Maternal treatment with pegbovigrastim influences growth performance and immune-metabolic status of calves during the pre-weaning period.
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J. Loor | D. Britti | G. Piccione | C. Giannetto | F. Arfuso | E. Trevisi | V. Lopreiato | L. Liotta | A. Minuti | G. Ferronato
[1] Y. Saco,et al. Evaluation of potential biomarkers to determine adequate colostrum provision in male dairy-beef calves upon arrival at the rearing facility beyond 14 days of age. , 2022, Journal of dairy science.
[2] P. Lancaster,et al. Prenatal immune stimulation alters the postnatal acute phase and metabolic responses to an endotoxin challenge in weaned beef heifers. , 2021, Translational animal science.
[3] L. Baumgard,et al. Invited review: The influence of immune activation on transition cow health and performance-A critical evaluation of traditional dogmas. , 2021, Journal of dairy science.
[4] J. Loor,et al. Maternal supplementation with cobalt sources, folic acid, and rumen-protected methionine and its effects on molecular and functional correlates of the immune system in neonatal Holstein calves. , 2021, Journal of dairy science.
[5] L. Sinclair,et al. Dairy cow health and management in the transition period: The need to understand the human dimension. , 2021, Research in veterinary science.
[6] Y. Pandey,et al. Supplementation of antioxidant micronutrients reduces stress and improves immune function/response in periparturient dairy cows and their calves. , 2021, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[7] J. Loor,et al. Suitability of rumination time during the first week after calving for detecting metabolic status and lactation performance in simmental dairy cows: a cluster-analytic approach , 2021, Italian Journal of Animal Science.
[8] E. Trevisi,et al. Association of postpartum uterine diseases with lying time and metabolic profiles of multiparous Holstein dairy cows in the transition period. , 2020, Veterinary journal.
[9] J. Loor,et al. Pegbovigrastim Treatment around Parturition Enhances Postpartum Immune Response Gene Network Expression of whole Blood Leukocytes in Holstein and Simmental Cows , 2020, Animals : an open access journal from MDPI.
[10] A. Abuelo,et al. Short communication: Effect of granulocyte-macrophage colony-stimulating factor on neonatal calf peripheral blood neutrophil function in vitro. , 2019, Journal of dairy science.
[11] D. Britti,et al. Age-related metabolic changes of pre-weaned Simmental calves fed whole bulk milk and ad libitum calf starter. , 2019, Research in veterinary science.
[12] D. Britti,et al. Effect of Pegbovigrastim on Hematological Profile of Simmental Dairy Cows during the Transition Period , 2019, Animals : an open access journal from MDPI.
[13] R. Laven,et al. A review of diagnostic tests for diagnosing failure of transfer of passive immunity in dairy calves in New Zealand , 2019, New Zealand veterinary journal.
[14] J. Loor,et al. Short communication: Supply of methionine during late pregnancy enhances whole-blood innate immune response of Holstein calves partly through changes in mRNA abundance in polymorphonuclear leukocytes. , 2019, Journal of dairy science.
[15] M. Hernandez-Jover,et al. An investigation of dairy calf management practices, colostrum quality, failure of transfer of passive immunity, and occurrence of enteropathogens among Australian dairy farms , 2019, Journal of Dairy Science.
[16] Y. Saco,et al. Age-Related Serum Biochemical Reference Intervals Established for Unweaned Calves and Piglets in the Post-weaning Period , 2019, Front. Vet. Sci..
[17] M. N. Corrêa,et al. Hematological and biochemical parameters of dairy calves submitted to pegbovigrastim administration. , 2019, Journal of dairy science.
[18] S. McDougall,et al. Pegbovigrastim treatment affects gene expression in neutrophils of pasture-fed, periparturient cows. , 2018, Journal of dairy science.
[19] S. LeBlanc,et al. The effect of pegbovigrastim on circulating neutrophil count in dairy cattle: A randomized controlled trial , 2018, PloS one.
[20] A. Relling,et al. Effects of Copper and Zinc Supplementation on Weight Gain and Hematological Parameters in Pre-weaning Calves , 2018, Biological Trace Element Research.
[21] S. McDougall,et al. Effect of prepartum energy balance on neutrophil function following pegbovigrastim treatment in periparturient cows. , 2017, Journal of dairy science.
[22] L. Baumgard,et al. Glucose requirements of an activated immune system in lactating Holstein cows. , 2017, Journal of dairy science.
[23] Wei Li,et al. Critical role of neutrophil alkaline phosphatase in the antimicrobial function of neutrophils. , 2016, Life sciences.
[24] S. Moisá,et al. Stress, immunity, and the management of calves. , 2016, Journal of dairy science.
[25] P. Fox,et al. Composition and properties of bovine colostrum: a review , 2016 .
[26] J. Caton,et al. Role of the Small Intestine in Developmental Programming: Impact of Maternal Nutrition on the Dam and Offspring. , 2016, Advances in nutrition.
[27] L. Rink,et al. Chelation of Free Zn2+ Impairs Chemotaxis, Phagocytosis, Oxidative Burst, Degranulation, and Cytokine Production by Neutrophil Granulocytes , 2016, Biological Trace Element Research.
[28] R. V. Van Saun,et al. Transition cow nutrition and feeding management for disease prevention. , 2014, The Veterinary clinics of North America. Food animal practice.
[29] Chong Wang,et al. Effect of recombinant bovine granulocyte colony-stimulating factor covalently bound to polyethylene glycol injection on neutrophil number and function in periparturient dairy cows. , 2014, Journal of dairy science.
[30] D. Hodgins,et al. Factors associated with morbidity, mortality, and growth of dairy heifer calves up to 3 months of age. , 2014, Preventive veterinary medicine.
[31] G. Dahl,et al. Invited review: heat stress effects during late gestation on dry cows and their calves. , 2013, Journal of dairy science.
[32] J. Loor,et al. Effect of the level of maternal energy intake prepartum on immunometabolic markers, polymorphonuclear leukocyte function, and neutrophil gene network expression in neonatal Holstein heifer calves. , 2013, Journal of dairy science.
[33] L. Rink,et al. Zinc signals in neutrophil granulocytes are required for the formation of neutrophil extracellular traps , 2013, Innate immunity.
[34] J. Drackley,et al. Systems physiology in dairy cattle: nutritional genomics and beyond. , 2013, Annual review of animal biosciences.
[35] I. Schwendenwein,et al. Diagnostic value of the neutrophil myeloperoxidase index in horses with systemic inflammation. , 2012, Veterinary journal.
[36] S. More,et al. Calf health from birth to weaning. I. General aspects of disease prevention , 2011, Irish veterinary journal.
[37] D. Hurley,et al. Neonatal Immune Development in the Calf and Its Impact on Vaccine Response , 2008, Veterinary Clinics of North America: Food Animal Practice.
[38] G. J. Rosa,et al. Analysis of the bovine neutrophil transcriptome during glucocorticoid treatment. , 2006, Physiological genomics.
[39] F. Crea,et al. Persistent systemic inflammation in unstable angina is largely unrelated to the atherothrombotic burden. , 2005, Journal of the American College of Cardiology.
[40] C. Kevil,et al. The red blood cell and vascular function in health and disease. , 2004, Antioxidants and Redox Signaling.
[41] P. Warriss,et al. Changes in the blood biochemical and haematological profile of neonatal calves with age , 2000, Veterinary Record.
[42] H. Hammon,et al. Colostrum effects on the gastrointestinal tract, and on nutritional, endocrine and metabolic parameters in neonatal calves , 2000 .
[43] A. Watanabe,et al. Effect of branched‐chain amino acids on the composition and cytolytic activity of liver‐associated lymphocytes in rats , 2000, Journal of gastroenterology and hepatology.
[44] H. Salmon,et al. The mammary gland and neonate mucosal immunity. , 1999, Veterinary immunology and immunopathology.
[45] J. Drackley,et al. ADSA Foundation Scholar Award. Biology of dairy cows during the transition period: the final frontier? , 1999, Journal of dairy science.
[46] M. Lamy,et al. Neutrophil myeloperoxidase revisited: it's role in health and disease , 1999 .
[47] J. Drewry,et al. Estimation of plasma volume in Holstein and Jersey calves. , 1998, Journal of dairy science.
[48] I R Dohoo,et al. Calf and disease factors affecting growth in female Holstein calves in Florida, USA. , 1998, Preventive veterinary medicine.
[49] T. Besser,et al. Prediction of serum IgG1 concentration in Holstein calves using serum gamma glutamyltransferase activity. , 1997, Journal of veterinary internal medicine.
[50] M. Spurlock. Regulation of metabolism and growth during immune challenge: an overview of cytokine function. , 1997, Journal of animal science.
[51] Rodney W. Johnson,et al. Inhibition of growth by pro-inflammatory cytokines: an integrated view. , 1997, Journal of animal science.
[52] J. Thompson,et al. Colostral transfer of gamma glutamyl transpeptidase in calves. , 1981, New Zealand veterinary journal.
[53] M. Galyean,et al. Influence of fasting and transit on ruminal and blood metabolites in beef steers. , 1981, Journal of animal science.
[54] P. G. Canonico,et al. Glucose and alanine metabolism during bacterial infections in rats and rhesus monkeys. , 1980, Metabolism: clinical and experimental.
[55] C. Baumrucker. gamma-Glutamyl transpeptidase of bovine milk membranes: distribution and characterization. , 1979, Journal of dairy science.