Decolorization of water and oil-soluble azo dyes by Lactobacillus acidophilus and Lactobacillus fermentum
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(1982) ortho-Toluidine and ortho-toluidine hydrochloride. IARC Monogr Eval Carcinog Risk Chem Hum 27:155–175
An Y, Jiang L, Cao J, Geng C, Zhong L (2007) Sudan I induces genotoxic effects and oxidative DNA damage in HepG2 cells. Mutat Res 627:164–170
Bomhard EM, Herbold BA (2005) Genotoxic activities of aniline and its metabolites and their relationship to the carcinogenicity of aniline in the spleen of rats. Crit Rev Toxicol 35:783–835
Calbiani F, Careri M, Elviri L, Mangia A, Pistara L, Zagnoni I (2004) Development and in-house validation of a liquid chromatography-electrospray-tandem mass spectrometry method for the simultaneous determination of Sudan I, Sudan II, Sudan III and Sudan IV in hot chilli products. J Chromatogr A 1042:123–130
Cardaba B, del Pozo V, Gallardo S, Palomino P, Posada M, Lahoz C (2006) Genetic approaches in the understanding of Toxic Oil Syndrome. Toxicol Lett 161:83–88
Cerniglia CE, Kotarski S (2005) Approaches in the safety evaluations of veterinary antimicrobial agents in food to determine the effects on the human intestinal microflora. J Vet Pharmacol Ther 28:3–20
Cerniglia CE, Zhuo Z, Manning BW, Federle TW, Heflich RH (1986) Mutagenic activation of the benzidine-based dye direct black 38 by human intestinal microflora. Mutat Res 175:11–16
Chen H, Hopper SL, Cerniglia CE (2005) Biochemical and molecular characterization of an azoreductase from Staphylococcus aureus, a tetrameric NADPH-dependent flavoprotein. Microbiology 151:1433–1441
Chen H, Wang RF, Cerniglia CE (2004) Molecular cloning, overexpression, purification, and characterization of an aerobic FMN-dependent azoreductase from Enterococcus faecalis. Protein Expr Purif 34:302–310
Chung KT (1983) The significance of azo-reduction in the mutagenesis and carcinogenesis of azo dyes. Mutat Res 114:269–281
Chung KT, Fulk GE, Egan M (1978) Reduction of azo dyes by intestinal anaerobes. Appl Environ Microbiol 35:558–562
Claesson MJ, van Sinderen D, O’Toole PW (2007) The genus Lactobacillus––a genomic basis for understanding its diversity. FEMS Microbiol Lett 269:22–28
Delgado S, Suarez A, Mayo B (2007) Dominant cultivable Lactobacillus species from the feces of healthy adults in northern Spain. Int Microbiol 10:141–145
Eckburg PB, Bik EM, Bernstein CN, Purdom E, Dethlefsen L et al (2005) Diversity of the human intestinal microbial flora. Science 308:1635–1638
Egervarn M, Danielsen M, Roos S, Lindmark H, Lindgren S (2007) Antibiotic susceptibility profiles of Lactobacillus reuteri and Lactobacillus fermentum. J Food Prot 70:412–418
Elkins CA, Mullis LB (2004) Bile-mediated aminoglycoside sensitivity in Lactobacillus species likely results from increased membrane permeability attributable to cholic acid. Appl Environ Microbiol 70:7200–7209
Golka K, Kopps S, Myslak ZW (2004) Carcinogenicity of azo colorants: influence of solubility and bioavailability. Toxicol Lett 151:203–210
Haberer P, du Toit M, Dicks LM, Ahrens F, Holzapfel WH (2003) Effect of potentially probiotic lactobacilli on faecal enzyme activity in minipigs on a high-fat, high-cholesterol diet––a preliminary in vivo trial. Int J Food Microbiol 87:287–291
Jodynis-Liebert J, Murias M (2002) Modulation of antioxidant defence system by dietary fat in rats intoxicated with o-toluidine. Hum Exp Toxicol 21:659–665
Lara-Villoslada F, Sierra S, Diaz-Ropero MP, Rodriguez JM, Xaus J, Olivares M (2009) Safety assessment of Lactobacillus fermentum CECT5716, a probiotic strain isolated from human milk. J Dairy Res 76:216–221
Macouzet M, Lee BH, Robert N (2009) Production of conjugated linoleic acid by probiotic Lactobacillus acidophilus La-5. J Appl Microbiol
Mazzetti M, Fascioli R, Mazzoncini I, Spinelli G, Morelli I, Bertoli A (2004) Determination of 1-phenylazo-2-naphthol (Sudan I) in chilli powder and in chilli-containing food products by GPC clean-up and HPLC with LC/MS confirmation. Food Addit Contam 21:935–941
Ohkuma Y, Kawanishi S (1999) Oxidative DNA damage by a metabolite of carcinogenic and reproductive toxic nitrobenzene in the presence of NADH and Cu(II). Biochem Biophys Res Commun 257:555–560
Petigara BR, Scher AL (2007) Direct method for determination of Sudan I in FD&C Yellow No. 6 and D&C Orange No. 4 by reversed-phase liquid chromatography. J AOAC Int 90:1373–1378
Seesuriyachan P, Takenaka S, Kuntiya A, Klayraung S, Murakami S, Aoki K (2007) Metabolism of azo dyes by Lactobacillus casei TISTR 1500 and effects of various factors on decolorization. Water Res 41:985–992
Sellers C, Markowitz S (1992) Reevaluating the carcinogenicity of ortho-toluidine: a new conclusion and its implications. Regul Toxicol Pharmacol 16:301–317
Stolz A (2001) Basic and applied aspects in the microbial degradation of azo dyes. Appl Microbiol Biotechnol 56:69–80
Uematsu Y, Ogimoto M, Kabashima J, Suzuki K, Ito K (2007) Fast cleanup method for the analysis of Sudan I-IV and para red in various foods and paprika color (oleoresin) by high-performance liquid chromatography/diode array detection: focus on removal of fat and oil as fatty acid methyl esters prepared by transesterification of acylglycerols. J AOAC Int 90:437–445
Velez MP, De Keersmaecker SC, Vanderleyden J (2007) Adherence factors of Lactobacillus in the human gastrointestinal tract. FEMS Microbiol Lett 276:140–148
Wang RF, Chen H, Paine DD, Cerniglia CE (2004) Microarray method to monitor 40 intestinal bacterial species in the study of azo dye reduction. Biosens Bioelectron 20:699–705
Wu X, Kannan S, Ramanujam VM, Khan MF (2005) Iron release and oxidative DNA damage in splenic toxicity of aniline. J Toxicol Environ Health A 68:657–666
