THE IMPACT OF EMPTY PEA SHELL IN FEED ON GROWTH PERFORMANCE OF COMMON CARP (CYPRINUS CARPIO)

Authors

  • Kour GAGANDEEP Department of Zoology and Applied Aquaculture, Barkatullah University, Bhopal, Madhya Pradesh, India
  • Shrivastav REKHA Department of Zoology, MVM Bhopal, Madhya Pradesh, India
  • Vyas VIPIN Department of Zoology and Applied Aquaculture, Barkatullah University, Bhopal, Madhya Pradesh, India

DOI:

https://doi.org/10.36547/sjas.810

Keywords:

feed conversion ratio, specific growth rate, partial replacement, pea shell, vegetable waste, Cyprinus carpio

Abstract

The present study was intended to assess the potential of a mature empty pea shell (Pisum sativum) as a feed additive to the common carp (Cyprinus carpio) diet. This study was conducted for 90 days with the inclusion of 15 % pea shells into the feed with one control without pea shells in common carp feed. Pea shell was used as an additive to the feed in three experimental groups (T1, T2, T3) and the control group. In the T1 group, inclusion of pea shell partially replaced the fish meal, in the T2 group − partially replaced the fish meal and de-oiled groundnut cake, in the T3 group − partially replaced the deoiled groundnut cake and fully replaced the de-oiled mustard cake. An increase in the average weight gain was observed in the T3 group (11.17 ± 0.08) with respect to the T1 (10.89 ± 0.11) and T2 (11.05 ± 0.11) groups but lower than that of control (11.84 ± 0.09; at p < 0.05). In the T3 group, the specific growth rate (SGR) was significantly lower (1.04 ± 0.01) than the control (1.08 ± 0.02; at p < 0.05) but not significantly different with T1 (1.01 ± 0.03) and T2 (1.03 ± 0.03) groups. In the T3 group, the feed conversion ratio (FCR) was comparably higher (1.07 ± 0.01) than control (1.01 ± 0.01) but lower than T1 (1.10 ± 0.01) and
T2 (1.09 ± 0.01) groups (p < 0.05). The study revealed that the inclusion of pea shells into fish feed can replace plant-based protein sources (mustard cake and groundnut cake).

References

Abebe, B. (2022). The Dietary Use of Pigeon Pea for Human and Animal Diets. The Scientific World Journal, Article ID 4873008, 12 pp. https://doi.org/10.1155/2022/4873008

APHA. (2005). Standard methods for the examination of water and wastewater. 21st Ed., Washington, DC, USA.

Abbasi, I. H. R., Abbasi, F., El-Hack, M. E. A., Abdel-Latif, M. A., Soomro, R. N., Hayat, K., Mohamed, M. A. E., Bodinga, B. M., Yao, J. & Cao, Y. (2018). Critical analysis of excessive utilization of crude protein in ruminants ration: impact on environmental ecosystem and opportunities of supplementation of limiting amino acids − a review. Environmental Science and Pollution Research, 25(1), 181−190. https://doi.org/10.1007/s11356-017-0555-4

Bakshi, M. P. S., Wadhwa, M. & Makkar, H. P. (2016). Waste to worth: vegetable wastes as animal feed. CABI Reviews, 11(12), 1−26. https://doi.org/10.1079/PAVSNNR201611012

de Boer, J., Helms, M. & Aiking, H. (2006). Protein consumption and sustainability: Diet diversity in EU-15. Ecological Economics, 59(3), 267−274. https://doi.org/10.1016/j.ecolecon.2005.10.011

El-Nadi, A. S., Abozaid, H., Elkady, R. I. & Khames, D. K. (2017). Influence of different levels of potato peels on growth performance and carcass analysis of Nile Tilapia. Inter-national Journal of ChemTech Research, 10(2), 582−587.

FAO. (2019). Moving forward on food loss and waste reduction food and agriculture. 1st Ed., Food and Agriculture Organization of the United Nations (FAO). http://www.fao.org/3/ca6030en/ca6030en.pdf

FAOSTAT. (2017). Food and Agriculture Data. http://www.fao.org/faostat/en/#home

Hanan, E., Rudra, S. G., Sagar, V. R. & Sharma, V. (2020). Utilization of pea pod powder for formulation of instant pea soup powder. Journal of Food Processing and Preservation, 44(11), e14888. https://doi.org/10.1111/jfpp.14888

Joardder, M. U. & Masud, M. H. (2019). Causes of food waste. Food Preservation in Developing Countries: Challenges and Solutions. Springer International Publishing, pp. 27−55. https://doi.org/10.1007/978-3-030-11530-2_2

Klupšaitė, D. & Juodeikienė, G. (2015). Legume: Composition, protein extraction and functional properties. A review. Chemical Technology, 66(1), 5−12. https://doi.org/10.5755/j01.ct.66.1.12355

Kumari, T. & Deka, S. C. (2021). Potential health benefits of garden pea seeds and pods: A review. Legume Science, 3(2), e82. https://doi.org/10.1002/leg3.82

Kaur, S., Kaur, V. I., Holeyappa, S. A. & Khairnar, S. O. (2016). Effect of Dietary Supplementation of Synthetic and Natural β-Carotene on Survival, Growth and Pigmentation in Freshwater Ornamental Koi (Cyprinus carpio L.) Carp. Indian Journal of Animal Nutrition, 33(4), 448−455. http://dx.doi.org/10.5958/2231-6744.2016.00079.7

Kaur, R. & Shah, T. K. (2017). A review on the role of plant waste products on fish growth, health, and production. Journal of Entomology and Zoology Studies, 5(3), 583−589.

Katsarova, I. (2016). Tackling food waste: The EU's contribution to a global issue, EPRS: European Parliamentary Research Service. Belgium. https://www.europarl.europa.eu/RegData/etudes/BRIE/2016/593563/EPRS_BRI(2016)593563_EN.pdf

Lu, Z. X., He, J. F., Zhang, Y. C. & Bing, D. J. (2020). Composition, physicochemical properties of pea protein and its application in functional foods. Critical Reviews in Food Science and Nutrition, 60(15), 2593−2605. https://doi.org/10.1080/10408398.2019.1651248

Mateos-Aparicio, I., Redondo-Cuenca, A. & Villanueva-Suárez, M. J. (2012). Broad bean and pea by-products as sources of fiber-rich ingredients: potential antioxidant activity measured in vitro. Journal of the Science of Food and Agriculture, 92(3), 697−703. https://doi.org/10.1002/jsfa.4633

Mateos-Aparicio, I., Redondo-Cuenca, A., Villanueva-Suárez, M. J., Zapata-Revilla, M. A. & Tenorio-Sanz, M. D. (2010). Pea pod, broad bean pod and okara, potential sources of functional compounds. LWT-Food Science and Techno-logy, 43(9), 1467−1470. https://doi.org/10.1016/j.lwt.2010.05.008

Mejri, F., Karmali, A., Jaoued, N., Casabianca, H. & Hosni, K. (2019). Purification and partial characterization of peroxidases from three food waste by-products: broad bean pods, pea pods, and artichoke stems. Applied Biochemistry and Biotechnology, 189(2), 576−588. https://doi.org/10.1007/s12010-019-03028-8

Meenakshi, G. (2015). Nutritional evaluation and utilization of pea pod powder for preparation of jaggery biscuits. Journal of Food Processing and Technology, 6(12), 1−4.

Millar, K. A., Gallagher, E., Burke, R., McCarthy, S. & Barry-Ryan, C. (2019). Proximate composition and anti-nutritional factors of fava-bean (Vicia faba), green-pea and yellow-pea (Pisum sativum) flour. Journal of Food Composition and Analysis, 82, 103233. https://doi.org/10.1016/j.jfca.2019.103233

Nyina-Wamwiza, L., Richir, J., Kestemont, P., Wathelet, B. & Rollin, X. (2010). Partial or total replacement of fishmeal by local agricultural by products in diets of juvenile African catfish (Clarias gariepinus): growth performance, feed efficiency and digestibility. Aquaculture Nutrition, 16(3), 237−247. https://doi.org/10.1111/j.1365-2095.2009.00658.x

Nasir, G., Zaidi, S. & Tabassum, N. (2022). A review on nutritional composition, health benefits and potential applications of by-products from pea processing. Biomass Conversion and Biorefinery, 1−14. https://doi.org/10.1007/s13399-022-03324-0

Omoregie, E., Igoche, L., Ojobe, T. O., Absalom, K. V. & Onusiriuka, B. C. (2009). Effect of varying levels of sweet potato (Ipomea Batatas) peels on growth, feed utilization and some biochemical responses of the cichlid (Oreochromis niloticus). African Journal of Food, Agriculture, Nutrition and Development, 9(2), 700−712. https://doi.org/10.4314/ajfand.v9i2.19227

Plazzotta, S., Cottes, M., Simeoni, P. & Manzocco, L. (2020). Evaluating the environmental and economic impact of fruit and vegetable waste valorisation: The lettuce waste study-case. Journal of Cleaner Production, 262, 121435. https://doi.org/10.1016/j.jclepro.2020.121435

Sachan, Y., Shyama, S., Uchoi, R. & Sreenath, V. R. (2016). Growth response of Catla (Catla catla) fed Vegetable and fruit processing Waste based Diets. Research Journal of Animal, Veterinary and Fishery Sciences, 4(2), 7−12.

Sagar, N. A., Pareek, S., Sharma, S., Yahia, E. M. & Lobo, M. G. (2018). Fruit and vegetable waste: Bioactive compounds, their extraction, and possible utilization. Comprehensive Reviews in Food Science and Food Safety, 17(3), 512−531. https://doi.org/10.1111/1541-4337.12330

Skaf, L., Franzese, P. P., Capone, R. & Buonocore, E. (2021). Unfolding hidden environmental impacts of food waste: An assessment for fifteen countries of the world. Journal of Cleaner Production, 310, 127523. https://doi.org/10.1016/j.jclepro.2021.127523

Scherhaufer, S., Moates, G., Hartikainen, H., Waldron, K. & Obersteiner, G. (2018). Environmental impacts of food waste in Europe. Waste Management, 77, 98−113. https://doi.org/10.1016/j.wasman.2018.04.038

Tonini, D., Albizzati, P. F. & Astrup, T. F. (2018). Environmental impacts of food waste: Learnings and challenges from a case study on UK. Waste Management, 76, 744−766. https://doi.org/10.1016/j.wasman.2018.03.032

Thi, N. B. D., Kumar, G. & Lin, C. Y. (2015). An overview of food waste management in developing countries: Current status and future perspective. Journal of Environmental Management, 157, 220−229. https://doi.org/10.1016/j.jenvman.2015.04.022

Tassoni, A., Tedeschi, T., Zurlini, C., Cigognini, I. M., Petrusan, J. I., Rodríguez, Ó., Neri, S., Celli, A., Sisti, L., Cinelli, P., Signori, F., Tsatsos, G., Bondi, M., Verstringe, S., Bruggerman, G. & Corvini, P. F. X. (2020). State-of-the-art production chains for peas, beans and chickpeas − valorization of agro-industrial residues and appli-cations of derived extracts. Molecules, 25(6), 1383. https://doi.org/10.3390/molecules25061383

Torres-León, C., Ramírez-Guzman, N., Londoño-Hernandez, L., Martinez-Medina, G. A., Díaz-Herrera, R., Navarro-Macias, V., Alvarez-Pérez, O. B., Picazo, B., Villarreal-Vázquez, M., Ascacio-Valdes, J. & Aguilar, C. N. Food waste and byproducts: An opportunity to minimize malnutrition and hunger in developing countries. Frontiers in Sustainable Food Systems, 2, 52. https://doi.org/10.3389/fsufs.2018.00052

Upasana, Deepa Vinay. (2018). Nutritional evaluation of pea peel and pea peel extracted byproducts. International Journal of Food Science and Nutrition, 3(1), 65−67. http://www.foodsciencejournal.com/archives/2018/vol3/issue1/3-1-20

Wadhwa, M. & Bakshi, M. P. S. (2013). Utilization of fruit and vegetable wastes as livestock feed and as substrates for generation of other value-added products. Rap Publication, 4, pp. 67.

Wadhwa, M., Kaushal, S. & Bakshi, M. P. S. (2006). Nutritive evaluation of vegetable wastes as complete feed for goat bucks. Small Ruminant Research, 64(3), 279−284. https://doi.org/10.1016/j.smallrumres.2005.05.017

Wadhwa, M., Bakshi, M. P. S. & Makkar, H. P. S. (2017). Utilization of empty pea (Pisum sativum) pods as livestock feed. Broadening Horizones, 46, 1−4.

Yadav, R. P., Shyama, S., Yogesh Sachan Sreenath, V. R. & Uchoi, R. (2016). Vegetable Processing Wastes as Dietary Ingredients for the Striped Catfish Panga-sianodon hypophthalmus: A Case Study. Research Journal of Animal, Veterinary and Fishery Sciences, 4(1), 5−11.

Zhang, S. J., Hu, T. T., Chen, Y. Y., Wang, S. & Kang, Y. F. (2020). Analysis of the polysaccharide fractions isolated from pea (Pisum sativum L.) at different levels of purification. Journal of Food Biochemistry, 44(8), e13248. https://doi.org/10.1111/jfbc.13248

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2023-06-16

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