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Research Articles

Analysis of the acrylamide in breads and evaluation of mitochondrial/lysosomal protective agents to reduce its toxicity in vitro model

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Pages 198-207 | Received 10 Feb 2020, Accepted 01 Dec 2020, Published online: 11 Dec 2020

References

  • Açar, Ö.Ç., and Gökmen, V., 2009. Investigation of acrylamide formation on bakery products using a crust‐like model. Molecular nutrition & food research, 53 (12), 1521–1525.
  • Ahmed, G., et al., 2013. Wheat value chains and food security in the Middle East and North Africa region. Social science research, 1, 1–51.
  • Aljobair, M.O., 2017. Assessment of the bread consumption habits among the people of Riyadh, Saudi Arabia. Pakistan journal of nutrition, 16, 293–298.
  • Baines, C.P., 2009. The molecular composition of the mitochondrial permeability transition pore. Journal of molecular and cellular cardiology, 46 (6), 850–857.
  • Beach, D.C., and Giroux, E., 1992. Inhibition of lipid peroxidation promoted by iron (III) and ascorbate. Archives of biochemistry and biophysics, 297 (2), 258–264.
  • Besaratinia, A., and Pfeifer, G.P., 2005. DNA adduction and mutagenic properties of acrylamide. Mutation research/genetic toxicology and environmental mutagenesis, 580 (1–2), 31–40.
  • Blasiak, J., et al., 2004. Genotoxicity of acrylamide in human lymphocytes. Chemico-biological interactions, 149 (2–3), 137–149.
  • Boya, P., and Kroemer, G., 2008. Lysosomal membrane permeabilization in cell death. Oncogene, 27 (50), 6434–6451.
  • Cao, J., et al., 2008. Curcumin attenuates acrylamide-induced cytotoxicity and genotoxicity in HepG2 cells by ROS scavenging. Journal of agricultural and food chemistry, 56 (24), 12059–12063.
  • Capuano, E., and Fogliano, V., 2011. Acrylamide and 5-hydroxymethylfurfural (HMF): A review on metabolism, toxicity, occurrence in food and mitigation strategies. LWT – food science and technology, 44 (4), 793–810.
  • Chen, W., et al., 2014. Hispidin derived from Phellinus linteus affords protection against acrylamide-induced oxidative stress in Caco-2 cells. Chemico-biological interactions, 219, 83–89.
  • Choi, A.M., Ryter, S.W., and Levine, B., 2013. Autophagy in human health and disease. The new England journal of medicine, 368 (7), 651–662.
  • Claus, A., Carle, R., and Schieber, A., 2008. Acrylamide in cereal products: a review. Journal of cereal science, 47 (2), 118–133.
  • Dearfield, K.L., et al., 1995. Acrylamide: a review of its genotoxicity and an assessment of heritable genetic risk. Mutation research/fundamental and molecular mechanisms of mutagenesis, 330 (1–2), 71–99.
  • Dikalov, S.I., and Harrison, D.G., 2014. Methods for detection of mitochondrial and cellular reactive oxygen species. Antioxidants & redox signaling, 20 (2), 372–382.
  • Eslamizad, S., et al., 2019. Health risk assessment of acrylamide in bread in Iran using LC-MS/MS. Food and chemical toxicology, 126, 162–168.
  • Friedman, M., 2003. Chemistry, biochemistry, and safety of acrylamide. A review. Journal of agricultural and food chemistry, 51, 4504–4526.
  • Ghanayem, B.I., et al., 2005. Role of CYP2E1 in the epoxidation of acrylamide to glycidamide and formation of DNA and hemoglobin adducts. Toxicological sciences, 88 (2), 311–318.
  • Giraldo, P., et al., 2019. Worldwide research trends on wheat and barley: a bibliometric comparative analysis. Agronomy, 9 (7), 352.
  • Hedegaard, R.V., et al., 2008. Acrylamide in bread. Effect of prooxidants and antioxidants. European food research and technology, 227 (2), 519–525.
  • Hemnani, T., and Parihar, M., 1998. Reactive oxygen species and oxidative DNA damage. Indian journal of physiology and pharmacology, 42 (4), 440–452.
  • Hissin, P.J., and Hilf, R., 1976. A fluorometric method for determination of oxidized and reduced glutathione in tissues. Analytical biochemistry, 74 (1), 214–226.
  • Jiang, G., et al., 2018. Protective effects of a Ganoderma atrum polysaccharide against acrylamide induced oxidative damage via a mitochondria mediated intrinsic apoptotic pathway in IEC-6 cells. Food & function, 9 (2), 1133–1143.
  • Jiang, L., et al., 2007. Genotoxicity of acrylamide in human hepatoma G2 (HepG2) cells. Toxicology in vitro, 21 (8), 1486–1492.
  • Johansson, A.-C., et al., 2010. Regulation of apoptosis-associated lysosomal membrane permeabilization. Apoptosis, 15 (5), 527–540.
  • Kahkeshani, N., Saeidnia, S., and Abdollahi, M., 2015. Role of antioxidants and phytochemicals on acrylamide mitigation from food and reducing its toxicity. Journal of food science and technology, 52 (6), 3169–3186.
  • Kalantari, H., et al., 2011. Protective effect of Cassia fistula fruit extract against bromobenzene-induced liver injury in mice. Human & experimental toxicology, 30 (8), 1039–1044.
  • Keramat, J., et al., 2011. Acrylamide in baking products: a review article. Food and bioprocess technology, 4 (4), 530–543.
  • Klaunig, J.E., 2008. Acrylamide carcinogenicity. Journal of agricultural and food chemistry, 56 (15), 5984–5988.
  • Konings, E.J., et al., 2007. Acrylamide in cereal and cereal products: a review on progress in level reduction. Food additives and contaminants, 24 (sup1), 47–59.
  • Kopp, E.K., and Dekant, W., 2009. Toxicokinetics of acrylamide in rats and humans following single oral administration of low doses. Toxicology and applied pharmacology, 235 (2), 135–142.
  • Koyama, N., et al., 2006. Genotoxicity of acrylamide and glycidamide in human lymphoblastoid TK6 cells. Mutation research/genetic toxicology and environmental mutagenesis, 603 (2), 151–158.
  • Liu, Z., et al., 2015. Acrylamide induces mitochondrial dysfunction and apoptosis in BV-2 microglial cells. Free radical biology & medicine, 84, 42–53.
  • Marsh, G.M., et al., 1999. Mortality patterns among workers exposed to acrylamide: 1994 follow up. Occupational and environmental medicine, 56 (3), 181–190.
  • Martel, C., et al., 2012. Inhibition of the mitochondrial permeability transition for cytoprotection: Direct versus indirect mechanisms. Biochemistry research international, 2012, 1–13.
  • Mehri, S., et al., 2014. Chrysin reduced acrylamide-induced neurotoxicity in both in vitro and in vivo assessments. Iranian biomedical journal, 18 (2), 101–106.
  • Moldoveanu, S.C., and Gerardi, A.R., 2011. Acrylamide analysis in tobacco, alternative tobacco products, and cigarette smoke. Journal of chromatographic science, 49 (3), 234–242.
  • Morales, F., Capuano, E., and Fogliano, V., 2008. Mitigation strategies to reduce acrylamide formation in fried potato products. Annals of the New York academy of sciences, 1126, 89–100.
  • Mucci, L.A., and Adami, H.-O., 2009. The plight of the potato: is dietary acrylamide a risk factor for human cancer? J Natl Cancer Inst, 101, 618–21.
  • Mucci, L.A., and Wilson, K.M., 2008. Acrylamide intake through diet and human cancer risk. Journal of agricultural and food chemistry, 56 (15), 6013–6019.
  • Nicholls, D. G., 2012. Fluorescence measurement of mitochondrial membrane potential changes in cultured cells. Mitochondrial bioenergetics, 810, 119–133.
  • Ou, S., et al., 2010. Effect of antioxidants on elimination and formation of acrylamide in model reaction systems. Journal of hazardous materials, 182 (1–3), 863–868.
  • Park, H.R., et al., 2010. Acrylamide induces cell death in neural progenitor cells and impairs hippocampal neurogenesis. Toxicology letters, 193 (1), 86–93.
  • Pascua-Maestro, R., et al., 2017. Protecting cells by protecting their vulnerable lysosomes: Identification of a new mechanism for preserving lysosomal functional integrity upon oxidative stress. PLoS genetics, 13 (2), e1006603.
  • Peña, R., 2002. Wheat for bread and other foods. Bread wheat improvement and production. Rome: Food and Agriculture Organization of the United Nations.
  • Rice, J.M., 2005. The carcinogenicity of acrylamide. Mutation research/genetic toxicology and environmental mutagenesis, 580 (1–2), 3–20.
  • Salimi, A., et al., 2017. Selective toxicity of persian Gulf sea cucumber Holothuria parva on human chronic lymphocytic leukemia B lymphocytes by direct mitochondrial targeting. Environmental toxicology, 32 (4), 1158–1169.
  • Shukla, P.K., et al., 2002. Protective effect of Acorus calamus against acrylamide induced neurotoxicity. Phytotherapy research, 16 (3), 256–260.
  • Taghavi, N., et al., 2007. Epidemiology of upper gastrointestinal cancers in Iran: a sub site analysis of 761 cases. World journal of gastroenterology, 13 (40), 5367–5370.
  • Von Tungeln, L.S., et al., 2012. Tumorigenicity of acrylamide and its metabolite glycidamide in the neonatal mouse bioassay. International journal of cancer, 131 (9), 2008–2015.
  • Xiong, S., et al., 2014. Mitochondria-mediated apoptosis in mammals. Protein & cell, 5 (10), 737–749.
  • Xu, H., and Ren, D., 2015. Lysosomal physiology. Annual review of physiology, 77, 57–80.
  • Zamani, E., et al., 2017. A review of acrylamide toxicity and its mechanism. Pharmaceutical and biomedical research, 3 (1), 1–8.
  • Zamani, E., et al., 2018. In vitro study towards role of acrylamide-induced genotoxicity in human lymphocytes and the protective effect of L-carnitine. Brazilian archives of biology and technology, 61, 1–10.
  • Zhang, J., et al., 2016. ROS and ROS-mediated cellular signaling. Oxidative medicine and cellular longevity, 2016, 1–18.
  • Zhang, Y., and Zhang, Y., 2008. Effect of natural antioxidants on kinetic behavior of acrylamide formation and elimination in low-moisture asparagine–glucose model system. Journal of food engineering, 85 (1), 105–115.
  • Zödl, B., et al., 2007. Intestinal transport and metabolism of acrylamide. Toxicology, 232 (1–2), 99–108.
  • Zorov, D.B., Juhaszova, M., and Sollott, S.J., 2014. Mitochondrial reactive oxygen species (ROS) and ROS-induced ROS release. Physiological reviews, 94 (3), 909–950.

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