://doi.org/10.1002/fsn3.770
Dadi, D.W., Emire, S.A., Hagos, A.D. and Assamo, F.T. (2018) Influences of Different Drying Methods and Extraction Solvents on Total Phenolic and Flavonoids, and Antioxidant Capacity of Moringa stenopetala Leaves. Journal of Pharmacognosy and Phytochemistry , 7, 962-967.
Iwansyah, A.C., Manh, T.D., Andriana, Y., Aiman bin Hessan, M., Kormin, F., Cuong, D.X., et al . (2020) Effects of Various Drying Methods on Selected Physical and Antioxidant Properties of Extracts from Moringa oleifera Leaf Waste. Sustainability , 12, Article No. 8586. https://doi.org/10.3390/su12208586
Kannan, K. and Thahaaseen, A. (2016) Process Optimization for Drying of Drumstick Leaves. Indian Journal of Science , 23, 275-288. https://indianjournals.com/article/ijs2-23-79-013
Ergün, F. (2023) Effects of Drying Methods on Amounts of Phenolic and Flavonoid Compounds and Antioxidant Capacity of Plantago lanceolata L. The Journal of Ani mal and Plant Sciences , 33, 159-165. https://doi.org/10.36899/japs.2023.1.0604
Shah, N.N.A.K., Shamsuddin, R., Rahman, R.A. and Adzahan, N.M. (2014) Effects of Physicochemical Characteristics of Pummelo Fruit Juice towards UV Inactivation of Salmonella Typhimurium. Agriculture and Agricultural Science P roc edia , 2, 43-52. https://doi.org/10.1016/j.aaspro.2014.11.007
Poorgharib, M., Mehrjerdi, M.Z. and Arabhosseini, A. (2023) Effect of Different Drying Methods on Antioxidant and Phytochemical Yield of Allium hirtifolium Boiss. Eco - Phytochemical Journal of Medicinal Plants , 10, 27-43.
Peñalver, R., Martínez-Zamora, L., Lorenzo, J.M., Ros, G. and Nieto, G. (2022) Nutritional and Antioxidant Properties of Moringa oleifera Leaves in Functional Foods. Foods , 11, Article No. 1107. https://doi.org/10.3390/foods11081107
Sreelatha, S. and Padma, P.R. (2009) Antioxidant Activity and Total Phenolic Content of Moringa oleifera Leaves in Two Stages of Maturity. Plant Foods for Human Nutrition , 64, 303-311. https://doi.org/10.1007/s11130-009-0141-0
Dorta, E., Lobo, M.G. and González, M. (2012) Using Drying Treatments to Stabilise Mango Peel and Seed: Effect on Antioxidant Activity. LWT — Food Science and Technology , 45, 261-268. https://doi.org/10.1016/j.lwt.2011.08.016
Pinela, J., Barros, L., Dueñas, M., Carvalho, A.M., Santos-Buelga, C. and Ferreira, I.C.F.R. (2012) Antioxidant Activity, Ascorbic Acid, Phenolic Compounds and Sugars of Wild and Commercial Tuberaria lignosa Samples: Effects of Drying and Oral Preparation Methods. Food Chemistry , 135, 1028-1035. https://doi.org/10.1016/j.foodchem.2012.05.038
Atawodi, S.E., Atawodi, J.C., Idakwo, G.A., Pfundstein, B., Haubner, R., Wurtele, G., et al . (2010) Evaluation of the Polyphenol Content and Antioxidant Properties of Methanol Extracts of the Leaves, Stem, and Root Barks of Moringa oleifera Lam. Journal of Medicinal Food , 13, 710-716. https://doi.org/10.1089/jmf.2009.0057
Siddhuraju, P. and Becker, K. (2003) Antioxidant Properties of Various Solvent Extracts of Total Phenolic Constituents from Three Different Agroclimatic Origins of Drumstick Tree ( Moringa oleifera Lam.) Leaves. Journal of Agricultural and Food Chemistry , 51, 2144-2155. https://doi.org/10.1021/jf020444+
da Silva, D.I.S., Nogueira, G.D.R., Duzzioni, A.G. and Barrozo, M.A.S. (2013) Changes of Antioxidant Constituents in Pineapple ( Ananas comosus ) Residue during Drying Process. Industrial Crops and Products , 50, 557-562. https://doi.org/10.1016/j.indcrop.2013.08.001
Heras-Ramírez, M.E., Quintero-Ramos, A., Camacho-Dávila, A.A., Barnard, J., Talamás-Abbud, R., Torres-Muñoz, J.V., et al . (2012) Effect of Blanching and Drying Temperature on Polyphenolic Compound Stability and Antioxidant Capacity of Apple Pomace. Food and Biop roc ess Technology , 5, 2201-2210. https://doi.org/10.1007/s11947-011-0583-x
Bchir, B., Besbes, S., Karoui, R., Attia, H., Paquot, M. and Blecker, C. (2012) Effect of Air-Drying Conditions on Physico-Chemical Properties of Osmotically Pre-Treated Pomegranate Seeds. Food and Biop roc ess Technology , 5, 1840-1852. https://doi.org/10.1007/s11947-010-0469-3
Rafiq, S., Singh, B. and Gat, Y. (2019) Effect of Different Drying Techniques on Chemical Composition, Color and Antioxidant Properties of Kinnow ( Citrus reticulata ) Peel. Journal of Food Science and Technology , 56, 2458-2466. https://doi.org/10.1007/s13197-019-03722-9
Liu, H., Liu, J., Lv, Z., Yang, W., Zhang, C., Chen, D., et al . (2019) Effect of Dehydration Techniques on Bioactive Compounds in Hawthorn Slices and Their Correlations with Antioxidant Properties. Journal of Food Science and Technology , 56, 2446-2457. https://doi.org/10.1007/s13197-019-03720-x
Tamura, Y. and Nishibe, S. (2002) Changes in the Concentrations of Bioactive Compounds in Plantain Leaves. Journal of Agricultural and Food Chemistry , 50, 2514-2518. https://doi.org/10.1021/jf011490x
Massarioli, A.P., de Alencar, S.M., Siqueira, A.F., de Melo, M.P., Vidigal, I.G. and Ferreira, A.L.G. (2023) Evaluation of the Quality and Antioxidant Activity of Dehydrated Medicinal Herbs. Horticulturae , 9, Article No. 597. https://doi.org/10.3390/horticulturae9050597
Mbondo, N.N., Owino, W.O., Ambuko, J. and Sila, D.N. (2018) Effect of Drying Methods on the Retention of Bioactive Compounds in African Eggplant. Food Science & Nutrition , 6, 814-823. https://doi.org/10.1002/fsn3.623
Chan, E.W.C., Lim, Y.Y., Wong, S.K., Lim, K.K., Tan, S.P., Lianto, F.S., et al . (2009) Effects of Different Drying Methods on the Antioxidant Properties of Leaves and Tea of Ginger Species. Food Chemistry , 113, 166-172. https://doi.org/10.1016/j.foodchem.2008.07.090
De Boever, J.L., Aerts, J.M., Vanacker, J.M. and De Brabander, D.L. (2005) Evaluation of the Nutritive Value of Maize Silages Using a Gas Production Technique. Animal Feed Science and Technology , 123, 255-265. https://doi.org/10.1016/j.anifeedsci.2005.04.019
Kılıç, Ü. and Sarıcicek, B.Z. (2006) Factors Affecting the Results of Gas Production Technique. Journal of Animal Production , 47, 54-61.
Larbi, A., Khatib-Salkin, A., Jammal, B. and Hassan, S. (2011) Seed and Forage Yield, and Forage Quality Determinants of Nine Legume Shrubs in a Non-Tropical Dryland Environment. Animal Feed Science and Technology , 163, 214-221. https://doi.org/10.1016/j.anifeedsci.2010.11.006
Njidda, A.A. and Nasiru, A. (2010) In Vitro Gas Production and Dry Matter Digestibility of Tannin-Containing Forges of Semi-Arid Region of North-Eastern Nigeria. Pakistan Journal of Nutrition , 9, 60-66. https://doi.org/10.3923/pjn.2010.60.66
McSweeney, C.S., Palmer, B., McNeill, D.M. and Krause, D.O. (2001) Microbial Interactions with Tannins: Nutritional Consequences for Ruminants. Animal Feed Scie nce and Technology , 91, 83-93. https://doi.org/10.1016/s0377-8401(01)00232-2