Effectiveness of Hydrated Sodium Calcium Aluminosilicate (HSCAS) in Mitigating the Adverse Effects of Aflatoxin on In Vitro Rumen Fermentation of Wheat Straw
DOI:
https://doi.org/10.48165/ijvsbt.20.5.23Keywords:
Aflatoxin, Buffalo, Hydrated sodium calcium aluminosilicate, In vitro Rumen fermentationAbstract
To study the effect of hydrated sodium calcium aluminosilicate (HSCAS) in ameliorating adverse effects of aflatoxin on in vitro rumen fermentation, five treatment groups, viz., T1: control (wheat straw; 0.2 g); T2: T1+300 ppb Aflatoxin B1 (AFB1); T3: T2+0.33% HSCAS; T4: T2+0.5% HSCAS and T5: T2+ 1.0% HSCAS were prepared and incubated in vitro. The results revealed that truly degradable dry matter (TDDM), truly degradable organic matter (TDOM), gas production (GP), microbial biomass production (MBP) and partitioning factor (PF) values in aflatoxin contaminated group (T2) were lower (p<0.05) than those of other treatment groups. The TDDM, TDOM, GP, MBP and PF values in control group (T1) were higher than those of other treatment groups, i.e., T2 to T5. These parameters improved with increasing concentration of HSCAS. The total volatile fatty acids (TVFA), acetate (A), propionate (P) and butyrate (B) values in control group (T1) were higher (p<0.05) than those of other treatment groups, i.e., T2 to T5. The TVFA, A, P and B values in aflatoxin contaminated T2 group were lower (p<0.05) than those of other treatment groups. The A:P value among various dietary treatments did not vary significantly. It was concluded that aflatoxin contamination of feed (wheat straw) at 300 ppb level significantly affected the in vitro rumen fermentation in terms of reduced TDDM, TDOM, GP, MBP, PF, TVFA concentration. Inclusion of hydrated sodium calcium aluminosilicate to the aflatoxin contaminated feed partially ameliorated the adverse effects of aflatoxin on in vitro rumen fermentation parameters.
Downloads
References
Blummel, M., Makkar, H.P.S., & Becker, K. (1997). In vitro gas production: A technique revisited. Journal of Animal Physiology and Animal Nutrition, 77, 24-34.
Cook, W.O., Richard, J.L., Osweiller, G.D., & Trampel, D.W. (1986). Clinical and pathologic changes in acute bovine aflatoxicosis: Rumen motility and tissue and fluid concentrations of aflatoxins B1 and M1. American Journal of Veterinary Research, 47, 1817-1825.
Cottyn, B.G., & Boucque, C.V. (1968). Rapid method for the gas chromatographic determination of volatile fatty acids in rumen fluid. Journal of Agricultural and Food Chemistry, 16, 105-107.
Edrington, T.S., Harvey, R.B., & Kubena, L.F. (1994). Effect of aflatoxin in growing lambs fed ruminally degradable or escape protein sources. Journal of Animal Science, 72, 1274-1281.
Gholami-Ahangaran, M., Rangsaz, N., & Azizi, S. (2016). Evaluation of turmeric (Curcuma longa) effect on biochemical and pathological parameters of liver and kidney in chicken aflatoxicosis. Pharmaceutical Biology, 54(5), 780-787.
Harikrishna, Ch., Mahender, M., Ramana Reddy, Y., Gnana Prakash, M., Sudhakar, K., & Pavani, M. (2012). Evaluation of in vitro gas production and nutrient digestibility of complete diets supplemented with different levels of thermotolerant yeast in Nellore rams. Veterinary World, 5(8), 477-485.
Helferich, W.G., Baldwin, R.L., & Hsieh, D.P.H. (1986a). [14C]-aflatoxin B1 metabolism in lactating goats and rats. Journal of Animal Science, 62, 697-705.
Helferich, W.G., Garrett, W.N., Hsieh, D.P.H., & Baldwin, R.L. (1986b). Feedlot performance and tissue residues of cattle consuming diets containing aflatoxins. Journal of Animal Science, 62, 691-696.
Jiang, Y.H., Yang, H.J., & Lund, P. (2012). Effect of aflatoxin B1 on in vitro ruminal fermentation of rations high in alfalfa hay or ryegrass hay. Animal Feed Science and Technology, 175, 85-89.
Jiang, Y., Zhu, W., & Zhang, S. (2018). In vitro fermentation characteristics of different types of dietary fibers by rumen microorganisms. Journal of Animal Science and Biotechnology, 9(1), 1-10.
Karami, V., Ebrahimzadeh, H., & Pirmohammadi, R. (2017). Effect of yeast (Saccharomyces cerevisiae) on in vitro gas production parameters and digestion of alfalfa hay in ruminants. Iranian Journal of Applied Animal Science, 7(2), 231-239.
Kourousekos, G.D., Theodosiadou, E., Belibasaki, S., Deligiannis, K., Koukoulas, Th., Zoulfos, K., & Lymberopoulos, A.G. (2012). Effects of aflatoxin B1 administration on Greek indigenous goats’ milk. International Dairy Journal, 24, 123-129.
Kubena, L.F., Harvey, R.B., Huff, W.E., Corrier, D.E., Phillips, T.D., & Rottinghaus, G.E. (1990). Efficacy of a hydrated sodium calcium aluminosilicate to reduce the toxicity of aflatoxin and T-2 toxin. Poultry Science, 69(7), 1078-1086.
Kutz, R.E., Sampson, J.D., Pompeu, L.B., Ledoux, D.R., Spain, J.N., Vazquez-Anon, M., & Rottinghaus, G.E. (2009). Efficacy of Solis, NovasilPlus, and MTB-100 to reduce aflatoxin M1 levels in milk of early to mid lactation dairy cows fed aflatoxin B1. Journal of Dairy Science, 92, 3959-3963.
Ledoux, D.R., Rottinghaus, G.E., Bermudez, A.J., & Alonso-Debolt, M. (2009). Efficacy of a hydrated sodium calcium aluminosilicate to ameliorate the toxic effects of aflatoxin in broiler chicks. Poultry Science, 78(2), 204-210.
Mojtahedi, M., DaneshMesgaran, M., Vakili, S.A., & Hayati-Ashtiani, M. (2013). Effect of aflatoxin B1 on in vitro rumen microbial
fermentation responses using batch culture. Annual Review and Research in Biology, 3(4), 686-693.
Phillips, T.D., Afriyie-Gyawu, E., Wang, J.S., Williams, J., & Huebner, H. (2006). The potential of aflatoxin sequestering clay. In: D. Barug, D. Bhatnagar, H. Van Egmond, J. Van der Kamp, W. Van Osenbruggen, & A. Visconti (Eds.), The Mycotoxin Fact Book.
Wageningen: Wageningen Academic Publishers, pp. 329-346. Phillips, T.D., Afriyie-Gyawu, E., Williams, J., Huebner, H., Ankrah, N.A., Ofori-Adjei, D., & Jolly, P. (2008). Reducing human exposure to aflatoxin through the use of clay: A review. Food Additives & Contaminants: Part A, 25(2), 134-145.
Phillips, T.D., Lemke, S.L., & Grant, P.G. (2002). Characterization of clay-based enterosorbents for the prevention of aflatoxicosis. Advances in Experimental Medicine and Biology, 504, 157-171.
Queiroz, O.C., Han, J.H., Staples, C.R., & Adesogan, A.T. (2012). Effect of adding a mycotoxin-sequestering agent on milk aflatoxin M1 concentration and the performance and immune response of dairy cattle fed an aflatoxin B1-contaminated diet. Journal of Dairy Science, 95, 5901-5908.
Sarr, A.B., Clement, B.A., & Phillips, T.D. (1990). Effects of molecular structure on the chemisorption of aflatoxin B1 and related compounds by hydrated sodium calcium aluminosilicate. Toxicologist, 10(1), 163.
Singh, R., & Saini, A.K. (2020a). Effect of mannan oligosaccharides (MOS) to ameliorate adverse effects of aflatoxin on in vitro rumen fermentation of a buffalo diet. Veterinary Research International, 8(2), 78-84.
Singh, R., & Saini, A.K. (2020b). Effect of diatomaceous earth (DE) to ameliorate adverse effects of aflatoxin on In Vitro rumen fermentation of a buffalo diet. Veterinary Research International, 8(2), 154-159.
Singh, R., & Shamsudeen, P. (2008). Aflatoxigenic potential of Aspergillus parasiticus MTCC 411 and Aspergillus parasiticus NRRL 2999 under laboratory conditions. Indian Journal of Poultry Science, 43(2), 245-246.
Singh, R., Park, S., Koo, J.S., & Balasubramanian, B. (2020). Influence of various concentrations of aflatoxin B1 on in vitro rumen fermentation of a buffalo diet. Korean Journal of Agricultural Science, 47(1), 131-138.
Smith, E.E., Phillips, T.D., Ellis, J.A., Harvey, R.B., Kubena, L.F., Thompson, J., & Newton, G. (1994). Hydrated sodium calcium aluminosilicate reduction of AFM1 residues in dairy goat milk. Journal of Animal Science, 72, 677-682.
Van Soest, P. J., Robertson, J. B., & Lewis, B. A. (1991). Methods for dietary fiber, neutral detergent fiber and non-starch polysaccharides in relation to animal nutrition. Journal of Dairy Science, 74(10), 3583-3597.
Wu, L., Liao, P., He, L., Feng, Z., Ren, W., & Yin, J. (2015). Dietary L-Arginine supplementation protects weanling pigs from deoxynivalenol-induced toxicity. Toxins, 7, 1341-1354.
Wu, M., Xiao, H., Ren, W., Yin, J., Hu, J., & Duan, J. (2014). An NMR based metabolomic approach to investigate the effects of supplementation with glutamic acid in piglets challenged with deoxynivalenol. Plos One, 9, e113687.
Yeanpet, C., Thamrongyoswittayakul, C., Wachirapakorn, C., Songsermsakul, P., Somphon, N., & Wongnen, C. (2018). Efficacy of mycotoxin adsorbents on aflatoxin B1 decontamination and in vitro rumen fermentation. Prawarun Agriculture Journal, 15(1), 260-268.
Downloads
Published
Issue
Section
License
Copyright (c) 2024 Indian Journal of Veterinary Sciences and Biotechnology
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.