Neutrophil function and antibody production during the transition period: Effect of form of supplementary trace minerals and associations with postpartum clinical disease and blood metabolites.
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N. Karrow | S. LeBlanc | M. Steele | B. McBride | E. Ribeiro | J. Sprícigo | B. Mion | L. Ogilvie | B. Van Winters
[1] S. LeBlanc,et al. Effects of replacing inorganic salts of trace minerals with organic trace minerals in pre- and postpartum diets on feeding behavior, rumen fermentation, and performance of dairy cows. , 2022, Journal of dairy science.
[2] A. Vlasova,et al. Bovine Immunology: Implications for Dairy Cattle , 2021, Frontiers in Immunology.
[3] R. Chebel. Predicting the risk of retained fetal membranes and metritis in dairy cows according to prepartum hemogram and immune and metabolic status. , 2020, Preventive veterinary medicine.
[4] G. Rosa,et al. Early-lactation diseases and fertility in 2 seasons of calving across US dairy herds. , 2020, Journal of dairy science.
[5] J. Loor,et al. Amino acids and the regulation of oxidative stress and immune function in dairy cattle , 2020, Journal of animal science.
[6] S. LeBlanc,et al. The effect of prepartum negative dietary cation-anion difference and serum calcium concentration on blood neutrophil function in the transition period of healthy dairy cows. , 2020, Journal of dairy science.
[7] S. LeBlanc,et al. Review: Relationships between metabolism and neutrophil function in dairy cows in the peripartum period. , 2020, Animal : an international journal of animal bioscience.
[8] F. Peñagaricano,et al. Long-term effects of postpartum clinical disease on milk production, reproduction, and culling of dairy cows. , 2019, Journal of dairy science.
[9] 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.
[10] S. LeBlanc,et al. The effect of prepartum feeding and lying space on metabolic health and immune function. , 2018, Journal of dairy science.
[11] T. Elsasser,et al. Short communication: Amino acid supplementation and stage of lactation alter apparent utilization of nutrients by blood neutrophils from lactating dairy cows in vitro. , 2016, Journal of dairy science.
[12] J. Loor,et al. Supplementing Zn, Mn, and Cu from amino acid complexes and Co from cobalt glucoheptonate during the peripartal period benefits postpartal cow performance and blood neutrophil function. , 2016, Journal of dairy science.
[13] Board on Agriculture. Nutrient Requirements of Dairy Cattle , 2016 .
[14] D. Keisler,et al. Effects of recombinant bovine somatotropin during the periparturient period on innate and adaptive immune responses, systemic inflammation, and metabolism of dairy cows. , 2015, Journal of dairy science.
[15] C. Risco,et al. Evaluation of peripartal calcium status, energetic profile, and neutrophil function in dairy cows at low or high risk of developing uterine disease. , 2012, Journal of dairy science.
[16] T. Gressley,et al. Immune responses in lactating Holstein cows supplemented with Cu, Mn, and Zn as sulfates or methionine hydroxy analogue chelates. , 2012, Journal of dairy science.
[17] B. Mallard,et al. Short communication: Association of disease incidence and adaptive immune response in Holstein dairy cows. , 2012, Journal of dairy science.
[18] J. Santos,et al. The association of serum metabolites with clinical disease during the transition period. , 2011, Journal of dairy science.
[19] Joseph H Abramson,et al. WINPEPI updated: computer programs for epidemiologists, and their teaching potential , 2011, Epidemiologic perspectives & innovations : EP+I.
[20] M. Stevenson,et al. Effects of feeding organic trace minerals on milk production and reproductive performance in lactating dairy cows: a meta-analysis. , 2010, Journal of dairy science.
[21] W. Thatcher,et al. Perspective on physiological/endocrine and nutritional factors influencing fertility in post-partum dairy cows. , 2010, Reproduction in domestic animals = Zuchthygiene.
[22] W. R. Butler,et al. Association between uterine disease and indicators of neutrophil and systemic energy status in lactating Holstein cows. , 2010, Journal of dairy science.
[23] L. Sordillo,et al. Impact of oxidative stress on the health and immune function of dairy cattle. , 2009, Veterinary immunology and immunopathology.
[24] P. Cunningham,et al. Zinc-controlled gene expression by metal-regulatory transcription factor 1 (MTF1) in a model vertebrate, the zebrafish. , 2008, Biochemical Society transactions.
[25] W. Weiss,et al. Role of antioxidants and trace elements in health and immunity of transition dairy cows. , 2008, Veterinary journal.
[26] S. Andrieu. Is there a role for organic trace element supplements in transition cow health? , 2008, Veterinary journal.
[27] J. L. Walters,et al. Neutrophil function and energy status in Holstein cows with uterine health disorders. , 2006, Veterinary immunology and immunopathology.
[28] J. Goff,et al. Parturition and hypocalcemia blunts calcium signals in immune cells of dairy cattle. , 2006, Journal of dairy science.
[29] W. Weiss,et al. Effect of selenium source on selenium status, neutrophil function, and response to intramammary endotoxin challenge of dairy cows. , 2005, Journal of dairy science.
[30] N. Lacetera,et al. Lymphocyte functions in overconditioned cows around parturition. , 2005, Journal of dairy science.
[31] N. Lacetera,et al. Short communication: effects of nonesterified fatty acids on lymphocyte function in dairy heifers. , 2004, Journal of dairy science.
[32] J. Spears,et al. Trace mineral bioavailability in ruminants. , 2003, The Journal of nutrition.
[33] D. Karp,et al. Gamma-glutamyl transpeptidase activity alters the T cell response to oxidative stress and Fas-induced apoptosis. , 2003, International immunology.
[34] J. Goff,et al. Decreased neutrophil function as a cause of retained placenta in dairy cattle. , 2002, Journal of dairy science.
[35] I. Cumming. The Mineral Nutrition of Livestock , 2001 .
[36] N. Kerkvliet,et al. γ‐Glutamyltranspeptidase knockout mice as a model for understanding the consequences of diminished glutathione on T cell‐dependent immune responses , 2000, European journal of immunology.
[37] J. Drackley,et al. ADSA Foundation Scholar Award. Biology of dairy cows during the transition period: the final frontier? , 1999, Journal of dairy science.
[38] J. Spears,et al. Effects of dietary copper and molybdenum on copper status, cytokine production, and humoral immune response of calves. , 1998, Journal of dairy science.
[39] S. Percival. Copper and immunity. , 1998, The American journal of clinical nutrition.
[40] A. Bell. Regulation of organic nutrient metabolism during transition from late pregnancy to early lactation. , 1995, Journal of animal science.
[41] J. Bakker,et al. Free amino acids in plasma and muscle of high yielding dairy cows in early lactation. , 1995, Journal of dairy science.
[42] D T Galligan,et al. Principal descriptors of body condition score in Holstein cows. , 1994, Journal of dairy science.
[43] W. C. Wagner,et al. Association between neutrophil functions and periparturient disorders in cows. , 1994, American journal of veterinary research.
[44] T. F. Brown,et al. Laboratory Evaluations of Solubility and Structural Integrity of Complexed and Chelated Trace Mineral Supplements , 1994 .
[45] A. Macpherson,et al. The influence of a low cobalt intake on the neutrophil function and severity of Ostertagia infection in cattle. , 1990, The British veterinary journal.
[46] J. Prohaska,et al. The Immune Response in Copper Deficiency a , 1990, Annals of the New York Academy of Sciences.
[47] P. Scuderi,et al. Differential effects of copper and zinc on human peripheral blood monocyte cytokine secretion. , 1990, Cellular immunology.
[48] E. Ropstad,et al. Immune Function in Dairy Cows Related to Energy Balance and Metabolic Status in Early Lactation , 1989, Acta Veterinaria Scandinavica.
[49] D E Bauman,et al. Partitioning of nutrients during pregnancy and lactation: a review of mechanisms involving homeostasis and homeorhesis. , 1980, Journal of dairy science.
[50] Trace Mineral Bioavailability in Ruminants 1 , 2022 .