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Abbas Z., Blank R., Wein S., Wolffram S. (2013). Effect of quercetin on the toxicokinetics of ochratoxin A in rats. Food Addit. Contam. Part A Chem. Anal. Control Expo Risk Assess., 30: 861–866. Search in Google Scholar

Abdel-Wahhab M.A., Aljawish A., El-Nekeety A.A., Abdel-Aziem S.H., Hassan N.S. (2017). Chitosan nanoparticles plus quercetin suppress the oxidative stress, modulate DNA fragmentation and gene expression in the kidney of rats fed ochratoxin A-contaminated diet. Food Chem. Toxicol., 99: 209–221. Search in Google Scholar

Adamović M., Stojanović M., Lopičić Z., Milojković J., Lačnjevac Č., Petrović J., Bočarov-Stančić A. (2013). Biosorpcija mikotoksina otpadnom biomasom. Zaštita materijala (in Serbian), 54: 327–333. Search in Google Scholar

Adunphatcharaphon S., Petchkongkaew A., Greco D., D’Ascanio V., Visessanguan W., Avantaggiato G. (2020). The effectiveness of durian peel as multi-mycotoxin adsorbent. Toxins, 12: 108. Search in Google Scholar

Ahmadou A., Napoli A., Durand N., Montet D. (2019). High physical properties of cashew nut shell biochars in the adsorption of mycotoxins. Int. J. Food Res., 6: 1828. Search in Google Scholar

Alaniz C., Regil E., Cruz G., Torres J., Monroy J. (2012). Composition and properties of tectosilicate-uranium layers of soil. Eur. J. Chem., 3: 32–36. Search in Google Scholar

Alegakis A.K., Tsatsakis A.M., Shtilman M.I., Lysovenko D.L., Vlachonikolis I.G. (1999). Deactivation of mycotoxins. An in vitro study of zearalenone adsorption on new polymeric adsorbents. J. Environ. Sci. Health B, 34: 633−644. Search in Google Scholar

Aly S., Abdel-Galil M.M., Abdel-Wahhab M.A. (2004). Application of adsorbent agents technology in the removal of aflatoxin B1 and fumonisin B1 from malt extract. Food Chem. Toxicol., 42: 1825‒1831. Search in Google Scholar

Assaf J.C., Nahle S., Chokr A., Louka N., Atoui A. (2019). Assorted methods for decontamination of aflatoxin M1 in milk using microbial adsorbents. Toxins, 11: 304. Search in Google Scholar

Avantaggiato G., Havenaarb R., Viscontia A. (2004). Evaluation of the intestinal absorption of deoxynivalenol and nivalenol by an in vitro gastrointestinal model, and the binding efficacy of activated carbon and other adsorbent materials Food Chem. Toxicol., 42: 817–824. Search in Google Scholar

Avantaggiato G., Greco D., Damascelli A., Solfrizzo M., Visconti A. (2014). Assessment of multi-mycotoxin adsorption efficacy of grape pomace. J. Agric. Food Chem., 62: 497–507. Search in Google Scholar

Azizpour A., Moghadam N. (2015). Assessment of serum biochemical parameters and pathological changes in broilers with chronic aflatoxicosis fed glucomannan-containing yeast product (Mycosorb) and sodium bentonite. J. Vet. Res., 59: 205–211. Search in Google Scholar

Basmacioglu H., Oguz H., Ergul M., Col R., Birdane Y.O. (2005). Effect of dietary esterified glucomannan on performance, serum biochemistry and hematology in broilers exposed to AF. Czech J. Anim. Sci., 50: 31–39. Search in Google Scholar

Bata Á., Lásztity R. (1999). Detoxification of mycotoxin-contaminated food and feed by microorganisms. Trends Food Sci. Tech., 10: 223–228. Search in Google Scholar

Ben Salem I., Prola A., Boussabbeh M., Guilbert A., Bacha H., Abid-Essefi S., Lemaire C. (2015). Crocin and quercetin protect HCT116 and HEK293 cells from zearalenone-induced apoptosis by reducing endoplasmic reticulum stress. Cell Stress Chaperones., 20: 927–938, Search in Google Scholar

Berezkin V.I., Viktorovskii I.V., Vul’, A.Y., Golubev L.V., Petrova V.N., Khoroshko L.O. (2003). Fullerene single crystals as adsorbents of organic compounds. Semiconductors, 37: 775–783. Search in Google Scholar

Bhatti S.A., Khan M.Z., Hassan Z.U., Saleemi M.K., Saqib M., Khatoon A., Akhter M. (2018). Comparative efficacy of Bentonite clay, activated charcoal and Trichosporon mycotoxinivorans in regulating the feed‐to‐tissue transfer of mycotoxins. J. Sci. Food. Agric., 98: 884‒890. Search in Google Scholar

Bočarov-Stančić A., Adamović M., Salma N., Bodroža Solarov M., Vučković J., Pantić V. (2011). In vitro efficacy of mycotoxins adsorption by natural mineral adsorbents. Biotechnol. Anim. Husb., 27: 1241‒1251. Search in Google Scholar

Bočarov-Stančić A., Lopičić Z., Bodroža Solarov M., Stanković S., Janković S., Milojković J., Krulj J. (2018). In vitro removing of mycotoxins by using different inorganic adsorbents and organic waste materials from Serbia. Food Feed Res. 45: 87‒96. Search in Google Scholar

Boudergue C., Burel C., Dragacci S., Favrot M-C., Fremy J-M., Massimi C., Prigent P., Debongnie P., Pussemier L., Boudra H., Morgavi D. (2009). Review of mycotoxin‐detoxifying agents used as feed additives: mode of action, efficacy and feed/food safety. EFSA Supporting Publications, 6: 22E. Search in Google Scholar

Bräse S., Gläser F., Kramer C., Lindner S., Linsenmeier A.M., Masters K-S., Meister A.C., Ruff B.M., Zhong S. (2013). Progress in the chemistry of organic natural products. The Chemistry of Mycotoxins. Prog. Chem. Org. Nat. Prod., 97: v-xv, 1-300. Search in Google Scholar

Brigatti M.F., Galan E., Theng B.K.G. (2006). Structures and mineralogy of clay minerals. In: Handbook of Clay Science, Bergaya F., Theng B.K.G., Lagaly G. (eds). Elsevier, Oxford, UK, pp. 19-87. Search in Google Scholar

Cantrell K.B., Hunt P.G., Uchimiya M., Novak J.M., Ro K.S. (2012). Impact of pyrolysis temperature and manure source on physicochemical characteristics of biochar. Bioresour. Technol., 107: 419−428. Search in Google Scholar

Cavret S., Laurent N., Videmann B., Mazallon M., Lecoeur S. (2010). Assessment of deoxynivalenol (DON) adsorbents and characterisation of their efficacy using complementary in vitro tests. Food Addit. Contam. Part A Chem. Anal. Control Expo. Risk Assess., 27: 43–53. Search in Google Scholar

Che Z.Q., Liu Y.L., Wang H.R., Zhu H.L., Hou Y.Q., Wang W.J., Ding B.Y. (2011). The protective effects of different mycotoxin adsorbents against blood and liver pathological changes induced by mold-contaminated feed in broilers. Asian-Austral. J. Anim. Sci., 24: 250–257. Search in Google Scholar

Chefchaou H., Mzabi A., Tanghort M., Moussa H., Chami N., Chami F., Remmal A. (2019). A comparative study of different mycotoxin adsorbents against DON, T2 Toxin, Aflatoxins and Fumonisins production in maize flour. Livest. Res. Rural Dev., 31: 1–9. Search in Google Scholar

Chen W., Duan L., Zhu D.Q. (2007). Adsorption of polar and nonpolar organic chemicals to carbon nanotubes. Environ. Sci. Technol., 41: 8295–8300. Search in Google Scholar

Chlebicz A., Śliźewska K. (2020). In vitro detoxification of aflatoxin B1 deoxynivalenol fumonisins T-2 toxin and zearalenone by probiotic bacteria from genus Lactobacillus and Saccharomyces cerevisiae yeasts, probiotics and antimicrobial proteins. Probiotics Antimicrob. Proteins, 12: 289–301. Search in Google Scholar

Daković A., Kragovic M., Rottinghaus G.E., Sekulić Z., Miličević S., Milojnić S.K., Zarić S. (2010). Influence of natural zeolitic tuff and organozeolites surface charge on sorption of ionizable fumonisin B1. Colloids Surf. B, 76: 272–278. Search in Google Scholar

Daković A., Matijašević S., Rottinghaus G.E., Dondur V., Pietrass T., Clewett C.F.M. (2007). Adsorption of zearalenone by organomodified natural zeolitic tuff. J. Colloid Interface Sci., 311: 8‒13. Search in Google Scholar

Daković A., Tomasevic-Canovic M., Dondur V., Rottinghaus G.E., Medakovic V., Zaric S. (2005). Adsorption of mycotoxins by organozeolites. Colloids Surf. B., 46: 20–25. Search in Google Scholar

Denli M., Okan F. (2006). Efficacy of different adsorbents in reducing the toxic effects of aflatoxin B1 in broiler diets. S. Afr. J. Anim. Sci., 36: 222‒228. Search in Google Scholar

Di Gregorio M.C., de Neeff D.V., Vincenzi Jager A., Corassin C.H., de Pinho Carão A.C., de Albuquerque R., de Azevedo A.C., Fernandes Oliveira C.A. (2014). Mineral adsorbents for prevention of mycotoxins in animal feed. Toxin Rev., 33: 125–135. Search in Google Scholar

Döll S., Dänicke S., Valenta H., Flachowsky G. (2004). In vitro studies on the evaluation of mycotoxin detoxifying agents for their efficacy on deoxynivalenol and zearalenone. Arch. Anim. Nutr., 58: 311–24. Search in Google Scholar

Drits V.A., Guggenheim S., Zviagina B.B., Kogure T. (2012). Structures of the 2:1 layers of pyrophyllite and talc. Clays Clay Miner., 60: 574–587. Search in Google Scholar

Elliott C.T., Connolly L., Kolawole O. (2020). Potential adverse effects on animal health and performance caused by the addition of mineral adsorbents to feeds to reduce mycotoxin exposure. Mycotoxin Res., 36: 115–126. Search in Google Scholar

El-Nekeety A.A., El-Kay A.A., Abdel-Wahhab K.E., Hassan N.S., Abdel-Wahhab M.A. (2017). Reduction of individual or combined toxicity of fumonisin B1 and zearalenone via dietary inclusion of organo-modified nano-montmorillonite in rats. Environ. Sci. Pollut. Res., 24: 20770–20783. Search in Google Scholar

El-Sayed H., El-Sayed M.M.H. (2014). Assessment of food processing and pharmaceutical industrial wastes as potential biosorbents: A Review. BioMed Res. Int., Article ID 146769. Search in Google Scholar

European Biochar Foundation (EBC). (2012). European biochar certificate guidelines for a sustainable production of biochar. Version 8.2 of 19th April 2019. http://www.european-biochar.org/en/download. Accessed 28 June 2021. Search in Google Scholar

Farzaneh M., Shi Z.Q., Ahmadzadeh M., Hu L.B., Ghassempour A. (2016). Inhibition of the Aspergillus flavus growth and aflatoxin B1 contamination on pistachio nut by fengycin and surfactin-producing Bacillus subtilis UTBSP1. Plant. Pathol. J., 32: 209–215. Search in Google Scholar

Fashandi H.M., Abbasi R., Khaneg A.M. (2018). The detoxification of aflatoxin M1 by Lactobacillus acidophilus and Bifidobacterium - A review. J. Food Process. Preserv., 42: e13704. Search in Google Scholar

Fernandes J-M., Calado T., Guimarães A.C., Rodrigues M.A., Abrunhosa L. (2019). In vitro adsorption of aflatoxin B1 ochratoxin A and zearalenone by micronized grape stems and olive pomace in buffer solutions. Mycotoxin Res., 35: 43–252. Search in Google Scholar

Fiegenbaum T.S. (2019). Effects of mycotoxin binders on serum levels of vitamins and minerals in pigs. Dissertation, University of Veterinary Medicine Budapest. Search in Google Scholar

Fomina M., Gadd G.M. (2014). Biosorption: Current perspectives on concept definition and application. Bioresour. Technol., 160: 3–14. Search in Google Scholar

Freimund S., Sauter M., Rys P. (2003). Efficient adsorption of the mycotoxins zearalenone and T-2 toxin on a modified yeast glucan. J. Environ. Sci. Health. B., 38: 243–55. Search in Google Scholar

Gallo A., Rocchetti G., Piccioli Cappelli F., Pavone S., Mulazzi A., van Kuijk S., Han Y., Trevisi E. (2020). Effect of a commercial bentonite clay (smectite clay) on dairy cows fed aflatoxin-contaminated feed. Dairy, 1: 135‒153. Search in Google Scholar

Gibson N., Shenderova O., Luo T.J.M., Moseenkov S., Bondar V., Puzyr A, Purtov K., Fitzgerald Z., Brenner D.W. (2009). Colloidal stability of modified nanodiamond particles. Diam. Relat. Mater., 18: 620–626. Search in Google Scholar

Gibson N.M., Luo T.J.M., Brenner D.W., Shenderova O. (2011). Immobilization of mycotoxins on modified nanodiamond substrates. Biointerphases, 6: 210–217. Search in Google Scholar

Giovati L., Magliani W., Ciociola T., Santinoli C., Conti S., Polonelli L. (2015). AFM1 in milk: Physical, biological, and prophylactic methods to mitigate contamination. Toxins, 7: 4330‒49. Search in Google Scholar

Girish C.K., Devegowda G. (2006). Efficacy of glucomannan-containing yeast product (Mycosorb®) and hydrated sodium calcium aluminosilicate in preventing the individual and combined toxicity of aflatoxin and t-2 toxin in commercial broilers. Asian-Aust. J. Anim. Sci., 19: 877‒883. Search in Google Scholar

Greco D., D’Ascanio V., Santovito E., Logrieco A.F., Avantaggiato G. (2019). Comparative efficacy of agricultural by‐products in sequestering mycotoxins. J. Sci. Food Agric., 99: 1623–1634. Search in Google Scholar

Gruber-Dorninger C., Jenkins T., Schatzmayr G. (2019). Global mycotoxin occurrence in feed: A ten-year survey. Toxins, 11: 375. Search in Google Scholar

Hauschild L., Lovatto P.A., Lehnen C.R., d’ Ávila Carvalho A., Guarez Garcia G., Mallmann C.A. (2007). Digestibility and metabolism of piglet diets containing zearalenone with addition of organoaluminosilicate. Pesq. Agropec. Bras., 42: 219–24. Search in Google Scholar

Hernández-Maldonado A.J., Guerrero-Medina J., Arce-González V.C. (2013). Long range structural and textural changes in [Zn(bdc)(ted)0.5] upon spontaneous dispersion of LiCl and hysteretic adsorption and desorption of carbon dioxide and hydrogen. J. Mater. Chem. A, 1: 2343–2350. Search in Google Scholar

Hernández-Patlan D., Solis-Cruz B., Hargis B.M., Tellez G. (2018). Chitoneous materials for control of foodborne pathogens and mycotoxins in poultry. In: Chitin-chitosan-myriad functionalities in science and technology, 1st edn. Dongre R.S. (ed). IntechOpen Publishers, London, UK, pp. 261-282. Search in Google Scholar

Horky P., Skalickova S., Baholet D., Skladanka J. (2018). Nanoparticles as a solution for eliminating the risk of mycotoxins. Nanomaterials, 8: 727−747. Search in Google Scholar

Huang J., Huang Z., Kang Y., Wang A., Zeng L. (2016). Mycotoxin adsorbent preparation used for removing feed mycotoxin zearalenone and reducing diarrhea and used as antibacterial involves dissolving chitosan in organic acid solution and then adding rectorite to solution. CN103831088-A Patent. Search in Google Scholar

IARC Scientific Publications (2012). Chemical and physical characteristics of the principal mycotoxins. IARC Sci. Publ., 158: 31–38. Search in Google Scholar

Jard G., Liboz T., Mathieu F., Guyonvarc’h A., Lebrihi A. (2011). Review of mycotoxin reduction in food and feed: from prevention in the field to detoxification by adsorption or transformation. Food Addit. Contam. Part A Chem. Anal. Control Expo. Risk Assess., 28: 1590–1609. Search in Google Scholar

Kabak B., Dobson A.D., Var I. (2006). Strategies to prevent mycotoxin contamination of food and animal feed: a review. Crit. Rev. Food Sci. Nutr., 46: 593‒619. Search in Google Scholar

Kalagatur K.N., Karthick K., Allen J.A., Ghosal O.S.N., Chandranayaka S., Gupta V.K., Krishna K., Mudili V. (2017). Application of activated carbon derived from seed shells of Jatropha curcas for decontamination of zearalenone mycotoxin. Front. Pharmacol., 24: 760. Search in Google Scholar

Kamalzadeh A., Hosseini A., Moradi S. (2009). Effects of yeast glucomannan on performance of broiler chickens. Int. J. Agric. Biol., 11: 4953. Search in Google Scholar

Karaman M., Basmacioglu H., Ortatatli M., Oguz H. (2005). Evaluation of the detoxifying effect of yeast glucomannan on aflatoxicosis in broilers as assessed by gross examination and histopathology. Brit. Poult. Sci., 46: 394–400. Search in Google Scholar

Kemboi D., Antonissen G., Ochieng P., Croubels S., De Baere S., Scippo M.L., Okoth S., Kangethe E., Faas J., Doupovec B., Lindahl J., Gathumbi J. (2023). Efficacy of bentonite and fumonisin esterase in mitigating the effects of aflatoxins and fumonisins in two Kenyan cattle breeds. J. Agric. Food Chem., 71: 2143–2151. Search in Google Scholar

Kermanshahi H., Hazegh A.R., Afzali N. (2009). Effect of sodium bentonite in broiler chickens fed diets contaminated with Aflatoxin B1. J. Anim. Vet. Adv., 8: 1631‒1636. Search in Google Scholar

Khajarern J.M., Khajarern S., Moon T.H., Lee J.H. (2003). Effects of dietary supplementation of fermented chitin-chitosan (FERMKIT) on toxicity of mycotoxin in ducks. Asian-Australas. J. Anim. Sci., 16: 706–713. Search in Google Scholar

Khan M.Z., Hameed M.R., Hussain T., Khan A., Javed I., Ahmad I., Hussain A., Saleemi M.K., Islam N.U. (2013). Aflatoxin residues in tissues of healthy and sick broiler birds at market age in Pakistan: A one-year study. Pak. Vet. J., 33: 423–427. Search in Google Scholar

Kohli E., Raj H.G., Kumari R., Rohil V., Kaushik N.K., Prasad A.K., Parmar V.S. (2002). Comparison of the prevention of aflatoxin B1-induced genotoxicity by quercetin and quercetin pentaacetate. Bioorg. Med. Chem. Lett., 12: 2579–2582. Search in Google Scholar

Kolawole O., Meneely J., Greer B., Chevallier O., Jones D.S, Connolly L., Elliott C. (2019). Comparative in vitro assessment of a range of commercial feed additives with multiple mycotoxin binding claims. Toxins, 11: 659. Search in Google Scholar

Kolossova A., Stroka J., Breidbach A., Kroeger K., Ambrosio M., Bouten K., Ulberth F. (2009). Evaluation of the effect of mycotoxin binders in animal feed on the analytical performance of standardised methods for the determination of mycotoxins in feed. European Commission. Joint Research Centre Scientific and Technical Reports https://publications.jrc.ec.europa.eu/repository/bitstream/JRC54375/report_binders_amj_fu_ak_final.pdf Search in Google Scholar

Kong C., Shin S.Y., Kim B.G. (2014). Evaluation of mycotoxin sequestering agents for aflatoxin and deoxynivalenol: an in vitro approach. Springerplus, 3: 346. Search in Google Scholar

Kosztik J., Mörtl M., Székács S., Kukolya J., Bata-Vidács I. (2020). Aflatoxin B1 and sterigmatocystin binding potential of Lactobacilli. Toxins, 12: 756. Search in Google Scholar

Kovač T., Šarkanj B., Klapec T., Borišev I., Kovač M., Nevistić A., Strelec I. (2017). Fullerol C60(OH)24 nanoparticles and mycotoxigenic fungi: A preliminary investigation into modulation of mycotoxin production. Environ. Sci. Pollut. Res., 24: 16673–16681. Search in Google Scholar

Kovalsky P., Kos G., Nahrer K., Schwab C., Jenkins T., Schatzmayr G., Sulyok M., Krska R. (2016). Co-occurrence of regulated, masked and emerging mycotoxins and secondary metabolites in finished feed and maize–An extensive survey. Toxins, 8: 363. Search in Google Scholar

Lakkawar A.W., Narayanaswamy H.D., Satyanarayana M.L. (2017). Study on efficacy of diatomaceous earth to ameliorate aflatoxin induced patho-morphological changes in liver and intestines of broiler chicken. Int. J. Livest. Res., 7: 71–84. Search in Google Scholar

Lesniak-Walentyn A., Kolesarova A., Medvedova M., Maruniakova N., Capcarova M., Kalafova A., Hrabia A., Sirotkin A.V. (2013). Proliferation and apoptosis in the rabbit ovary after administration of T-2 toxin and quercetin. J. Anim. Feed Sci., 22: 264–271. Search in Google Scholar

Li J., Suo D., Su X. (2010). Binding capacity for aflatoxin B1 by different adsorbents. Agric. Sci. China, 9: 449–56. Search in Google Scholar

Li Y., Tian G., Dong G., Bai S., Han X., Liang J., Meng J., Zhang H. (2018). Research progress on the raw and modified montmorillonites as adsorbents for mycotoxins: A review. Appl. Clay Sci., 163: 299–311. Search in Google Scholar

Liu Y., Yamdeu J.H.G., Gong Y.Y., Orfila C. (2020b). A review of postharvest approaches to reduce fungal and mycotoxin contamination of foods. Compr. Rev. Food Sci. Food Saf., 19: 1521–1560. Search in Google Scholar

Liu N., Wang J., Deng Q., Gu K., Wang J. (2018). Detoxification of aflatoxin B1 by lactic acid bacteria and hydrated sodium calcium aluminosilicate in broiler chickens. Livestock Science, 208, 28–32. Search in Google Scholar

Liu M., Zhang L., Chu X.H., Ma R., Wang Y.W., Liu Q., Zhang N.Y., Karrow N.A., Sun L.H. (2020a). Effects of deoxynivalenol on the porcine growth performance and intestinal microbiota and potential remediation by a modified HSCAS binder. Food Chem. Toxicol., 141: 111373. Search in Google Scholar

Liu M., Zhao L., Gong G., Zhang L., Shi L., Dai J., Han Y., Wu Y., Khalil M.M., Sun L. (2022). Invited review: Remediation strategies for mycotoxin control in feed. J. Animal Sci. Biotechnol., 13: 19. Search in Google Scholar

Loffredo E., Scarcia Y., Parlavecchia M. (2020). Removal of ochratoxin A from liquid media using novel low-cost biosorbents. Environ. Sci. Pollut. Res. Int., 27: 34484–34494. Search in Google Scholar

Loh Z.H., Ouwerkerk D., Klieve A.V., Hungerfod N.L., Fletcher M.T. (2020). Toxin degradation by rumen microorganisms: a review. Toxins, 12: 664. Search in Google Scholar

Lopičić Z., Bočarov-Stančić A., Stojanović M., Milojković J., Pantić V., Mihajlović M., Adamović M. (2013b). In vitro mycotoxins adsorption by sour cherry stones. Proc. 10th Search in Google Scholar

International Symposium Modern Trends in Livestock Production, Institute for Animal Husbandry, Belgrade, Serbia, 2–4.10.2013, p. 1142–1153. Search in Google Scholar

Lopičić Z.R., Bočarov-Stančić A.S., Stojanović M.D., Milojković J.V., Pantić V.R., Adamović M.J. (2013a). In vitro evaluation of the efficacy of peach stones as mycotoxin binders. Jour. Nat. Sci, Matica Srpska, 124: 289–296. Search in Google Scholar

Magnoli A.P., Poloni V.L., Cavaglieri L. (2019). Impact of mycotoxin contamination in the animal feed industry. Curr. Opin. Food Sci., 29: 99–108. Search in Google Scholar

Magnoli A.P., Texeira M., Car R., Miazzo R.D., Cavaglieri L.R., Magnoli C.E., Dalcero A.M., Chiaccheiera S.M. (2011). Sodium bentonite and monensin under chronic aflatoxicosis in broiler chickens. Poult. Sci., 90: 352–357. Search in Google Scholar

Maki C.R., Thomas A.D., Elmore S.E., Romoser A.A., Harvey R.B., Ramirez-Ramirez H.A., Phillips T.D. (2016). Effects of calcium montmorillonite clay and aflatoxin exposure on dry matter intake, milk production, and milk composition. J. Dairy Sci., 99: 1039-1046. Search in Google Scholar

Marković M. (2019). Determination of mycotoxin adsorption on pyrophyllite samples. Institute for Technology of Nuclear and Other Mineral Raw Materials Belgrade Serbia [Research report]. Search in Google Scholar

Marković M., Daković A., Rottinghaus G.E., Petković A., Kragović M., Krajišnik D., Milić J. (2017). Ochratoxin A and zearalenone adsorption by the natural zeolite treated with benzalkonium chloride. Colloids Surf. A Physicochem. Eng. Asp., 529: 7‒17. Search in Google Scholar

Meunier A. (2003). Crystal Structure – Species – Crystallisation. In: Clays, Meunier A. (ed.). Springer, Berlin, Germany, pp. 1‒60. Search in Google Scholar

Milićević D.R., Škrinjar M., Baltić T. (2010). Real and perceived risks for mycotoxin contamination in foods and feeds: challenges for food safety control. Toxins, 2: 572–592. Search in Google Scholar

Milojković J.V., Lopičić Z.R., Stojanović M.D., Adamović M.J., Bočarov Stančić A.S., Mihajlović M.L., Šoštarić T.D. (2012). Pollutants removal by the wasted biomass. Proc. The 2nd International Symposium on Environmental and Material Flow Management, Faculty of Mechanical Engineering, Zenica Bosnia and Hercegovina, 07-09.06.2012, p. 211–216. Search in Google Scholar

Modirsanei M., Mansoori B., Khosravi A.R., Kiaei M.M., Khazraeinia P., Farkhoy M., Masoumi Z. (2008). Effect of diatomaceous earth on the performance and blood variables of broiler chicks during experimental aflatoxicosis. J. Sci. Food Agric., 88: 626–632. Search in Google Scholar

Moreno-Maroto J., Alonso-Azcárate J. (2018). What is clay? A new definition of “clay” based on plasticity and its impact on the most widespread soil classification systems. Appl. Clay Sci., 161: 57–63. Search in Google Scholar

Murray H.H. (2007). Structure and composition of the clay minerals and their physical and chemical properties. In: Applied clay mineralogy – occurrences, processing and application of kaolins, bentonites, palygorskite-sepiolite, and common clays, Murray H.H. (ed). Elsevier, Oxford, UK. pp. 7–33. Search in Google Scholar

Murthy T.N., Reddy B.N., Devegowda G. (2002). Evaluation of glucomannan for its adsorbing ability of Aflatoxin B1 and T-2 Toxin in the gastrointestinal tract of broiler chickens. Mycotoxin Res., 18: 20–23. Search in Google Scholar

Naehrer K. (2014). Polar versus non-polar mycotoxin. https://www.wattagnet.com/articles/20483-polar-versus-non-polar-mycotoxins. Accessed 19 May 2021. Search in Google Scholar

Nava-Ramírez M., Salazar A.M., Sordo M., López-Coello C., Téllez-Isaías G., Méndez-Albores A., Vázquez-Durán A. (2021). Ability of low contents of biosorbents to bind the food carcinogen aflatoxin B1 in vitro. Food Chem., 345: 128863. Search in Google Scholar

Neeff D.V., Ledoux D.R., Rottinghaus G.E., Bermudes A.J., Daković A., Murarolli R.A., Oliviera C.A.F. (2013) In vitro and in vivo efficacy of a hydrated sodium calcium aluminosilicate to bind and reduce aflatoxin residues in tissues of broiler chicks fed aflatoxin B1. Poult. Sci., 92: 131–137. Search in Google Scholar

Nešić V.D., Ostojin M.V., Nešić K.D., Resanović R.D. (2009). Evaluation of the efficacy of different feed additives to adsorb T-2 toxin in vitro. Jour. Nat. Sci, Matica Srpska, 116: 55–59. Search in Google Scholar

Oguz H., Bahçivan E., Erdoğan T. (2018). Detoxification of aflatoxin in poultry feed: An update. Eurasian J. Vet. Sci., 34: 204‒227. Search in Google Scholar

Oguz H., Bahcivan E., Erdogan T., Yalcin N.F., Ozdas A., Kursat Isık M., Altunbas O. (2022). In vitro mycotoxin binding capacities of clays, glucomannan and their combinations. Toxicon, 214: 93‒103. Search in Google Scholar

Oguz H., Hadimli H.H., Kurtoglu V., Erganis O. (2003). Evaluation of humoral immunity of broilers during chronic AF (50 and 100 ppb) and CLI exposure. Rev. Med. Vet., 154: 483‒486. Search in Google Scholar

Oguz H., Kececi T., Birdane Y.O., Onder F., Kurtoglu V. (2000). Effect of CLI on serum biochemical and haematological characters of broiler chickens during experimental aflatoxicosis. Res. Vet. Sci., 69: 89‒93. Search in Google Scholar

Oguz H., Kurtoglu V. (2000). Effect of clinoptilolite on performance of broiler chickens during experimental aflatoxicosis. Brit. Poult. Sci., 41: 512‒517. Search in Google Scholar

Ortatatli M., Oguz H. (2001). Ameliorative effects of dietary CLI on pathological changes in broiler chickens during aflatoxicosis. Res. Vet. Sci., 71: 59‒66. Search in Google Scholar

Pang S. (2019). Advances in thermochemical conversion of woody biomass to energy, fuels and chemicals. Biotechnol. Adv., 37: 589‒597. Search in Google Scholar

Pappas A.C., Tsiplakou E., Tsitsigiannis D.I., Georgiadou M., Iliadi M.K., Sotirakoglou K., Zervas G. (2016). The role of bentonite binders in single or concomitant mycotoxin contamination of chicken diets. Br. Poult. Sci., 57: 551‒558. Search in Google Scholar

Pattar J., Shridhar N.B., Suhasini K., Satyanarayana M.L. (2020). Protective role of diatomaceous earth (DAE) on combined mycotoxicosis of aflatoxin B1 and ochratoxin a in coloured broiler (RAJA II) chickens. J. Entomol. Zool. Stud., 8: 1424–1429. Search in Google Scholar

Pavlak M.S.D., Kaufmann C., Eyng C., Carvalho P.L.O., Pozza P.C., Vieites F.M., Rohloff Junior N., Avila A.S., Polese C., Nunes R.V. (2023). Zeolite and corn with different compositions in broiler chickens feeding, Poult. Sci., 102: 1‒10. Search in Google Scholar

Pearce M., Shahin I., Palcu D. (2010). Available solution for mycotoxin binding, Meriden Animal Health. The poultry site. https://www.thepoultrysite.com/articles/available-solutions-for-mycotoxin-binding. Accessed 19 May 2021. Search in Google Scholar

Pestka J.J. (2010). Deoxynivalenol: Mechanisms of action, human exposure, and toxicological relevance. Arch Toxicol., 84: 663–679. Search in Google Scholar

Phillips T.D. (1999). Dietary clay in the chemoprevention of aflatoxin induced disease. Toxicol. Sci., 52: 118-126. Search in Google Scholar

Phillips T.D., Kubena L.F., Harvey R.B., Taylor D.R., Heildebaugh N.D. (1988). Hydrated sodium calcium aluminosilicate: a high affinity sorbent for aflatoxin. Poult. Sci., 67: 243‒247. Search in Google Scholar

Pietrzak K., Twaruzek M., Czyzowska A., Kosicki R., Gutarowska B. (2015). Influence of silver nanoparticles on metabolism and toxicity of moulds. Acta Biochim. Pol., 62: 851–857. Search in Google Scholar

Pimpukdee K.L., Kubena L.F., Bailey C.A., Huebner H.J., Afriyie-Gyawu E., Phillips T.D. (2004). Aflatoxin-induced toxicity and depletion of hepatic vitamin A in young broiler chicks: protection of chicks in the presence of low levels of NovaSil PLUS in the diet. Poult. Sci., 83: 737‒744. Search in Google Scholar

Pinton P., Braicu C., Nougayrede J.P., Laffitte J., Taranu I., Oswald I.P. (2010). Deoxynivalenol impairs porcine intestinal barrier function and decreases the protein expression of claudin-4 through a mitogen-activated protein kinase-dependent mechanism. J. Nutr., 140: 1956–1962. Search in Google Scholar

Piotrowska M. (2021). Microbial decontamination of mycotoxins: opportunities and limitations. Toxins, 13: 819. Search in Google Scholar

Puzyr A.P., Purtov K.V., Shenderova O.A., Luo M., Brenner D.W., Bondar V.S. (2007). The adsorption of aflatoxin B1 by detonation-synthesis nanodiamonds. Dokl. Biochem. Biophys., 417: 299–301. Search in Google Scholar

Raj J., Vasiljević M., Tassis P., Farkaš H., Bošnjak-Neumüller J., Männer K. (2021). Effects of a modified clinoptilolite zeolite on growth performance, health status and detoxification of aflatoxin B1 and ochratoxin A in male broiler chickens. Br. Poult. Sci., 62: 601‒610. Search in Google Scholar

Rasheed U., Ain Q.U., Yaseen M., Fan X., Yao X., Tong Z., Liu B. (2020a). Modification of bentonite with orange peels extract and its application as mycotoxins’ binder in buffered solutions and simulated gastrointestinal fluids. J. Clean Prod., 267: 122105. Search in Google Scholar

Rasheed U., Ain Q.U., Yaseen M., Santra S., Yao X., Liu B. (2020b). Assessing the aflatoxins mitigation efficacy of blueberry pomace biosorbent in buffer gastrointestinal fluids and model wine. Toxins, 12: 466. Search in Google Scholar

Raveendran P., Fu J., Wallen S.L. (2003). Completely “green” synthesis and stabilization of metal nanoparticles. J. Am. Chem. Soc., 125: 13940–13941. Search in Google Scholar

Ray S.S., Bousmina M. (2005). Biodegradable polymers and their layered silicate nanocomposites: In greening the 21st century materials world. Prog. Mater. Sci., 50: 962‒1079. Search in Google Scholar

Ringot D., Lerzy B., Chaplain K., Bonhoure J., Auclair E., Larondelle Y. (2007). In vitro biosorption of ochratoxin A on the yeast industry by-products: Comparison of isotherm models. Bioresour. Technol., 98: 1812–1821. Search in Google Scholar

Ruf F., Sohling U., Haimerl A., Niembro J.A.O., Villaurrutia E.T. (2012). Toxin adsorbent. U.S. Patent Application 13/392,694. Search in Google Scholar

Sacco P., Paoletti S., Cok M., Asaro F., Abrami M., Grassi M., Donati I. (2016). Insight into the ionotropic gelation of chitosan using tripolyphosphate and pyrophosphate as cross-linkers. Int. J. Biol. Macromol., 92: 476–483. Search in Google Scholar

Sadiq F.A., Yan B., Tian F., Zhao J., Zhang H., Chen W. (2019). Lactic acid bacteria as antifungal and anti-mycotoxigenic agents: A comprehensive review. Compr. Rev. Food Sci. Food Saf., 18: 1403–1436. Search in Google Scholar

Safameher A. (2008). Effects of clinoptilolite on performance, biochemical parameters and hepatic lesions in broiler chickens during aflatoxosis. J. Anim. Vet. Adv., 7: 381‒388. Search in Google Scholar

Selim K.M., El-Hofy Khalil R.H. (2014). The efficacy of three mycotoxin adsorbents to alleviate aflatoxin B1-induced toxicity in Oreochromis niloticus. Aquac. Int., 22: 523–540. Search in Google Scholar

Shar Z.H, Fletcher M.T., Sumbal G.A., Sherazi S.T.H., Giles C., Bhanger M.I., Nizamani S.M. (2016). Banana peel: an effective biosorbent for aflatoxins. Food. Addit. Contam. Part A Chem. Anal. Control Expo. Risk Assess., 33: 849–860. Search in Google Scholar

Shi Y.H., Xu Z.R., Feng J.L., Wang C.Z. (2006). Efficacy of modified montmorillonite nanocomposite to reduce the toxicity of aflatoxin in broiler chicks. Anim. Feed Sci. Technol., 129: 138–148. Search in Google Scholar

Solís-Cruz B., Hernández-Patlán D., Beyssac E., Latorre J.D., Hernandez-Velasco X., Merino-Guzman R., Tellez G., López-Arellano R. (2017). Evaluation of chitosan and cellulosic polymers as binding adsorbent materials to prevent aflatoxin B1, fumonisin B1, ochratoxin, trichothecene, deoxynivalenol and zearalenone mycotoxicoses through an in vitro gastrointestinal model for poultry. Polymers, 9: 529−539. Search in Google Scholar

Solís-Cruz B., Hernández-Patlán D., Hargis B.M., Tellez G. (2018). Control of aflatoxicosis in poultry using probiotics and polymers. In: Mycotoxins - Impact and Management Strategies, Njobeh P.B., Stepman F. (eds.). IntechOpen, London, UK. Search in Google Scholar

Sprynskyy M., Gadzala-Kopciuch R., Nowak K., Buszewski B. (2012). Removal of zearalenone toxin from synthetics gastric and body fluids using talc and diatomite: a batch kinetic study. Colloids Surf. B, 94: 7–14. Search in Google Scholar

Stojanović M., Lopičić Z., Milojković J., Lačnjevac Č., Mihajlović M., Petrović M., Kostić A. (2012). Biomass waste material as potential adsorbent for sequestering pollutants. Zaštita materijala, 53: 231–237. Search in Google Scholar

Stroka J., Maragos C.M. (2016). Challenges in the analysis of multiple mycotoxins. World Mycotoxin J., 9: 847–861. Search in Google Scholar

Trailović J.N., Stefanović S., Trailović S.M. (2013). In vitro and in vivo protective effects of three mycotoxin adsorbents against ochratoxin A in broiler chickens. Br. Poult. Sci., 54: 515–523. Search in Google Scholar

Vila-Donat P., Marín S., Sanchis V., Ramos A.J. (2018). A review of the mycotoxin adsorbing agents, with an emphasis on their multi-binding capacity, for animal feed decontamination. Food Chem. Toxicol., 114: 246–259. Search in Google Scholar

Vizcarra-Olvera J.E., Astiazarán-Garcıá H., Burgos-Hernández A., Parra-Vergara N.V., Cinco-Moroyoqui F.J., Sánches-Mariñes R.I., Quintana-Obregon E.A., Cortez-Rocha M.O. (2012). Evaluation of pathological effects in broilers during fumonisins and clays exposure. Mycopathologia, 174: 247–54. Search in Google Scholar

Volesky B. (1994). Advances in biosorption of metals: Selection of biomass types. FEMS Microbiol. Rev., 14: 291–302. Search in Google Scholar

Wan J., Zhong S., Schwarz P., Chen B., Rao J. (2019). Physical properties antifungal and mycotoxin inhibitory activities of five essential oil nanoemulsions: Impact of oil compositions and processing parameters. Food Chem., 291:199‒206. Search in Google Scholar

Wang P., Afriyie-Gyawu E., Tang Y., Johnson N.M., Xu L., Tang L., Huebner H.J., Ankrah N.A., Ofori-Adjei D., Ellis W., Jolly P.E. (2008). NovaSil clay intervention in Ghanaians at high risk for aflatoxicosis: II. Reduction in biomarkers of aflatoxin exposure in blood and urine. Food Addit. Contam. Part A Chem. Anal. Control Expo. Risk. Assess., 25: 622‒634. Search in Google Scholar

Wei J-T., Wu K-T., Sun H., Khalil M.M., Dai J-F., Liu Y., Liu Q., Zhang N-Y., Qi D-S., Sun L-H. (2019). A Novel Modified Hydrated Sodium Calcium Aluminosilicate (HSCAS) Adsorbent Can Effectively Reduce T-2 Toxin-Induced Toxicity in Growth Performance, Nutrient Digestibility, Serum Biochemistry, and Small Intestinal Morphology in Chicks. Toxins, 11: 199. Search in Google Scholar

Wongtangtintan S., Neeratanaphan L., Ruchuwararak P., Suksangawong S., Tengjaroenkul U., Sukon P., Tengjaroenkul B. (2016). Comparative study of aflatoxin B1 adsorption by Thai bentonite and commercial toxin binders at different temperatures in vitro. Livest. Res. Rural Dev., 28: 50. http://www.lrrd.org/lrrd28/4/teng28050.htm. Accessed 21 June 2021. Search in Google Scholar

Wongtangtintan S., Silaratana N., Tengjaroenkul U., Pimpukdee K., Tengjaroenkul B. (2015). In vitro adsorption study of zearalenone by Thai bentonite and mineral clays Livest. Res. Rural Dev., 27: 187. http://www.lrrd.org/lrrd27/9/teng27187.html. Accessed 21 June 2021. Search in Google Scholar

Xu X., Gao B., Jin B., Yue Q. (2016). Removal of anionic pollutants from liquids by biomass materials: a review. J. Mol. Liq., 215: 565–595. Search in Google Scholar

Yalcin N.F., Avci T., Isik M.K., Oguz H. (2018). In vitro activity of toxin binders on aflatoxin B1 in poultry gastrointestinal medium. Pak. Vet. J., 38: 61–65. Search in Google Scholar

Ying Z., Zhao D., Li H., Liu X., Zhang J. (2021). Efficient Adsorption of deoxynivalenol by porous carbon prepared from soybean dreg. Toxins, 13: 500. Search in Google Scholar

Zain M.E. (2011). Impact of mycotoxins on humans and animals. J. Saudi Chem. Soc., 15: 129–144. Search in Google Scholar

Zhang Y.Y., Gao R., Liu M., Shi B.M., Shan A.S., Cheng B.J. (2015). Use of modified halloysite nanotubes in the feed reduces the toxic effects of zearalenone on sow reproduction and piglet development. Theriogenology, 83: 932–941. Search in Google Scholar

Zhao Z., Liu N., Yang L., Wang J., Song S., Nie D., Yang X., Hou J., Wu A. (2015). Cross-linked chitosan polymers as generic adsorbents for simultaneous adsorption of multiple mycotoxins. Food Control 57: 362–369. Search in Google Scholar

Zou Z-Y., He Z-F., Li H-J., Han P-F., Meng X., Zhang Y., Zhou F., Ouyang K-P., Chen X-Y., Tang J. (2012). In vitro removal of deoxynivalenol and T-2 toxin by lactic acid bacteria. Food Sci. Biotechnol., 21: 1677–1683. Search in Google Scholar

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