DOI QR코드

DOI QR Code

Yield survey and nutritional evaluation of garlic stalk for ruminant feed

  • Lee, Y.H. (Division of Food Bio-science, College of Medical Life Sciences, Konkuk University) ;
  • Kim, Y.I. (Division of Food Bio-science, College of Medical Life Sciences, Konkuk University) ;
  • Oh, Y.K. (Animal Nutrition & Physiology Team, National Institute of Animal Science, Rural Development Administration) ;
  • Ahmadi, F. (Division of Food Bio-science, College of Medical Life Sciences, Konkuk University) ;
  • Kwak, W.S. (Division of Food Bio-science, College of Medical Life Sciences, Konkuk University)
  • Received : 2017.06.14
  • Accepted : 2017.08.13
  • Published : 2017.10.31

Abstract

Background: Very limited information exists on the ruminal degradation kinetics of nutrients in garlic stalk. The present study aimed to survey the annual yield of garlic stalk in Korea and determine its feed-nutritive value for ruminants. Methods: In Experiment 1, garlic stalk was incubated in situ in the rumen of two Hanwoo steers ($360{\pm}15kg$ body weight) and removed after 12, 24, or 48 h to determine the ruminal degradation kinetics of DM and NDF. Rice straw was also included for comparison. In Experiment 2, In Experiment 2, six male Corriedale sheep were randomized to two dietary treatments to determine the apparent digestibility of nutrients in garlic stalk. Diets included a control ration without garlic stalk (60% concentrate mix +40% ryegrass) or a treatment ration (70% control diet +30% garlic stalk). Results: The Korean national yield of garlic stalk (sun-dried basis) in 2016 was estimated to be 31,910 tons, with the southern coastal regions producing the highest quantity. Compared with rice straw, garlic stalk had lower NDF, higher ADF, and greater effective degradabilities of DM and NDF, resulting in a greater TDN value (56.3%), which was higher than that obtained for rice straw (43.7%). Conclusion: These results provide basic information on the ruminal DM and NDF degradation kinetics of garlic stalk, which would be helpful for the efficient utilization of this by-product in ruminant diets

Keywords

References

  1. Faostat - Food and Agriculture Organization of the United Nations, FAO statistical databases, 2014. Available from: http://faostat.fao.org/.
  2. Kallel F, Ellouz CS. Perspective of garlic processing wastes as low-cost substrates for production of high-added value products: a review. Environ Prog Sustain Energy. 2017; doi:10.1002/ep.10254.
  3. Han X, Cheng Z, Meng H. Soil properties, nutrient dynamics, and soil enzyme activities associated with garlic stalk decomposition under various conditions. PLoS One. 2012;7:e50868. https://doi.org/10.1371/journal.pone.0050868
  4. Kamruzzaman M, Liang X, Sekiguchi N, Sano H. Effect of feeding garlic leaf on microbial nitrogen supply, kinetics of plasma phenylalanine, tyrosine and protein synthesis in sheep. Anim Sci J. 2014;85:542-8. https://doi.org/10.1111/asj.12190
  5. Han X, Cheng Z, Meng H, Yang X, Ahmad I. Allelopathic effect of decomposed garlic (Allium sativum L.) stalk on lettuce (L. Sativa Var. Crispa L.). Pak J Bot. 2013;45:225-33.
  6. Jian R, Ning P, Li J, Huang X, Qu G. Research of pyrolysis oil and catalysts of garlic stalks. J Agric Sci Technol. 2014;15:1616.
  7. Gong B, Bloszies S, Li X, Wei M, Yang F, Shi Q, Wang X. Efficacy of garlic straw application against root-knot nematodes on tomato. Sci Hortic. 2013;161:49-57. https://doi.org/10.1016/j.scienta.2013.06.027
  8. Negi R, Satpathy G, Tyagi YK, Gupta RK. Biosorption of heavy metals by utilising onion and garlic wastes. Int J Environ Pollut. 2012;49:179-96. https://doi.org/10.1504/IJEP.2012.050898
  9. Chu GM, Lee HH, Park JS, Cho HW, Ahn BH. Effect of garlic stalk silage on performance and carcass characteristics of Hanwoo steers. J Anim Sci Technol. 2003;45:1007-18. https://doi.org/10.5187/JAST.2003.45.6.1007
  10. Kamruzzaman M, Torita A, Sako Y, Al-Mamun M, Sano H. Effects of feeding garlic stem and leaf silage on rates of plasma leucine turnover, whole body protein synthesis and degradation in sheep. Small Rumin Res. 2011;99:37-43. https://doi.org/10.1016/j.smallrumres.2011.03.052
  11. Panthee A, Matsuno A, Al-Mamun M, Sano H. Effect of feeding garlic leaves on rumen fermentation, methane emission, plasma glucose kinetics, and nitrogen utilization in sheep. J Anim Sci Technol. 2017;59:14. https://doi.org/10.1186/s40781-017-0139-3
  12. National Statistical Office. Agriculture and fisheries statistics division, the Bureau of Social Statistics. Yield of condiment vegetables (Korea statistical information service) 2013.
  13. AOAC. Official methods of analysis of AOAC international. 17th ed. Gaithersburg: AOAC; 2000.
  14. Licitra G, Hernandez T, Van Soest P. Standardization of procedures for nitrogen fractionation of ruminant feeds. Anim Feed Sci Technol. 1996;57: 347-58. https://doi.org/10.1016/0377-8401(95)00837-3
  15. National Research Council. Nutrient requirements of beef cattle, Update 2000. Washington, DC: National Academy Press; 2000.
  16. Orskov ER, Hovell FD, Mould F. The use of the nylon bag technique for the evaluation of feedstuffs. Trop Anim Prod. 1980;5:195-213.
  17. Lee Y, Ahmadi F, Choi D, Kwak W. In situ ruminal degradation characteristics of dry matter and crude protein from dried corn, high-protein corn, and wheat distillers grains. J Anim Sci Technol. 2016;58:33. https://doi.org/10.1186/s40781-016-0115-3
  18. National Research Council. Nutrient requirement of small ruminants. Seventh ed. Washington, D.C.: The National Academy Press; 2001.
  19. Schneider BH, Flatt WP. The evaluation of feeds through digestibility experiments. Athens: The University of Georgia Press; 1975. p. 151-5.
  20. SAS Institute. User's guide: statistics. Cary: SAS Institute Inc.; 2003.
  21. Yoon HS, Kang MJ, Hwang CR, Sim HJ, Kim GM. Physicochemical characteristics of garlic (Allium sativum L.) shoots from different areas in Namhae. Kor J Food Preserv. 2014;21:321-7. https://doi.org/10.11002/kjfp.2014.21.3.321
  22. Jeong CH, Bae YI, Lee JH, Shim KH, Roh JG, Shin CS, Choi JS. Chemical components and antimicrobial activity of garlics from different cultivated area. J Agric Life Sci. 2009;43:55-9.
  23. Lee HS, Lee ID. A comparative study of nutritive value of imported roughages. J Kor Grassl Sci. 2000;20:303-8.
  24. Ahmadi F, Lee YH, Ko MJ, Choi DY, Kwak WS. In situ ruminal degradation characteristics of dry matter and crude protein of imported hays marketed to the Korean cattle industry: a field study. J Food Agric Environ. 2017;15:80-5.
  25. National Institute of Animal Science. Standard tables of feed composition in Korea. Republic of Korea: Rural Development Administration (RDA); 2007.
  26. Kim Y, Cho W, Hong S, Oh Y, Kwak W. Yield, nutrient characteristics, ruminal solubility and degradability of spent mushroom (Agaricus bisporus) substrates for ruminants. Asian-Australas J Anim Sci. 2011;24:1560-8. https://doi.org/10.5713/ajas.2011.11076
  27. Hoover W. Chemical factors involved in ruminal fiber digestion. J Dairy Sci. 1986;69:2755-66. https://doi.org/10.3168/jds.S0022-0302(86)80724-X
  28. Bruno-Soares A, Abreu J, Guedes C, Dias-da-Silva A. Chemical composition, DM and NDF degradation kinetics in rumen of seven legume straws. Anim Feed Sci Technol. 2000;83:75-80. https://doi.org/10.1016/S0377-8401(99)00113-3
  29. Mertens DR. In: Jung HG, Buxton DR, Hatfield RD, Ralph J, editors. Kinetics of cell wall digestion and passage in ruminants. Madison: Forage Cell Wall Structure and Digestibility; 1993.
  30. National Institute of Animal Science. Standard tables of feed composition in Korea, Second revision. Suwon: RDA; 2012.

Cited by

  1. Changes in the Soil Microbiome in Eggplant Monoculture Revealed by High-Throughput Illumina MiSeq Sequencing as Influenced by Raw Garlic Stalk Amendment vol.20, pp.9, 2019, https://doi.org/10.3390/ijms20092125
  2. Beneficial Effects of Garlic in Livestock and Poultry Nutrition: A Review vol.8, pp.4, 2019, https://doi.org/10.1007/s40003-018-0390-y
  3. Co-ensiling garlic stalk with citrus pulp improves the fermentation quality and feed-nutritional value vol.33, pp.3, 2017, https://doi.org/10.5713/ajas.19.0464
  4. Effects of Mixing Garlic Skin on Fermentation Quality, Microbial Community of High-Moisture Pennisetum hydridum Silage vol.12, pp.None, 2021, https://doi.org/10.3389/fmicb.2021.770591
  5. By-Product Feeds: Current Understanding and Future Perspectives vol.11, pp.3, 2017, https://doi.org/10.3390/agriculture11030207
  6. Garlic skin induces shifts in the rumen microbiome and metabolome of fattening lambs vol.15, pp.5, 2021, https://doi.org/10.1016/j.animal.2021.100216