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Abstract

Currently, it is critical to turn byproducts in the surrounding environment into valuable resources. These various kinds of materials can be easily found, such as chicken feathers from chicken slaughterhouses. This investigated was pointed to hydrolyze and ferment chicken feathers into feather meal and determine the nutritional content of feather meal. Chicken feathers were obtained from Rumah Pemotongan Ayam Berbah, Sleman. Several methods for chicken feather processing were conducted by probiotic, chloride acid, and natrium hydroxide. The next step was to analyze the nutrition value of chicken feather meal by proximate, amino acids (Liquid Chromatography Mass Spectrometry) analysis. The research results showed that fermentation of chicken feather meal by using probiotic improved the nutritional value namely protein content was 78.18%   and essential amino acids content (isoleucine was 14,763.26 µg/g, histidine was 12,043.825 µg/g, glycine was 326.51 µg/g, methionine was 138.17 µg/g, arginine was 33,321.63 µg/g, phenylalanine was 22,815.65 µg/g and leucine was 44,511.41 µg/g). This research can be used as a basis for using fermented chicken feathers as a cheap and nutritious alternative fish feed ingredient.

Keywords

Amino Acid Chicken Feather Fish Feed Alkaloid isolation and identification; Immunostimulant; Protein profile; Phagocytic activity; Vibrio harveyi Probiotic

Article Details

References

  1. Adelina, A., Feliatra, F., Siregar, Y. I., Suharman, I., 2020. Utilization of feather meal fermented Bacillus subtilis to replace fish meal in the diet of silver pompano, Trachinotus blochii (Lacepede, 1801). AACL Bioflux. 13: 100-108.
  2. Alamsyah, A.A.D., Christyawan, J., Tiarasukma, A. P., Paramita, V., 2013. Pembuatan pangan ternak lele organik berbahan baku protein dari bulu ayam dengan metode fermentasi bio. Prosiding SNST ke-4. 22-27. ISBN 978-602-99334-2-0.
  3. Andersen, S.M., Waagbø, R., Espe M., 2016. Functional amino acids in fish health and welfare. Front Biosci. 8:143e69.
  4. A.O.A.C., 2012. Official Method of Analysis: Association of Analytical Chemists. 19th Edition, Washington DC, 121-130.
  5. Chilakamarry, C.R., Mahmood, S., Saffe, S.N.B.M., Arifin, M.A.B., Gupta, A., Sikkandar, M.Y., Begum, S.S., Narasaiah, B., 2021. Extraction and application of keratin from natural resources: A review. Biotech. 11: 220. https://doi.org/10.1007/s13205-021-02734-7
  6. Chor, W.K., Lim, L.S. and Shapawi, R., 2013. Evaluation of feather meal as a dietary protein source for African catfish fry, Clarias gariepinus. Journal of Fisheries and Aquatic Science. 8(6): 697-705.
  7. Dalle, N.S., Sembiring, S., Lazarus, E.J.L., 2022. The effect of including fermented feather meal as substitution of concentrate in the basal diet with different levels on the performance of landrace crossbred pigs. Indonesian Animal Science Journal. 17: 44-50. https://doi.org/10.31186/jspi.id.17.1.44-50
  8. Directorate General of Animal Husbandry and Animal Health, Ministry of Agriculture-BPS, 2023. Broiler Meat Production by Province (Tons), 2020-2022. https://www.bps.go.id/indicator/24/488/1/produk-daging-ayam-ras-pedaging-menrut-provinsi.html
  9. Elango, R., 2020. Methionine nutrition and metabolism: insights from animal studies to inform human nutrition. Journal of Nutrition. 150: 2518S–2523S
  10. Fitriyanto, N.A., Ramadhanti, Y., Rismiyati, Rusyadi, I., Pertiwiningrum, A., Prasetyo, R.A. and Erwanto, Y., 2022. Production of poultry feather hydrolysate using HCl and NaOH as a growth medium substrate for indigenous strains. IOP conference series: Earth and environmental science 951.
  11. Haryanto, A., Purwaningrum, M., Andityas, M., Wijayanti, N., 2017. Effect of chicken feather meal on the feed conversion ratio and blood lipid profile of broiler chickens. Asian J. Poult. Sci. 11: 64-69. DOI: 10.3923/ajpsaj.2017.64.69
  12. Huang, H.J., Weng, B.C., Lee, Y.S., Lin, C.Y., Hsuuw, Y.D. and Chen, K.L., 2022. The Effects of Two-Stage Fermented Feather Meal-Soybean Meal Product on Growth Performance, Blood Biochemistry, and Immunity of Nursery Pigs. Fermentation. 8: 634. https://doi.org/10.3390/fermentation8110634
  13. Li, P., Wu, G., 2018. Roles of dietary glycine, proline, and hydroxyproline in collagen synthesis and animal growth. Amino Acids. 50: 29–38.
  14. Masood, S., Hussaina, A., Javida, A. , Bukahria, S. M., Alia, W., Alib, S., Ghaffara, I., Imtiaza, A., Aminc, H. M. A., Salahuddin, H., Inayate, M., Razzaqa, S., Kafayatd, F., Rafiqa, H., Yasmeena, M., Muneeba, M. and Sattara. S., 2023. Fungal decomposition of chicken-feather waste in submerged and solid-state fermentation. Brazilian Journal of Biology. 83, e246389. https://doi.org/10.1590/1519-6984.246389
  15. Mondal, K., 2014. Nutritional evaluation of fermented poultry feather meal in the formulated diets of fingerlings of Catla catla (Hamilton). Electronic Journal of Biology. 10:118-124.
  16. Mukhtar A. Khan., 2018. Histidine Requirement of Cultivatable Fish Species A Review. Oceanography & Fisheries Open Access Journal, Juniper Publishers Inc., vol. 8(5).
  17. Mulia, D.S., Yuliningshih, R.T., Maryanto, H., Purbomartono, C., 2016. Utilization of chicken feather waste into fish feed using Bacillus subtilis fermentation. J. man and environment, 23: 49-57.
  18. Nugraha, T. A., Isnansetyo, A., Triyanto, Djalil, M., 2022. Fermented earthworms as a feed additive enhances non‑specific immune response in catfish (Clarias gariepinus). Aquaculture International. 30: 211–226. https://doi.org/10.1007/s10499-021-00794-3
  19. Oliviera C.C., Souza, A.K.S., Castro, A.K.S., 2019. Bioconversion of Chicken Feather Meal by Aspergillus niger: Simultaneous Enzymes Production Using a Cost-Effective Feedstock Under Solid State Fermentation. Indian Journal Microbiol. 59:209–216. https://doi.org/10.1007/s12088-019-00792-3
  20. Pérez-Torres, I., María Zuniga-Munoz, A., Guarner-Lans, V., 2017. Beneficial effects of the amino acid glycine. Mini. Rev. Med. Chem. 17: 15–32.
  21. Reddy, M.R., Reddy, K.S., Chouhan, Y.R., Bee. H., Reddy, G., 2017. Effective feather degradation and keratinase production by Bacillus pumilus GRK for its application as bio-detergent additive. BioresourTechnolol 243:254–263. https://doi.org/10.1016/j.biortech.2017.06.067
  22. Saarela, M., Berlin M., Nygren, H., Lahtinen, P., Honkapaa, K., Lantto, R. and Maukonen, J., 2017. Characterization of featherdegrading bacterial populations from birds’ nests potential strains for biomass production for animal feed. Int. Biodeter. Biodegrad. 123:262–268.
  23. Sukendro, P.B., Indrawati, T., Rahmat, D., 2020. Optimasi proses hidrolisis protein dari limbah bulu ayam. Farmasains. 8: 7-14. Doi:10.22236/farmasains.v8i1.5171
  24. Yin, X.C., Li, F.Y., He, Y.F., Wang, Y.R.M, . 2013. Study on effective extraction of chicken feather keratins and their films for controlling drug release. Biomaterials science. DOI:10.1039/c3bm00158j
  25. Wang, W., Yang, P., He, C., Chi, S., Li, S., Mai, K., Song, F., 2021. Effects of dietary methionine on growth performance and metabolism through modulating nutrient related pathways in largemouth bass (Micropterus salmoides). Aquaculture Reports. 20:100642.
  26. Wulandari, W., Hadi, W. and Rahayu, S., 2013. Digestibility of fat and energy monogastrick concentrate based hidrolyzate feather meal in vitro. Jurnal Ilmiah Peternakan, 1: 430-436.
  27. Zehra, S. & Khan, M., 2014. Dietary phenylalanine requirement and tyrosine replacement value for phenylalanine for fingerling Catla catla (Hamilton). Aquaculture. 433:256–65. doi:10.1016/j.aquaculture.2014.06.023
  28. Zhao, Y., Li, J., Jiang, Q., Zhou, X., Feng, L., Liu, Y., et al., 2020. Leucine improved growth performance, muscle growth, and muscle protein deposition through AKT/TOR and AKT/FOXO3a signaling pathways in hybrid catfish Pelteobagrus vachelli × Leiocassis longirostris, Cells 9. e327. https://doi.org/10.3390/cells9020327
  29. Zhao, J., Zhao, Y., Liu, H., Cao, Q., Feng, L., Zhang, Z ., Jiang, W., Wu, P., Liu Y., , Luo, W., Huang. X . and Jiang, J ., 2023. Dietary Leucine Improves Fish Intestinal Barrier Function by Increasing Humoral Immunity, Antioxidant Capacity, and Tight Junction. Int. J. Mol. Sci. 24, 4716. https://doi.org/10.3390/ijms24054716