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Acrylamide-induced changes of granulopoiesis in porcine bone marrow


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Azakami D., Saito A., Ochiai K., Ishiwata T., Takahashi K., Kaji N., Kaji D., Kaji N., Michishita M.: Chronic basophilic leukaemia in a dog. J Comp Pathol 2019, 166, 5–8, doi: 10.1016/j.jcpa.2018.10.170.Azakami D. Saito A. Ochiai K. Ishiwata T. Takahashi K. Kaji N. Kaji D. Kaji N. Michishita M. Chronic basophilic leukaemia in a dog J Comp Pathol 2019 166 5 8 10.1016/j.jcpa.2018.10.17030691606Open DOISearch in Google Scholar

Benziane A.B., Bouras A.D., Mezaini A., Belhadri A., Benali M:. Effect of oral exposure to acrylamide on biochemical and hematologic parameters in Wistar rats. Drug Chem Toxicol 2019, 42, 157–166, doi: 10.1080/01480545.2018.1450882.Benziane A.B. Bouras A.D. Mezaini A. Belhadri A. Benali M Effect of oral exposure to acrylamide on biochemical and hematologic parameters in Wistar rats Drug Chem Toxicol 2019 42 157 166 10.1080/01480545.2018.145088229589771Open DOISearch in Google Scholar

Bull R.J., Robinson M., Laurie R.D., Stoner G.D., Greisiger E., Meier J.R., Stober J.: Carcinogenic effects of acrylamide in Sencar and A/J mice. Cancer Res 1984, 44, 107–111.Bull R.J. Robinson M. Laurie R.D. Stoner G.D. Greisiger E. Meier J.R. Stober J. Carcinogenic effects of acrylamide in Sencar and A/J mice Cancer Res 1984 44 107 111Search in Google Scholar

Dobrzyńska M.: Assessment of DNA damage in multiple organs from mice exposed to X-rays or acrylamide or a combination of both using the comet assay. In vivo 2007, 21, 657–662.Dobrzyńska M. Assessment of DNA damage in multiple organs from mice exposed to X-rays or acrylamide or a combination of both using the comet assay In vivo 2007 21 657 662Search in Google Scholar

El-Tohamy A.A., Bayomy A.A.: Effects of long term low dose acrylamide exposure on rat bone marrow polychromatic erythrocytes. Arab J Biotech 2008, 11, 29–38, doi: 10.3109/10520295.2013.790561.El-Tohamy A.A. Bayomy A.A. Effects of long term low dose acrylamide exposure on rat bone marrow polychromatic erythrocytes Arab J Biotech 2008 11 29 38 10.3109/10520295.2013.79056123672417Open DOISearch in Google Scholar

European Food Safety Agency Panel on Contaminants in the Food Chain (CONTAM): EFSA Scientific Opinion on acrylamide in food. EFSA J 2015, 13, 4104, doi: 10.2903/j.efsa.2015.4104.European Food Safety Agency Panel on Contaminants in the Food Chain (CONTAM) EFSA Scientific Opinion on acrylamide in food EFSA J 2015 13 4104 10.2903/j.efsa.2015.4104Open DOISearch in Google Scholar

Gargas M.L., Kirman C.R., Sweeney L.M., Tardiff R.G.: Acrylamide: consideration of species differences and nonlinear processes in estimating risk and safety for human ingestion. Food Chem Toxicol 2009, 47, 760–768, doi: 10.1016/j.fct.2008.12.032.Gargas M.L. Kirman C.R. Sweeney L.M. Tardiff R.G. Acrylamide: consideration of species differences and nonlinear processes in estimating risk and safety for human ingestion Food Chem Toxicol 2009 47 760 768 10.1016/j.fct.2008.12.03219166901Open DOISearch in Google Scholar

Hammad A.Y., Osman M.E., Abdelgadir W.S.: Histopathological assessment and hematotoxicity of dietary acrylamide on Wistar rats. Int J Life Sci 2013, 7, 21–25, doi: 10.3126/ijls.v7i1.8018.Hammad A.Y. Osman M.E. Abdelgadir W.S. Histopathological assessment and hematotoxicity of dietary acrylamide on Wistar rats Int J Life Sci 2013 7 21 25 10.3126/ijls.v7i1.8018Open DOISearch in Google Scholar

Jones K., Garfitt S., Emms V., Warren N., Cocker J., Farmer P.: Correlation of haemoglobin-acrylamide adducts with airborne exposure: an occupational survey. Toxicol Lett 2006, 162, 174–180, doi: 10.1016/j.toxlet.2005.09.016.Jones K. Garfitt S. Emms V. Warren N. Cocker J. Farmer P. Correlation of haemoglobin-acrylamide adducts with airborne exposure: an occupational survey Toxicol Lett 2006 162 174 180 10.1016/j.toxlet.2005.09.01616257145Open DOISearch in Google Scholar

Kesson C.M., Baird A.W., Lawson D.H.: Acrylamide poisoning. Postgrad Med J 1997, 53, 16–17, doi: 10.1136/pgmj.53.615.16.Kesson C.M. Baird A.W. Lawson D.H. Acrylamide poisoning Postgrad Med J 1997 53 16 17 10.1136/pgmj.53.615.162496549195278Open DOISearch in Google Scholar

LoPachin R.M.: Acrylamide neurotoxicity: neurological, morphological and molecular endpoints in animal models. In: Chemistry and Safety of Acrylamide in Food. Advances in Experimental Medicine and Biology, vol 561, edited by M. Friedman, D. Mottram, Springer, Boston, MA, 2005, pp. 21–37, doi: 10.1007/0-387-24980-X_2.LoPachin R.M. Acrylamide neurotoxicity: neurological, morphological and molecular endpoints in animal models In Chemistry and Safety of Acrylamide in Food. Advances in Experimental Medicine and Biology, vol 561, edited by M. Friedman, D. Mottram Springer Boston, MA 2005 pp 21 37 10.1007/0-387-24980-X_216438286Open DOISearch in Google Scholar

Manière I., Godard T., Doerge D.R., Churchwell M.I., Guffroy M., Laurentie M., Poul J.M.: DNA damage and DNA adduct formation in rat tissues following oral administration of acrylamide. Mutat Res 2005, 580, 119–129, doi: 10.1016/j.mrgentox.2004.10.012.Manière I. Godard T. Doerge D.R. Churchwell M.I. Guffroy M. Laurentie M. Poul J.M. DNA damage and DNA adduct formation in rat tissues following oral administration of acrylamide Mutat Res 2005 580 119 129 10.1016/j.mrgentox.2004.10.01215668114Open DOISearch in Google Scholar

Mottram D.S., Wedzicha B.L., Dodson A.T.: Acrylamide is formed in the Maillard reaction. Nature 2002, 419, 448–449, doi: 10.1038/419448a.Mottram D.S. Wedzicha B.L. Dodson A.T. Acrylamide is formed in the Maillard reaction Nature 2002 419 448 449 10.1038/419448a12368844Open DOISearch in Google Scholar

Mucci L.A., Wilson K.M.: Acrylamide intake through diet and human cancer risk. J Agric Food Chem 2008, 56, 6013–6019, doi: 10.1021/jf703747b.Mucci L.A. Wilson K.M. Acrylamide intake through diet and human cancer risk J Agric Food Chem 2008 56 6013 6019 10.1021/jf703747b674999218624443Open DOISearch in Google Scholar

Raju J., Roberts J., Taylor M., Patry D., Chomyshyn E., Caldwell D., Cooke G., Mehta R.: Toxicological effects of short-term dietary acrylamide exposure in male F344 rats. Environ Toxicol Pharmacol 2015, 39, 85–92, doi: 10.1016/j.etap.2014.11.009.Raju J. Roberts J. Taylor M. Patry D. Chomyshyn E. Caldwell D. Cooke G. Mehta R. Toxicological effects of short-term dietary acrylamide exposure in male F344 rats Environ Toxicol Pharmacol 2015 39 85 92 10.1016/j.etap.2014.11.00925473820Open DOISearch in Google Scholar

Shler A.F.M., Kawa A., Heshu S.R., Hemn H.O.: The pathophysiological effects of acrylamide in Albino Wister Rats. Int J Med Res Health Sci 2016, 5, 42–48.Shler A.F.M. Kawa A. Heshu S.R. Hemn H.O. The pathophysiological effects of acrylamide in Albino Wister Rats Int J Med Res Health Sci 2016 5 42 48Search in Google Scholar

Tan E., Abrams-Ogg A.C.G., Defarges A., Bienzle D.: Automated analysis of bone marrow aspirates from dogs with haematological disorders. J Comp Pathol 2014, 151, 67–79, doi: 10.1016/j.jcpa.2014.02.005.Tan E. Abrams-Ogg A.C.G. Defarges A. Bienzle D. Automated analysis of bone marrow aspirates from dogs with haematological disorders J Comp Pathol 2014 151 67 79 10.1016/j.jcpa.2014.02.00524726417Open DOISearch in Google Scholar

Tareke E., Rydberg P., Karlsson P.: Analysis of acrylamide, a carcinogen formed in heated foodstuffs. J Agric Food Chem 2002, 50, 4998–5006, doi: 10.1021/jf020302f.Tareke E. Rydberg P. Karlsson P. Analysis of acrylamide, a carcinogen formed in heated foodstuffs J Agric Food Chem 2002 50 4998 5006 10.1021/jf020302f12166997Open DOISearch in Google Scholar

Twaddle N.C., Churchwell M.I., McDaniel L.P., Doerge D.R.: Autoclave sterilization produces acrylamide in rodent diets: implications for toxicity testing. J Agric Food Chem 2004, 52, 4344–4349, doi: 10.1021/jf0497657.Twaddle N.C. Churchwell M.I. McDaniel L.P. Doerge D.R. Autoclave sterilization produces acrylamide in rodent diets: implications for toxicity testing J Agric Food Chem 2004 52 4344 4349 10.1021/jf049765715212490Open DOISearch in Google Scholar

World Health Organisation: FAO/WHO Consultations on the health implications of acrylamide in food. Summary report of a meeting held in Geneva, 25–27 June, 2002. https://apps.who.int/iris/bitstream/handle/10665/67372/a76870.pdf;sequence=1World Health Organisation FAO/WHO Consultations on the health implications of acrylamide in food. Summary report of a meeting held in Geneva, 25–27 June 2002 https://apps.who.int/iris/bitstream/handle/10665/67372/a76870.pdf;sequence=1Search in Google Scholar

Yener Y.: Effects of long term low dose acrylamide exposure on rat bone marrow polychromatic erythrocytes. Biotech Histochem 2013, 88, 356–360, doi: 10.3109/10520295.2013.790561.Yener Y. Effects of long term low dose acrylamide exposure on rat bone marrow polychromatic erythrocytes Biotech Histochem 2013 88 356 360 10.3109/10520295.2013.79056123672417Open DOISearch in Google Scholar

Yener Y., Dıkmenlı M.: Increased micronucleus frequency in rat bone marrow after acrylamide treatment. Food Chem Toxicol 2009, 47, 2120–2123, doi: 10.1016/j.fct.2009.05.037Yener Y. Dıkmenlı M. Increased micronucleus frequency in rat bone marrow after acrylamide treatment Food Chem Toxicol 2009 47 2120 2123 10.1016/j.fct.2009.05.03719500643Open DOISearch in Google Scholar

Zamani E., Shaki F., Abedian Kenari S., Shokrzadeh M.: Acrylamide induces immunotoxicity through reactive oxygen species production and caspase-dependent apoptosis in mice splenocytes via the mitochondria-dependent signaling pathways. Biomed Pharmacother 2017, 94, 523–530, doi: 10.1016/j.biopha. 2017.07.033.Zamani E. Shaki F. Abedian Kenari S. Shokrzadeh M. Acrylamide induces immunotoxicity through reactive oxygen species production and caspase-dependent apoptosis in mice splenocytes via the mitochondria-dependent signaling pathways Biomed Pharmacother 2017 94 523 530 10.1016/j.biopha.2017.07.03328780470Open DOISearch in Google Scholar

Zenick H., Hope E., Smith M.K.: Reproductive toxicity associated with acrylamide treatment in male and female rats. J Toxicol Environ Health 1986, 17, 457–472, doi: 10.1080/15287398609530840.Zenick H. Hope E. Smith M.K. Reproductive toxicity associated with acrylamide treatment in male and female rats J Toxicol Environ Health 1986 17 457 472 10.1080/152873986095308403959125Open DOISearch in Google Scholar

Zhong C., Wu J., Izpisua Belmonte J.C.: Pig Chimeric Model with Human Pluripotent Stem Cells. Methods Mol Biol 2019, 2005, 101–124, doi: 10.1007/978-1-4939-9524-0_8.Zhong C. Wu J. Izpisua Belmonte J.C. Pig Chimeric Model with Human Pluripotent Stem Cells Methods Mol Biol 2019 2005 101 124 10.1007/978-1-4939-9524-0_831175649Open DOISearch in Google Scholar

Zödl B., Schmid D., Wassler G., Gundacker C., Leibetseder V., Thalhammer T., Ekmekcioğlu C.: Intestinal transport and metabolism of acrylamide. Toxicol 2007, 232, 99–108, doi: 10.1016/j.tox.2006.12.014.Zödl B. Schmid D. Wassler G. Gundacker C. Leibetseder V. Thalhammer T. Ekmekcioğlu C. Intestinal transport and metabolism of acrylamide Toxicol 2007 232 99 108 10.1016/j.tox.2006.12.01417267090Open DOISearch in Google Scholar

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