Behavioural multigenerational effects induced by the administration of very low doses of zinc during pregnancy, lactation, and prepuberal period in the rat

Journal of Neurorestoratology - Tập 9 - Trang 72-80 - 2021
Silvia G. Ratti1,2, Osvaldo J. Sacchi1,3, Edgardo O. Alvarez1
1Laboratorio de Epigénesis y Neuropsicofarmacología Experimental, Facultad de Ciencias Médicas, Facultad de Ciencias Veterinarias, Universidad Católica de Cuyo, sede San Luis, San Luis, Argentina
2Área de Farmacología, Facultad de Ciencias Médicas, Universidad Nacional de Cuyo, Mendoza, Argentina
3IMBECU, CONICET, CCT, Mendoza, Argentina

Tài liệu tham khảo

Augustyne, 2020 Rubio, 2007, El zinc: oligoelemento esencial, Nutr Hosp, 22, 101 Tyszka-Czochara, 2014, The role of zinc in the pathogenesis and treatment of central nervous system (CNS) diseases. Implications of zinc homeostasis for proper CNS function, Acta Pol Pharm, 71, 369 Gower-Winter, 2012, Zinc in the central nervous system: From molecules to behavior, Biofactors, 38, 186, 10.1002/biof.1012 McCall, 2000, Function and mechanism of zinc metalloenzymes, J Nutr, 130, 1437S, 10.1093/jn/130.5.1437S Brayer, 2008, Keep your fingers off my DNA: protein-protein interactions mediated by C2H2 zinc finger domains, Cell Biochem Biophys, 50, 111, 10.1007/s12013-008-9008-5 Cherasse, 2017, Dietary zinc Acts as a sleep modulator, Int J Mol Sci, 18, 10.3390/ijms18112334 Nakamura, 2019, Low zinc, copper, and manganese intake is associated with depression and anxiety symptoms in the Japanese working population: findings from the eating habit and well-being study, Nutrients, 11, E847, 10.3390/nu11040847 Hassan, 2020, Role of zinc in mucosal health and disease: a review of physiological, biochemical, and molecular processes, Cureus, 12 Ratti, 2012, Biological effects of trace elements on lateralized exploratory activity, defensive behaviour, and epigenetic DNA molecular changes in maturing rats, Am J Neuroprotect Neuroregen, 4, 167, 10.1166/ajnn.2012.1047 Ratti, 2014, The behavioural responses displayed by litter rats after chronic administration of non-toxic concentrations of ZnTe to parent rats are mediated primarily by Te, Am J Neuroprotect Neuroregen, 6, 33, 10.1166/ajnn.2014.1080 Ratti, 2019, Differential effects of zinc and tellurium on epigenetic changes of coping behaviour in maturing rats, J Neurorestoratol, 1, 1 Ratti, 2019, Tellurium epigenetic transgenerational effects on behavioral expression of coping behavior in rats, Prog Brain Res, 245, 247, 10.1016/bs.pbr.2019.03.003 Abrego, 2013, Motivated lateralized behaviour in the rat: role of the ventral hippocampus, Am J Neuroprotect Neuroregen, 5, 92, 10.1166/ajnn.2013.1067 Hollander, 1999 National Research Council, 2011 Foltz, 1999, Guidelines for assessing the health and condition of mice, Lab Animal, 28, 28 Takeda, 2016, Insight into cognitive decline from Zn2+ dynamics through extracellular signaling of glutamate and glucocorticoids, Arch Biochem Biophys, 611, 93, 10.1016/j.abb.2016.06.021 Ohkubo, 2019, Lack of zinc finger protein 521 upregulates dopamine β-hydroxylase expression in the mouse brain, leading to abnormal behavior, Life Sci, 231, 10.1016/j.lfs.2019.116559 Ali, 2012, The zinc-finger domains of PARP1 cooperate to recognise DNA strand-breaks, Nat Struc Mol Biol, 19, 685, 10.1038/nsmb.2335 Fontán-Lozano, 2010, Histone H1 poly[ADP]-ribosylation regulates the chromatin alterations required for learning consolidation, J Neurosci, 30, 13305, 10.1523/JNEUROSCI.3010-10.2010 Messner, 2010, PARP1 ADP-ribosylates lysine residues of the core histone tails, Nucleic Acids Res, 38, 6350, 10.1093/nar/gkq463