Maternal Mineral Nutrition Regulates Fetal Genomic Programming in Cattle: A Review
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J. Caton | C. Dahlen | A. Ward | L. Reynolds | A. C. B. Menezes | W. J. Diniz | Muhammad Anas | Wellison J. S. Diniz
[1] J. Caton,et al. Periconceptual Maternal Nutrition Affects Fetal Liver Programming of Energy- and Lipid-Related Genes , 2023, Animals : an open access journal from MDPI.
[2] J. Caton,et al. Fetal Hepatic Lipidome Is More Greatly Affected by Maternal Rate of Gain Compared with Vitamin and Mineral Supplementation at day 83 of Gestation , 2023, Metabolites.
[3] J. Caton,et al. Selenium supplementation and pregnancy outcomes , 2022, Frontiers in Nutrition.
[4] R. Lorca,et al. Potassium Channels in the Uterine Vasculature: Role in Healthy and Complicated Pregnancies , 2022, International journal of molecular sciences.
[5] P. Dhiman,et al. Association of Hypothyroidism With Low Serum Ferritin Levels and Iron-Deficiency Anemia During the First Trimester of Pregnancy , 2022, Cureus.
[6] J. Caton,et al. Vitamin and Mineral Supplementation and Rate of Gain in Beef Heifers II: Effects on Concentration of Trace Minerals in Maternal Liver and Fetal Liver, Muscle, Allantoic, and Amniotic Fluids at Day 83 of Gestation , 2022, Animals : an open access journal from MDPI.
[7] J. Caton,et al. Vitamin and Mineral Supplementation and Rate of Weight Gain during the First Trimester of Gestation in Beef Heifers Alters the Fetal Liver Amino Acid, Carbohydrate, and Energy Profile at Day 83 of Gestation , 2022, Metabolites.
[8] J. Caton,et al. Vitamin and Mineral Supplementation and Rate of Gain in Beef Heifers I: Effects on Dam Hormonal and Metabolic Status, Fetal Tissue and Organ Mass, and Concentration of Glucose and Fructose in Fetal Fluids at d 83 of Gestation , 2022, Animals : an open access journal from MDPI.
[9] G. Combs,et al. Dietary Selenium Across Species. , 2022, Annual review of nutrition.
[10] T. Schwerdtle,et al. Differences and Interactions in Placental Manganese and Iron Transfer across an In Vitro Model of Human Villous Trophoblasts , 2022, International journal of molecular sciences.
[11] A. Lindholm-Perry,et al. DNA methylation dataset of bovine embryonic fibroblast cells treated with epigenetic modifiers and divergent energy supply , 2022, Data in Brief.
[12] A. Lindholm-Perry,et al. Epigenetic Modifier Supplementation Improves Mitochondrial Respiration and Growth Rates and Alters DNA Methylation of Bovine Embryonic Fibroblast Cells Cultured in Divergent Energy Supply , 2022, Frontiers in Genetics.
[13] Giacomo Cavalli,et al. Molecular mechanisms of transgenerational epigenetic inheritance , 2022, Nature Reviews Genetics.
[14] G. Bobe,et al. Supranutritional Maternal Organic Selenium Supplementation during Different Trimesters of Pregnancy Affects the Muscle Gene Transcriptome of Newborn Beef Calves in a Time-Dependent Manner , 2021, Genes.
[15] J. Caton,et al. Nutritional Regulation of Embryonic Survival, Growth, and Development. , 2021, Advances in experimental medicine and biology.
[16] P. Loi,et al. Programming of Embryonic Development , 2021, International journal of molecular sciences.
[17] I. Bahar,et al. Spatial bias in cAMP generation determines biological responses to PTH type 1 receptor activation , 2021, Science Signaling.
[18] J. Takaya. Calcium-Deficiency during Pregnancy Affects Insulin Resistance in Offspring , 2021, International journal of molecular sciences.
[19] O. Carreras,et al. Fetal Programming Is Deeply Related to Maternal Selenium Status and Oxidative Balance; Experimental Offspring Health Repercussions , 2021, Nutrients.
[20] R. Marques,et al. Supplementing Trace Minerals to Beef Cows during Gestation to Enhance Productive and Health Responses of the Offspring , 2021, Animals : an open access journal from MDPI.
[21] R. Cooke,et al. Supplementing organic-complexed or inorganic Co, Cu, Mn, and Zn to beef cows during gestation: physiological and productive response of cows and their offspring until weaning , 2021, Journal of animal science.
[22] J. Caton,et al. Maternal Vitamin and Mineral Supplementation and Rate of Maternal Weight Gain Affects Placental Expression of Energy Metabolism and Transport-Related Genes , 2021, Genes.
[23] R. Cushman,et al. Cerebrum, liver, and muscle regulatory networks uncover maternal nutrition effects in developmental programming of beef cattle during early pregnancy , 2021, Scientific Reports.
[24] R. Cushman,et al. Maternal periconceptual nutrition, early pregnancy, and developmental outcomes in beef cattle. , 2020, Journal of animal science.
[25] Xiong Guo,et al. The role of selenium metabolism and selenoproteins in cartilage homeostasis and arthropathies , 2020, Experimental & Molecular Medicine.
[26] G. Banfi,et al. Physical Activity-Dependent Regulation of Parathyroid Hormone and Calcium-Phosphorous Metabolism , 2020, International journal of molecular sciences.
[27] S. Kaushik,et al. Parental Selenium Nutrition Affects the One-Carbon Metabolism and the Hepatic DNA Methylation Pattern of Rainbow Trout (Oncorhynchus mykiss) in the Progeny , 2020, Life.
[28] M. Piasek,et al. Metallothionein 2A Gene Polymorphisms in Relation to Diseases and Trace Element Levels in Humans , 2020, Arhiv za higijenu rada i toksikologiju.
[29] K. Hao,et al. Copper associates with differential methylation in placentae from two US birth cohorts , 2020, Epigenetics.
[30] Y. Arima,et al. Developmental origins of health and disease theory in cardiology. , 2020, Journal of cardiology.
[31] J. Díaz-Castro,et al. High- and low- selenium diets affect endocrine energy balance during early programming. , 2019, Toxicology and applied pharmacology.
[32] P. Beldade,et al. Genomics of Developmental Plasticity in Animals , 2019, Front. Genet..
[33] E. Zoidis,et al. Maternal Selenium and Developmental Programming , 2019, Antioxidants.
[34] David E. Condon,et al. Dysregulation of Neuronal Genes by Fetal-Neonatal Iron Deficiency Anemia Is Associated with Altered DNA Methylation in the Rat Hippocampus , 2019, Nutrients.
[35] R. Cushman,et al. Moderate nutrient restriction of beef heifers alters expression of genes associated with tissue metabolism, accretion, and function in fetal liver, muscle, and cerebrum by day 50 of gestation , 2019, Translational animal science.
[36] L. Rejnmark,et al. MANAGEMENT OF ENDOCRINE DISEASE: Hypoparathyroidism in pregnancy: review and evidence-based recommendations for management. , 2019, European journal of endocrinology.
[37] N. Phillips,et al. Animal Models and Their Contribution to Our Understanding of the Relationship Between Environments, Epigenetic Modifications, and Behavior , 2019, Genes.
[38] E. Zoidis,et al. Selenium, Selenoproteins, and Female Reproduction: A Review , 2018, Molecules.
[39] Xiuqin Fan,et al. Dietary calcium status during maternal pregnancy and lactation affects lipid metabolism in mouse offspring , 2018, Scientific Reports.
[40] Anna Espart,et al. Cadmium exposure during pregnancy and lactation: materno-fetal and newborn repercussions of Cd(ii), and Cd-metallothionein complexes. , 2018, Metallomics : integrated biometal science.
[41] J. Goff. Invited review: Mineral absorption mechanisms, mineral interactions that affect acid-base and antioxidant status, and diet considerations to improve mineral status. , 2018, Journal of dairy science.
[42] K. Michels. Developmental plasticity , 2018, Evolution, medicine, and public health.
[43] Young-Chae Chang,et al. Ascochlorin Suppresses MMP‐2‐Mediated Migration and Invasion by Targeting FAK and JAK‐STAT Signaling Cascades , 2018, Journal of cellular biochemistry.
[44] W. Gou,et al. Zinc improves learning and memory abilities of fetal growth restriction rats and promotes trophoblast cell invasion and migration via enhancing STAT3-MMP-2/9 axis activity , 2017, Oncotarget.
[45] J. Owens,et al. Maternal methyl donor and cofactor supplementation in late pregnancy increases β-cell numbers at 16 days of life in growth-restricted twin lambs. , 2017, American journal of physiology. Endocrinology and metabolism.
[46] H. Fanaei,et al. Minerals in Pregnancy and Lactation: A Review Article. , 2017, Journal of clinical and diagnostic research : JCDR.
[47] J. Caton,et al. Epigenetics and Developmental Programming in Ruminants: Long-Term Impacts on Growth and Development , 2017 .
[48] K. Vonnahme,et al. Livestock as models for developmental programming , 2017 .
[49] Guoyao Wu,et al. Fetal and neonatal programming of postnatal growth and feed efficiency in swine , 2017, Journal of Animal Science and Biotechnology.
[50] J. Takaya,et al. A Calcium-Deficient Diet in Rat Dams during Gestation Decreases HOMA-β% in 3 Generations of Offspring , 2017, Lifestyle Genomics.
[51] M. Groenen,et al. Impact of neonatal iron deficiency on hippocampal DNA methylation and gene transcription in a porcine biomedical model of cognitive development , 2016, BMC Genomics.
[52] I. Ellinger. The Calcium-Sensing Receptor and the Reproductive System , 2016, Front. Physiol..
[53] Jun Ma,et al. Bioabsorbable zinc ion induced biphasic cellular responses in vascular smooth muscle cells , 2016, Scientific Reports.
[54] L. Barbeito,et al. Copper delivery to the CNS by CuATSM effectively treats motor neuron disease in SODG93A mice co-expressing the Copper-Chaperone-for-SOD , 2016, Neurobiology of Disease.
[55] Yu-Chin Lien,et al. Fetal iron deficiency induces chromatin remodeling at the Bdnf locus in adult rat hippocampus. , 2015, American journal of physiology. Regulatory, integrative and comparative physiology.
[56] M. Nichi,et al. Gene expression of estrogen and oxytocin receptors in the uterus of pregnant and parturient bitches , 2015, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[57] Lubo Zhang,et al. Epigenetic Upregulation of Large-Conductance Ca2+-Activated K+ Channel Expression in Uterine Vascular Adaptation to Pregnancy , 2014, Hypertension.
[58] R. Funston,et al. BEEF SPECIES SYMPOSIUM: Can we build the cowherd by increasing longevity of females? , 2015, Journal of animal science.
[59] Yuan-Yuan Zheng,et al. Psychological stress induced zinc accumulation and up-regulation of ZIP14 and metallothionein in rat liver , 2014, BMC Gastroenterology.
[60] S. Castiglioni,et al. Magnesium and Osteoporosis: Current State of Knowledge and Future Research Directions , 2013, Nutrients.
[61] G. Brent,et al. Mechanisms of thyroid hormone action. , 2012, The Journal of clinical investigation.
[62] B. Hess,et al. Epigenetics and Effects on the Neonate That May Impact Feed Efficiency , 2012 .
[63] Guoyao Wu,et al. Biological mechanisms for nutritional regulation of maternal health and fetal development. , 2012, Paediatric and perinatal epidemiology.
[64] Alessandro Minelli,et al. Animal Development, an Open-Ended Segment of Life , 2011 .
[65] S. Antonini,et al. Pericytes resident in postnatal skeletal muscle differentiate into muscle fibres and generate satellite cells. , 2011, Nature communications.
[66] M. Srinivasan,et al. Metabolic Programming in the Immediate Postnatal Life , 2011, Annals of Nutrition and Metabolism.
[67] N. Kendall,et al. Role of the rumen in copper and thiomolybdate absorption , 2011, Nutrition Research Reviews.
[68] J. Takaya,et al. Magnesium deficiency in pregnant rats alters methylation of specific cytosines in the hepatic hydroxysteroid dehydrogenase-2 promoter of the offspring , 2011, Epigenetics.
[69] N. Forde,et al. Changes in the Endometrial Transcriptome During the Bovine Estrous Cycle: Effect of Low Circulating Progesterone and Consequences for Conceptus Elongation1 , 2011, Biology of reproduction.
[70] Mingyuan Du,et al. Nutrition during mid to late gestation affects growth, adipose tissue deposition, and tenderness in cross-bred beef steers. , 2010, Meat science.
[71] P. Haggarty. Fatty acid supply to the human fetus. , 2010, Annual review of nutrition.
[72] M. Glymour,et al. Implications of Lifecourse Epidemiology for Research on Determinants of Adult Disease , 2010, Public health reviews.
[73] K. Abu-Saad,et al. Maternal nutrition and birth outcomes. , 2010, Epidemiologic reviews.
[74] J. Tong,et al. Fetal programming of skeletal muscle development in ruminant animals. , 2010, Journal of animal science.
[75] P. Davis,et al. Molecular aspects of thyroid hormone actions. , 2010, Endocrine reviews.
[76] D. M. Larson,et al. Effects of maternal nutrition on conceptus growth and offspring performance: implications for beef cattle production. , 2010, Journal of animal science.
[77] J. Aruga,et al. Expression of ZIC family genes in meningiomas and other brain tumors , 2010, BMC Cancer.
[78] D. Mikhailidis,et al. Clinical review: The pathogenetic role of cortisol in the metabolic syndrome: a hypothesis. , 2009, The Journal of clinical endocrinology and metabolism.
[79] R. Greer,et al. Dietary manipulation of Bos indicus x heifers during gestation affects the reproductive development of their heifer calves. , 2009, Reproduction, fertility, and development.
[80] P. Kille,et al. Regulation of ZIP and ZnT zinc transporters in zebrafish gill: zinc repression of ZIP10 transcription by an intronic MRE cluster. , 2008, Physiological genomics.
[81] A. Badyaev. Maternal Effects as Generators of Evolutionary Change , 2008, Annals of the New York Academy of Sciences.
[82] J. B. Taylor,et al. Effects of selenium supply and dietary restriction on maternal and fetal metabolic hormones in pregnant ewe lambs. , 2008, Journal of animal science.
[83] H. Jones,et al. Copper and Iron Transport Across the Placenta: Regulation and Interactions , 2008, Journal of neuroendocrinology.
[84] A. Love. Explaining the Ontogeny of Form: Philosophical Issues , 2008 .
[85] C. Keen,et al. Prenatal Zinc Deficiency: Influence on Heart Morphology and Distribution of Key Heart Proteins in a Rat Model , 2008, Biological Trace Element Research.
[86] T. Klopfenstein,et al. Effects of Weaning Date and Prepartum Protein Supplementation on Cow Performance and Calf Growth , 2007 .
[87] S. Volpe,et al. Effect of Zinc Supplementation on Thyroid Hormone Function , 2007, Annals of Nutrition and Metabolism.
[88] J. L. Martin,et al. Effects of dam nutrition on growth and reproductive performance of heifer calves. , 2007, Journal of animal science.
[89] Thomas S. Scanlan,et al. Rapid nongenomic actions of thyroid hormone , 2006, Proceedings of the National Academy of Sciences.
[90] Guoyao Wu,et al. Board-invited review: intrauterine growth retardation: implications for the animal sciences. , 2006, Journal of animal science.
[91] C. Putman,et al. The biological basis for prenatal programming of postnatal performance in pigs. , 2006, Journal of animal science.
[92] C. Davis,et al. Differential effects of dietary selenium (Se) and folate on methyl metabolism in liver and colon of rats , 2006, Biological Trace Element Research.
[93] E. Bacharach,et al. Transferrin receptor co‐localizes and interacts with the hemochromatosis factor (HFE) and the divalent metal transporter‐1 (DMT1) in trophoblast cells , 2005, Journal of cellular physiology.
[94] C. Rosenfeld,et al. Estrogen regulates {beta}1-subunit expression in Ca(2+)-activated K(+) channels in arteries from reproductive tissues. , 2005, American journal of physiology. Heart and circulatory physiology.
[95] A. Levey,et al. Oxidative Modifications and Aggregation of Cu,Zn-Superoxide Dismutase Associated with Alzheimer and Parkinson Diseases* , 2005, Journal of Biological Chemistry.
[96] A. Prentice,et al. Early programming of adult diseases in resource poor countries , 2005, Archives of Disease in Childhood.
[97] Imran Y. Khan,et al. Developmental programming of the metabolic syndrome by maternal nutritional imbalance: how strong is the evidence from experimental models in mammals? , 2004, The Journal of physiology.
[98] Guoyao Wu,et al. Maternal nutrition and fetal development. , 2004, The Journal of nutrition.
[99] E. Wallace,et al. Expression and localization of menkes and Wilson copper transporting ATPases in human placenta. , 2004, Placenta.
[100] C. Davis,et al. Dietary folate and selenium affect dimethylhydrazine-induced aberrant crypt formation, global DNA methylation and one-carbon metabolism in rats. , 2003, The Journal of nutrition.
[101] M. Núñez,et al. DMT1, a physiologically relevant apical Cu1+ transporter of intestinal cells. , 2003, American journal of physiology. Cell physiology.
[102] C. Vulpe,et al. A rapid decrease in the expression of DMT1 and Dcytb but not Ireg1 or hephaestin explains the mucosal block phenomenon of iron absorption , 2003, Gut.
[103] Josef Köhrle,et al. The impact of iron and selenium deficiencies on iodine and thyroid metabolism: biochemistry and relevance to public health. , 2002, Thyroid : official journal of the American Thyroid Association.
[104] W. Langhans,et al. Iron deficiency anemia reduces thyroid peroxidase activity in rats. , 2002, The Journal of nutrition.
[105] S. Srai,et al. Iron transport across cell membranes: molecular understanding of duodenal and placental iron uptake. , 2002, Best practice & research. Clinical haematology.
[106] C. Davis,et al. Dietary selenite and azadeoxycytidine treatments affect dimethylhydrazine-induced aberrant crypt formation in rat colon and DNA methylation in HT-29 cells. , 2002, The Journal of nutrition.
[107] K. Mikoshiba,et al. Zic2 Controls Cerebellar Development in Cooperation with Zic1 , 2002, The Journal of Neuroscience.
[108] S. Yamaji,et al. Zinc regulates the function and expression of the iron transporters DMT1 and IREG1 in human intestinal Caco‐2 cells , 2001, FEBS letters.
[109] D. Thiele,et al. Essential role for mammalian copper transporter Ctr1 in copper homeostasis and embryonic development , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[110] C. Davis,et al. Dietary selenium and arsenic affect DNA methylation in vitro in Caco-2 cells and in vivo in rat liver and colon. , 2000, The Journal of nutrition.
[111] D. Forrest,et al. Effects of thyroid hormone receptor gene disruption on myosin isoform expression in mouse skeletal muscles. , 2000, American journal of physiology. Regulatory, integrative and comparative physiology.
[112] J. Mitchell,et al. The interactions between selenium and iodine deficiencies in man and animals , 1999, Nutrition Research Reviews.
[113] J. Robinson,et al. Nutritional effects on foetal growth , 1999 .
[114] J. Seidman,et al. Regulation of murine fetal-placental calcium metabolism by the calcium-sensing receptor. , 1998, The Journal of clinical investigation.
[115] M. Zimmerman,et al. A thyroid hormone analog stimulates angiogenesis in the post-infarcted rat heart. , 1998, Journal of molecular and cellular cardiology.
[116] D. Barker. Mothers, Babies and Disease in Later Life , 1994 .
[117] P. Bradley,et al. Sexual expression in paraplegia. , 1991, BMJ.
[118] A. R. Hutchinson,et al. The effects of selenium depletion and repletion on the metabolism of thyroid hormones in the rat. , 1990, Journal of inorganic biochemistry.
[119] G. Schultz,et al. Transition from maternal to embryonic control in early mammalian development: A comparison of several species , 1990, Molecular reproduction and development.
[120] G. Henderson,et al. Placental amino acid uptake in normal and complicated pregnancies. , 1988, The American journal of the medical sciences.
[121] J. Dumont,et al. Selenium deficiency as a possible factor in the pathogenesis of myxoedematous endemic cretinism. , 1987, Acta endocrinologica.
[122] J. M. Rogers,et al. Zinc deficiency in pregnant Long-Evans hooded rats: teratogenicity and tissue trace elements. , 1985, Teratology.
[123] H. Mcardle,et al. Transferrin binding by microvillar vesicles isolated from rat placenta. , 1984, Placenta.
[124] S. Innis. Influence of maternal cholestyramine treatment on cholesterol and bile acid metabolism in adult offspring. , 1983, The Journal of nutrition.
[125] J. Fléchon,et al. A scanning electron microscope study of the hatching of bovine blastocysts in vitro. , 1978, Journal of reproduction and fertility.
[126] R. Mccance,et al. A Review: New Thoughts on Growth , 1975, Pediatric Research.
[127] P. Larsen,et al. Serum triiodothyronine and thyroxine in the neonate and the acute increases in these hormones following delivery. , 1973, The Journal of clinical investigation.
[128] C. F. Mills,et al. Copper concentration and cytochrome-oxidase and ribonuclease activities in the brains of copper-deficient lambs. , 1962, The Biochemical journal.
[129] H. W. Bennetts,et al. Copper Deficiency in Sheep in Western Australia: A Preliminary Account of the Ætiology of Enzootic Ataxia of Lambs and an Anæmia of Ewes , 1937 .
[130] I. Wessels. Epigenetics and Minerals: An Overview , 2019, Handbook of Nutrition, Diet, and Epigenetics.
[131] K. Millen,et al. ZIC1 Function in Normal Cerebellar Development and Human Developmental Pathology. , 2018, Advances in experimental medicine and biology.
[132] M. Müftüoğlu,et al. Handbook of Nutrition, Diet and Epigenetics , 2018 .
[133] R. Martorell,et al. Maternal Nutrition and Birth Outcomes , 2017 .
[134] C. Tohyama,et al. Prenatal zinc deficiency-dependent epigenetic alterations of mouse metallothionein-2 gene. , 2013, The Journal of nutritional biochemistry.
[135] M. Du,et al. Effects of early- to mid-gestational undernutrition with or without protein supplementation on offspring growth, carcass characteristics, and adipocyte size in beef cattle. , 2012, Journal of animal science.
[136] S. Ford,et al. Evidence for similar changes in offspring phenotype following either maternal undernutrition or overnutrition: potential impact on fetal epigenetic mechanisms. , 2011, Reproduction, fertility, and development.
[137] D. S. Buchanan,et al. Uteroplacental vascular development and placental function: an update. , 2010, The International journal of developmental biology.
[138] Guoyao Wu,et al. Select Nutrients in the Ovine Uterine Lumen. I. Amino Acids, Glucose, and Ions in Uterine Lumenal Flushings of Cyclic and Pregnant Ewes1 , 2009, Biology of reproduction.
[139] S. Archibeque,et al. Characterization and Identification of Hepatic mRNA Related to Copper Metabolism and Homeostasis in Cattle , 2008, Biological Trace Element Research.
[140] R. Russell,et al. An ultrastructural study of the dufferentiation of skeletal muscle in the bovine fetus , 2004, Anatomy and Embryology.
[141] R. Magness. Maternal Cardiovascular and Other Physiologic Responses to the Endocrinology of Pregnancy , 1998 .
[142] R. Rasby,et al. EC97-277 Minerals and Vitamins For Beef Cows , 1997 .
[143] A. Peters. Embryo mortality in the cow , 1996 .
[144] B. Shea. Evaluating the bovine embryo. , 1981, Theriogenology.
[145] E. Warner,et al. The organogenesis and early histogenesis of the bovine stomach. , 1958, The American journal of anatomy.