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Effects of intravenous triacylglycerol emulsions on lymphocyte responses to mitogens in fasted dairy cows undergoing intense lipomobilization

Published online by Cambridge University Press:  30 April 2007

Nicola Lacetera*
Affiliation:
Dipartimento di Produzioni Animali, Università della Tuscia, Italy
Daniela Scalia
Affiliation:
Dipartimento di Produzioni Animali, Università della Tuscia, Italy
Dough G Mashek
Affiliation:
Department of Dairy Science, University of Wisconsin-Madison, USA
Umberto Bernabucci
Affiliation:
Dipartimento di Produzioni Animali, Università della Tuscia, Italy
Ric R Grummer
Affiliation:
Department of Dairy Science, University of Wisconsin-Madison, USA
*
*For correspondence; e-mail: nicgio@unitus.it

Abstract

The objective of the study was to assess the effects of intravenous infusion of triacylglycerol (TAG) emulsions derived from different lipid sources on responses to mitogens of peripheral blood mononuclear cells (PBMC) isolated from fasted dairy cows. Six multiparous, non-pregnant, non-lactating Holstein cows were used in a replicated 3×3 Latin Square design. For 4 d, cows were fasted and infused intravenously with a 20% TAG emulsions derived from tallow (TA), linseed oil (LO) or fish oil (FO). Fasting was employed to induce energy deficit and lipid mobilization. Emulsions were administered for 20 to 30 min every 4 h throughout the 4 d fast at a rate of 0·54 g TAG/kg BW/d. Blood samples were taken before the first infusion, and then every 24 h during the fast. Blood was utilized to assess DNA synthesis, IgM and interferon-gamma (IFN-γ) secretion by PBMC stimulated with mitogens. In TA infused cows there was a decline of PBMC ability to respond to mitogens, which was significant 48 h after initiation of the infusion period for DNA synthesis and IFN-γ secretion. In LO or FO infused cows, PBMC responses to mitogens were not altered during the infusion period, and in some cases PBMC responses to mitogen was improved at 72 and 96 h after initiation of treatments. Effects of TAG infusion on PBMC responses to mitogens depended on the lipid source suggesting that LO or FO can attenuate the negative effects of fasting on immune functions.

Type
Research Article
Copyright
Copyright © Proprietors of Journal of Dairy Research 2007

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References

Alves, NL, Derks, IA, Berk, E, Spijker, R, van Lier, RA & Eldering, E 2006 The Noxa/Mcl-1 axis regulates susceptibility to apoptosis under glucose limitation in dividing T cells. Immunity 24 703716CrossRefGoogle ScholarPubMed
Anel, A, Richieri, GV & Kleinfeld, AM 1993 Membrane partition of fatty acids and inhibition of T cell function. Biochemistry 32 530536CrossRefGoogle ScholarPubMed
Bertoni, G, Trevisi, E & Piccioli-Cappelli, F 2004 Effects of acetyl-salicylate used in post-calving of dairy cows. Veterinary Research Communications 28 217219CrossRefGoogle ScholarPubMed
Calder, PC, Yaqoob, P, Thies, F, Wallace, FA & Miles, EA 2002 Fatty acids and lymphocyte functions. British Journal of Nutrition 87 3148CrossRefGoogle ScholarPubMed
Carratelli, CR, Nuzzo, I, Vitiello, T, Galdiero, E & Galdiero, F 1999 The effect of dietary lipid manipulation on murine splenic lymphocytes apoptosis and heat shock protein over expression. FEMS Immunology and Medical Microbiology 24 1925CrossRefGoogle Scholar
de Pablo, MA, Susin, SA, Jacotot, E, Larochette, N, Costantini, P, Ravagnan, L, Zamzani, N & Kroemer, G 1999 Palmitate induces apoptosis via a direct effect on mitochondria. Apoptosis 4 8187CrossRefGoogle Scholar
de Pablo, MA & de Cienfuegos, A 2000 Modulatory effects of dietary lipids on immune system functions. Immunology and Cell Biology 78 3139CrossRefGoogle ScholarPubMed
Frauwirth, KA & Thompson, CB 2004 Regulation of T lymphocyte metabolism. Journal of Immunology 172 46614665CrossRefGoogle ScholarPubMed
Graham, DA, Mawhinney, KA, Adair, BM & Merza, M 1998a Testing of bovine sera by ELISA for IgG, IgM and IgA rheumatoid factors. Veterinary Immunology and Immunopathology 61 239250CrossRefGoogle ScholarPubMed
Graham, DA, McShane, J, Mawhinney, KA, McLaren, IE, Adair, BM & Merza, M 1998b Evaluation of a single dilution ELISA system for detection of seroconversion to bovine viral diarrhoea virus, bovine respiratory syncytial virus, parainfluenza-3 virus, and infectious bovine rhinotracheitis virus: comparison with testing by virus neutralization and hemagglutination inhibition. Journal of Veterinary Diagnostic Investigation 10 4348CrossRefGoogle ScholarPubMed
Hoeben, D, Monfardini, E, Opsomer, G, Burvenich, C, Dosogne, H, De Kruif, A & Beckers, JF 2000 Chemiluminescence of bovine polymorphonuclear leucocytes during the periparturient period and relation with metabolic markers and bovine pregnancy-associated glycoprotein. Journal of Dairy Science 67 249259Google ScholarPubMed
Hunnicutt, JW, Hardy, RW, Williford, J & McDonald, JM 1994 Saturated fatty acid-induced insulin resistance in rat adipocytes. Diabetes 43 540545CrossRefGoogle ScholarPubMed
Jacobs, SR & Rathmell, JC 2006 Lymphocyte selection by starvation: glucose metabolism and cell death. Trends in Immunology 27 47CrossRefGoogle ScholarPubMed
Kaneene, JB, Miller, RA, Herdt, TH & Gardiner, JC 1997 The association of serum nonesterified fatty acids and cholesterol, management and feeding practices with peripartum disease in dairy cows. Preventive Veterinary Medicine 31 5972CrossRefGoogle ScholarPubMed
Kehrli, ME, Neill, JD, Burvenich, C, Goff, JP, Lippolis, JD, Reinhardt, TA & Nonnecke, BJ 2006 Energy and protein effects on the immune system. In Ruminant physiology. Digestion, metabolism and impact of nutrition on gene expression, immunology and stress, pp. 455471 (Eds Sejrsen, K, Hvelplund, T & Nielsen, MO). Wageningen, Wageningen Academic PublishersCrossRefGoogle Scholar
Kerndt, PR, Naughton, JL, Driscoll, CE & Loxterkamp, DA 1982 Fasting: the history, pathophysiology and complications. The Western Journal of Medicine 137 379399Google ScholarPubMed
Kulcsár, M, Jánosi, S, Lehtolainen, T, Kátai, L, Delavaud, C, Balogh, O, Chilliard, Y, Pyörälä, S, Rudas, P & Huszenicza, G 2005 Feeding-unrelated factors influencing the plasma leptin level in ruminants. Domestic Animal Endocrinology 29 214226CrossRefGoogle ScholarPubMed
Lacetera, N, Bernabucci, U, Ronchi, B & Nardone, A 2001 Effects of subclinical pregnancy toxemia on immune responses in sheep. American Journal of Veterinary Research 62 10201024CrossRefGoogle ScholarPubMed
Lacetera, N, Franci, O, Scalia, D, Bernabucci, U, Ronchi, B & Nardone, A 2002 Effects on functions of ovine blood mononuclear cells for each of several fatty acids at concentrations found in plasma of healthy and ketotic ewes. American Journal of Veterinary Research 63 958962CrossRefGoogle ScholarPubMed
Lacetera, N, Scalia, D, Franci, O, Bernabucci, U, Ronchi, B & Nardone, A 2004 Effects of nonesterified fatty acids on lymphocyte function in dairy heifers. Journal of Dairy Science 87 10121014CrossRefGoogle ScholarPubMed
Lacetera, N, Scalia, D, Bernabucci, U, Ronchi, B, Pirazzi, D & Nardone, A 2005 Lymphocyte functions in overconditioned cows around parturition. Journal of Dairy Science 88 20102016CrossRefGoogle ScholarPubMed
Lee, JS, Pinnamaneni, SK, Eo, SJ, Cho, IH, Pyo, JH, Kim, CK, Sinclair, AJ, Febbraio, MA & Watt, MJ 2006 Saturated, but not n-6 polyunsaturated, fatty acids induce insulin resistance: role of intramuscular accumulation of lipid metabolites. Journal of Applied Physiology 100 14671474CrossRefGoogle Scholar
Lessard, M, Gagnon, N & Petit, HV 2003 Immune response of postpartum dairy cows fed flaxseed. Journal of Dairy Science 86 26472657CrossRefGoogle ScholarPubMed
Lessard, M, Gagnon, N, Godson, DL & Petit, HV 2004 Influence of parturition and diets enriched in n-3 or n-6 polyunsaturated fatty acids on immune response of dairy cows during the transition period. Journal of Dairy Science 87 21972210CrossRefGoogle ScholarPubMed
Lomax, MA & Baird, GD 1983 Blood flow and nutrient exchange across the liver and gut of the dairy cow. Effects of lactation and fasting. British Journal of Nutrition 49 481496CrossRefGoogle ScholarPubMed
Mashek, DG, Bertics, SJ & Grummer, RR 2005 Effects of intravenous triacylglycerol emulsions on hepatic metabolism and blood metabolites in fasted dairy cows. Journal of Dairy Science 88 100109CrossRefGoogle ScholarPubMed
National Research Council 2001 Nutrient Requirements of Dairy Cattle. 7th rev. ed. Natl. Acad. Sci., Washington, DCGoogle Scholar
Pires, J, Curi, R & Otton, R 2007 Induction of apoptosis in rat lymphocytes by starvation. Clinical Science 112 5967CrossRefGoogle ScholarPubMed
SAS user's guide: statistics version 5 edition. Cary, NC: SAS Institute Inc, 2001Google Scholar
Skeaff, CM, Hodson, L & McKenzie, JE 2006 Dietary-induced changes in fatty acid composition of human plasma, platelet, and erythrocyte lipids follow a similar time course. Journal of Nutrition 136 565569CrossRefGoogle ScholarPubMed
Szuster-Ciesielska, A, Filar, J & Kandefer-Szerszen, M 1995 Depression of interferon production in leukocytes of cows with fat mobilization syndrome. Archivum Immunologiae et Therapiae Experimentalis 43 6165Google ScholarPubMed
Thanasak, J, Müller, KE, Dieleman, SJ, Hoek, A, Noordhuizen, JPTM & Rutten, VPMG 2005 Effects of polyunsuturated fatty acids on the proliferation of mitogen stimulated bovine peripheral blood mononuclear cells. Veterinary Immunology and Immunopathology 104 289295CrossRefGoogle ScholarPubMed
Usui, I, Takata, Y, Imamura, T, Morioka, H, Sasaoka, T, Sawa, T, Ishihara, H, Ishiki, M & Kobayashi, M 1997 Fatty acid induced insulin resistance in rat-1 fibroblasts overexpressing human insulin receptors: impaired insulin-stimulated mitogen-activated protein kinase activity. Diabetologia 40 894901CrossRefGoogle ScholarPubMed
Zurier, RB, Rossetti, RG, Seiler, CM & Laposata, M 1999 Human peripheral blood T lymphocyte proliferation after activation of the T cell receptor: effects of unsaturated fatty acids. Prostaglandins, Leukotrienes and Essential Fatty Acids 60 371375CrossRefGoogle Scholar