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Case Report

Transient methemoglobinemia suspected secondary to ingestion of Brassica species in a dog

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Pages 37-42 | Published online: 29 Apr 2019

References

  • Fine DM, Eyster GE, Anderson LK, Smitley A. Cyanosis and congenital methemoglobinemia in a puppy. J Am Vet Med Assoc. 1999;35(1):33–35.
  • Shino H, Otsuka-Yamasaki Y, Ooi K, Inanami O, Sato R, Yamasaki M. Familial congenital methemoglobinemia in Pomeranian dogs caused by a missense variant in the NADH-Cytochrome B5 Reductase gene. J Vet Intern Med. 2018;32(1):165–171. doi:10.1111/jvim.1503129356095
  • Richardson JA. Management of Acetaminophen and Ibuprofen toxicosis in dogs and cats. J Vet Emerg Crit Care. 2006;10(4):285–291. doi:10.1111/j.1476-4431.2000.tb00013.x
  • Davis JA, Greenfield RA, Brewer TG. Benzocaine-induced methemoglobinemia attributed to topical application of the anesthetic in several laboratory species. Am J Vet Res. 1993;54:1322.8214904
  • Fierro BR, Agnew DW, Duncan AE, Lehner AF, Scott MA. Skunk musk causes methemoglobin and Heinz body formation in vitro. Vet Clin Pathology. 2013;42(3):291–300. doi:10.1111/vcp.12074
  • Wray JH. Methemoglobinemia caused by hydrxycarbamide (hydroxyurea) ingestion in a dog. J Small Animal Pract. 2008;49:216. doi:10.1111/j.1748-5827.2007.00449.x
  • Harvey JW, Kornick HP. Phenazopyridine toxicosis in the cat. J Am Vet Med Assoc. 1976;169(3):327–331.956020
  • Zhang P, Ohara A, Mashimo T. Cardiovascular effects of an ultrashort-acting nitric oxide-releasing compound, zwitterionicdiamine/NO adduct in dogs. Circulation. 1996;94:2235. doi:10.1161/01.CIR.94.9.22358901677
  • Rahilly LJ, Mandell DC. Methemoglobinemia In: Silverstein DC, Hopper K, editors. Small Animal Critical Care Medicine. 2nd ed. St. Louis, Missouri: Elsevier Saunders; 2015:580–585.
  • Aronson LR, Drobatz K. Acetaminophen toxicosis in 17 cats. J Vet Emerg Crit Care. 1996;6(2):65–69. doi:10.1111/j.1476-4431.1996.tb00034.x
  • Smith RH. S-methylcysteine sulphoxide, the Brassica anaemia factor (a valuable dietary factor for man?). Vet Sci Communi. 1978;2(1):47–61. doi:10.1007/BF02291432
  • Felker P, Bunch R, Leung AM. Concentrations of thiocyanate and goitrin in human plasma, their precursor concentrations in Brassica vegetables, and associated potential risk for hypothyroidism. Nutr Rev. 2016;74(4):248–258. doi:10.1093/nutrit/nuv11026946249
  • Chu M, Seltzer TF. Myxedema coma induced by ingestion of raw bok choy. NEJM. 2010;362(20):1945–1946. doi:10.1056/NEJMc091100520484407
  • Jaffey JA, Harmon MR, Villani NA, et al. Long-term treatment with methylene blue in a dog with hereditary methemoglobinemia caused by cytochrome b5 reductase deficiency. J Vet Intern Med. 2017;31(6):1860–1865. doi:10.1111/jvim.1484328963729
  • Dawes ME. Brassica Spp. Toxicity In: Chase C, Lutz K, McKenzie E, Tibary A, editors. Blackwell’s Five-Minute Veterinary Consult. 2nd ed. New Jersey: Wiley Blackwell; 2017:119–121.
  • Prache S. Haemolytic anaemia in ruminants fed forage brassicas: a review. Vet Res. 1994;25(6):497–520.7889033
  • Stoewsand GS. Bioactive organosulfur phytochemicals in Brassica oleracea vegetables – a review. Food Chem Toxic. 1995;33(6):537–543. doi:10.1016/0278-6915(95)00017-V
  • Wiley N, Wilkins J. An analysis of intertaxa differences in sulfur concentration in angiosperms. J Plant Nutrition Soil Sci. 2006;169:717–727. doi:10.1002/jpln.200520590
  • Mae T, Ohira K, Fujiwara A. Fate of (+) S-methyl-L-cysteine sulfoxide in Chinese cabbage, Brassica pekinensis RUPR. Plant Cell Physiol. 1971;12:1–11. doi:10.1093/oxfordjournals.pcp.a074591
  • McKenzie RA, Carmichael AM, Duigan SA, Gibson JA, Taylor JD. Sulfur-associated polioencephalomalacia in cattle grazing plants in the family Brassicaceae. Aust Vet J. 2009;87(1–2):27–32. doi:10.1111/j.1751-0813.2008.00387.x19178473
  • Morris CJ, Thompson JF. The identification of (+) S-methyl-L-cysteine sulfoxide in plants. Chem Ind. 1955;951.
  • Benevenga NG, Case GL, Steele RD. Occurrence and metabolism of S-methyl-L-cysteine and S-methyl sulfoxide in plants and their toxicity and metabolites in animals In: Cheeke PR, editor. Toxicants of Plant Origin, Volume III Proteins and Amino Acids. Florida: CRC Press; 1989:203–228.
  • Shamat MA. The role of the gastrointestinal microflora in the metabolism of drugs. Int J Pharm. 1993;97(1–3):1–13. doi:10.1016/0378-5173(93)90121-U
  • Maxwell MH. Production of Heinz body anaemia in the domestic fowl after ingestion of dimethyl disulphide: a haematological and ultrastructural study. Res Vet Sci. 1981;30(2):233–238.7255913
  • Amano H, Kazamori D, Itoh K. Pharmacokientics and N-acetylation metabolism of S-mehtyl-L-cysteine and trans-S-1-propenyl-L-cysteine in rats and dogs. Xenobiotica. 2016. doi:10.3109/00498254.2016.1144229
  • Sung-Mee L, Im DS. Screening and characterization of probiotic lactic acid bacteria isolated from Korean fermented foods. J Microbiol Biotechnol. 2009;19(2):178–186.19307768
  • Skold A, Cosco DL, Klein R. Methemoglobinemia: pathogenesis, diagnosis, and management. South Med J. 2011;104(11):757–761. doi:10.1097/SMJ.0b013e318232139f22024786