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
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J. Caton | C. Dahlen | K. Sedivec | P. Borowicz | T. Neville | K. McCarthy | J. Kirsch | A. Ward | L. Reynolds | S. Dorsam | C. Kassetas | F. Baumgaertner | J. C. Forcherio | R. Scott | A. C. B. Menezes
[1] 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.
[2] 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.
[3] 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.
[4] J. Caton,et al. Vitamin and mineral supplementation and rate of gain during the first trimester of gestation affect concentrations of amino acids in maternal serum and allantoic fluid of beef heifers. , 2021, Journal of animal science.
[5] C. Dahlen,et al. Utilizing an electronic feeder to measure individual mineral intake, feeding behavior, and growth performance of cow–calf pairs grazing native range1 , 2021, Translational animal science.
[6] M. V. Van Emon,et al. Impacts of Bovine Trace Mineral Supplementation on Maternal and Offspring Production and Health , 2020, Animals : an open access journal from MDPI.
[7] J. Caton,et al. 201 Effects of feeding vitamin and mineral and (or) energy supplements to beef heifers during the first 83 days of gestation on progesterone concentrations, corpus luteum size, and fetal body measurements , 2020 .
[8] A. Chernitskiy. STUDY OF INTERRELATIONS OF THE BIOELEMENT STATUS OF MOTHER AND FETUS AT CATTLE , 2020, JOURNAL OF MECHANICS OF CONTINUA AND MATHEMATICAL SCIENCES.
[9] A. El-ghor,et al. Induction of fetal abnormalities and genotoxicity by molybdenum nanoparticles in pregnant female mice and fetuses , 2020, Environmental Science and Pollution Research.
[10] C. Yin,et al. Essential trace elements in placental tissue and risk for fetal neural tube defects. , 2020, Environment international.
[11] F. Nielsen. Manganese, molybdenum, boron, silicon, and other trace elements , 2020 .
[12] 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.
[13] J. Caton,et al. Maternal nutrition and stage of early pregnancy in beef heifers: impacts on hexose and AA concentrations in maternal and fetal fluids1. , 2019, Journal of animal science.
[14] Matthew Shapero,et al. Mineral status of California beef cattle1 , 2018, Translational animal science.
[15] A. Di Mauro,et al. The Role of Oxidative Stress in the Pathomechanism of Congenital Malformations , 2018, Oxidative medicine and cellular longevity.
[16] Yuming Guo,et al. Comparative Study of Different Maternal Zinc Resource Supplementation on Performance and Breast Muscle Development of their Offspring , 2018, Biological Trace Element Research.
[17] 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.
[18] J. Yelich,et al. Effects of trace mineral supplement source during gestation and lactation in Angus and Brangus cows and subsequent calf immunoglobulin concentrations, growth, and development , 2017 .
[19] J. Caton,et al. Technical note: A new surgical technique for ovariohysterectomy during early pregnancy in beef heifers. , 2016, Journal of animal science.
[20] D. Bohnert,et al. Effects of organic or inorganic cobalt, copper, manganese, and zinc supplementation to late-gestating beef cows on productive and physiological responses of the offspring. , 2016, Journal of animal science.
[21] Board on Agriculture. Nutrient requirements of beef cattle: eighth revised edition (2016). , 2016 .
[22] K. Olson. COW SUPPLEMENTATION:GETTING THE BEST BANGFOR YOUR BUCK , 2015 .
[23] Z. Lv,et al. Maternal Zinc Supplementation Enhanced Skeletal Muscle Development Through Increasing Protein Synthesis and Inhibiting Protein Degradation of Their Offspring , 2014, Biological Trace Element Research.
[24] R. Gilbert,et al. The effect of injectable trace minerals (selenium, copper, zinc, and manganese) on peripheral blood leukocyte activity and serum superoxide dismutase activity of lactating Holstein cows. , 2014, Veterinary journal.
[25] L. A. Stalker,et al. Late gestation supplementation of beef cows differing in body condition score: effects on cow and calf performance. , 2013, Journal of animal science.
[26] S. Hansen,et al. Mineral concentrations of plasma and liver after injection with a trace mineral complex differ among Angus and Simmental cattle , 2012 .
[27] P. Fricke,et al. Effect of dietary organic zinc, manganese, copper, and cobalt supplementation on milk production, follicular growth, embryo quality, and tissue mineral concentrations in dairy cows. , 2010, Journal of animal science.
[28] J. Stevenson,et al. Control of the estrous cycle to improve fertility for fixed-time artificial insemination in beef cattle: a review. , 2010, Journal of animal science.
[29] 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.
[30] T. Fungwe,et al. Hepatic, placental, and fetal trace elements following molybdenum supplementation during gestation , 1989, Biological Trace Element Research.
[31] A. Young,et al. Effect of Supplemental Dietary Zinc on the Mammalian Target of Rapamycin (mTOR) Signaling Pathway in Skeletal Muscle and Liver from Post-absorptive Mice , 2007, Biological Trace Element Research.
[32] J. L. Martin,et al. Effects of dam nutrition on growth and reproductive performance of heifer calves. , 2007, Journal of animal science.
[33] K. Olson,et al. DELIVERY OF SUPPLEMENTS ON RANGELANDS , 2007 .
[34] D. Wells,et al. Perturbations in the Biochemical Composition of Fetal Fluids Are Apparent in Surviving Bovine Somatic Cell Nuclear Transfer Pregnancies in the First Half of Gestation1 , 2005, Biology of reproduction.
[35] R. Kincaid,et al. The role of essential trace elements in embryonic and fetal development in livestock. , 2003, Veterinary journal.
[36] E. Wintour,et al. Effect of maternal glucocorticoid treatment on fetal fluids in sheep at 0.4 gestation. , 1994, The American journal of physiology.
[37] E. Wintour,et al. Anatomy, physiology and pathology of the amniotic and allantoic compartments in the sheep and cow. , 1986, Australian veterinary journal.
[38] J. Mccall,et al. Placental transfer of Mo99 and Ca45 in swine. , 1954, The Journal of nutrition.