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Recent advances in the regulation of milk fat synthesis

Published online by Cambridge University Press:  01 January 2009

K. J. Harvatine
Affiliation:
Department of Animal Science, Cornell University, Ithaca, NY 14853, USA
Y. R. Boisclair
Affiliation:
Department of Animal Science, Cornell University, Ithaca, NY 14853, USA
D. E. Bauman*
Affiliation:
Department of Animal Science, Cornell University, Ithaca, NY 14853, USA
*
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Abstract

In addition to its economic value, milk fat is responsible for many of milk’s characteristics and can be markedly affected by diet. Diet-induced milk fat depression (MFD) was first described over a century ago and remains a common problem observed under both intensive and extensive management. The biohydrogenation theory established that MFD is caused by an inhibition of mammary synthesis of milk fat by specific fatty acids (FA) produced as intermediates in ruminal biohydrogenation. During MFD, lipogenic capacity and transcription of key lipid synthesis genes in the mammary gland are down-regulated in a coordinated manner. Our investigations have established that expressions of sterol response element-binding protein 1 (SREBP1) and SREBP-activation proteins are down-regulated during MFD. Importantly, key lipogenic enzymes are transcriptionally regulated via SREBP1. Collectively, these results provide strong evidence for SREBP1 as a central signaling pathway in the regulation of mammary FA synthesis. Spot 14 is also down-regulated during MFD, consistent with a lipogenic role for this novel nuclear protein. In addition, SREBP1c and Spot 14 knock-out mice exhibit reduced milk fat similar to the magnitude and pattern of MFD in the cow. Application of molecular biology approaches has provided the latest chapter in the regulation of milk fat synthesis and is reviewed along with a brief background in nutritional regulation of milk fat synthesis in ruminants.

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Full Paper
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Copyright © The Animal Consortium 2008

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References

Ahnadi, CE, Beswick, N, Delbecchi, L, Kennelly, JJ, Lacasse, P 2002. Addition of fish oil to diets for dairy cows. II. Effects on milk fat and gene expression of mammary lipogenic enzymes. Journal of Dairy Research 69, 521531.CrossRefGoogle ScholarPubMed
Allen, MS 2000. Effects of diet on short-term regulation of feed intake by lactating dairy cattle. Journal of Dairy Science 83, 15981624.CrossRefGoogle ScholarPubMed
Amemiya-Kudo, M, Shimano, H, Yoshikawa, T, Yahagi, N, Hasty, AH, Okazaki, H, Tamura, Y, Shionoiri, F, Iizuka, Y, Ohashi, K, Osuga, J, Harada, K, Gotoda, T, Sato, R, Kimura, S, Ishibashi, S, Yamada, N 2000. Promoter analysis of the mouse sterol regulatory element-binding protein-1c gene. Journal of Biological Chemistry 275, 3107831085.CrossRefGoogle ScholarPubMed
Annison, EF, Bickerstaffe, R, Linzell, JL 1974. Glucose and fatty acid metabolism in cows producing milk of low fat content. Journal of Agricultural Science 82, 8795.CrossRefGoogle Scholar
Astrup, HN, Vik-Mo, L, Ekern, A, Bakke, F 1976. Feeding protected and unprotected oils to dairy cows. Journal of Dairy Science 59, 426430.CrossRefGoogle Scholar
Banks, W, Clapperton, JL, Ferrie, ME, Wilson, AG 1976. Effect of feeding fat to dairy cows receiving a fat-deficient basal diet. I. Milk yield and composition. Journal of Dairy Research 43, 213218.CrossRefGoogle ScholarPubMed
Banni, S, Day, BW, Evans, RW, Corongiu, FP, Lombardi, B 1994. Liquid chromatographic-mass spectrometric analysis of conjugated diene fatty acids in a partially hydrogenated fat. Journal of the American Oil Chemists’ Society 71, 13211325.CrossRefGoogle Scholar
Bauman, DE, Davis, CL 1974. Biosynthesis of milk fat. In Lactation: a comprehensive treatise, vol. 2 (ed. BL Larson and VR Smith), pp. 3175. Academic Press, Inc., New York.Google Scholar
Bauman, DE, Griinari, JM 2001. Regulation and nutritional manipulation of milk fat: low-fat milk syndrome. Livestock Production Science 70, 1529.CrossRefGoogle Scholar
Bauman, DE, Griinari, JM 2003. Nutritional regulation of milk fat synthesis. Annual Review of Nutrition 23, 203227.CrossRefGoogle ScholarPubMed
Bauman, DE, Lock, AL, Corl, BA, Ip, C, Salter, AM, Parodi, PW 2006. Milk fatty acids and human health: potential role of conjugated linoleic acid and trans fatty acids. In Ruminant physiology: digestion, metabolism and impact of nutrition on gene expression, immunology and stress (ed. K Sejrsen, T Hvelplund and MO Nielsen), pp. 529561. Wageningen Academic, Wageningen, The Netherlands.Google Scholar
Baumgard, LH, Corl, BA, Dwyer, DA, Saebo, A, Bauman, DE 2000. Identification of the conjugated linoleic acid isomer that inhibits milk fat synthesis. American Journal of Physiology Regulatory, Integrative and Comparative Physiology 278, R179R184.CrossRefGoogle ScholarPubMed
Baumgard, LH, Sangster, JK, Bauman, DE 2001. Milk fat synthesis in dairy cows is progressively reduced by increasing supplemental amounts of trans-10, cis-12 conjugated linoleic acid (CLA). Journal of Nutrition 131, 17641769.CrossRefGoogle ScholarPubMed
Baumgard, LH, Corl, BA, Dwyer, DA, Bauman, DE 2002a. Effects of conjugated linoleic acids (CLA) on tissue response to homeostatic signals and plasma variables associated with lipid metabolism in lactating dairy cows. Journal of Animal Science 80, 12851293.CrossRefGoogle ScholarPubMed
Baumgard, LH, Matitashvili, E, Corl, BA, Dwyer, DA, Bauman, DE 2002b. Trans-10, cis-12 conjugated linoleic acid decreases lipogenic rates and expression of genes involved in milk lipid synthesis in dairy cows. Journal of Dairy Science 85, 21552163.CrossRefGoogle ScholarPubMed
Bernal-Santos, G, IIPerfield, JW, Barbano, DM, Bauman, DE, Overton, TR 2003. Production responses of dairy cows to dietary supplementation with conjugated linoleic acid (CLA) during the transition period and early lactation. Journal of Dairy Science 86, 32183228.CrossRefGoogle ScholarPubMed
Bernard, L, Leroux, C, Chilliard, Y 2006. Characterization and nutritional regulation of the main lipogenic genes in the ruminant lactating mammary gland. In Ruminant physiology: digestion, metabolism and impact of nutrition on gene expression, immunology and stress (ed. K Sejrsen, T Hvelplund and MO Nielsen), pp. 295326. Wageningen Academic, Wageningen, The Netherlands.CrossRefGoogle Scholar
Bernard, L, Leroux, C, Chilliard, Y 2008. Expression and nutritional regulation of lipogenic genes in the ruminant lactating mammary gland. Advances in Experimental Medicine and Biology 606, 67108.CrossRefGoogle ScholarPubMed
Bickerstaffe, R, Johnson, AR 1972. The effect of intravenous infusions of sterculic acid on milk fat synthesis. British Journal of Nutrition 27, 561570.CrossRefGoogle ScholarPubMed
Botolin, D, Wang, Y, Christian, B, Jump, DB 2006. Docosahexaneoic acid (22:6,n-3) regulates rat hepatocyte SREBP-1 nuclear abundance by Erk- and 26S proteasome-dependent pathways. Journal of Lipid Research 47, 181192.CrossRefGoogle Scholar
Boxer, RB, Stairs, DB, Dugan, KD, Notarfrancesco, KL, Portocarrero, CP, Keister, BA, Belka, GK, Cho, H, Rathmell, JC, Thompson, CB, Birnbaum, MJ, Chodosh, LA 2006. Isoform-specific requirement for Akt1 in the developmental regulation of cellular metabolism during lactation. Cell Metabolism 4, 475490.CrossRefGoogle ScholarPubMed
Castañeda-Gutiérrez, E, Overton, TR, Butler, WR, Bauman, DE 2005. Dietary supplements of two doses of calcium salts of conjugated linoleic acid during the transition period and early lactation. Journal of Dairy Science 88, 10781089.CrossRefGoogle ScholarPubMed
Castañeda-Gutiérrez, E, Benefield, BC, de Veth, MJ, Santos, NR, Gilbert, RO, Butler, WR, Bauman, DE 2007. Evaluation of the mechanism of action of conjugated linoleic acid isomers on reproduction in dairy cows. Journal of Dairy Science 90, 42534264.CrossRefGoogle ScholarPubMed
Cavaletto, M, Giuffrida, MG, Conti, A 2008. Milk fat globule membrane components – a proteomic approach. Advances in Experimental Medicine and Biology 606, 129141.CrossRefGoogle ScholarPubMed
Chilliard, Y, Ferlay, A, Mansbridge, RM, Doreau, M 2000. Ruminant milk fat plasticity: nutritional control of saturated, polyunsaturated, trans and conjugated fatty acids. Annales de Zootechnie 49, 181205.CrossRefGoogle Scholar
Chou, WY, Cheng, YS, Ho, CL, Liu, ST, Liu, PY, Kuo, CC, Chang, HP, Chen, YH, Chang, GG, Huang, SM 2007. Human spot 14 protein interacts physically and functionally with the thyroid receptor. Biochemical and Biophysical Research Communications 357, 133138.CrossRefGoogle ScholarPubMed
Chou WY, Ho CL, Tseng ML, Liu ST, Yen LC and Huang SM 2008. Human Spot 14 protein is a p53-dependent transcriptional coactivator via the recruitment of thyroid receptor and Zac1. International Journal of Biochemistry and Cell Biology 40, 18261834.CrossRefGoogle Scholar
Chouinard, PY, Corneau, L, Saebo, A, Bauman, DE 1999a. Milk yield and composition during abomasal infusion of conjugated linoleic acids in dairy cows. Journal of Dairy Science 82, 27372745.CrossRefGoogle ScholarPubMed
Chouinard, PY, Corneau, L, Barbano, DM, Metzger, LE, Bauman, DE 1999b. Conjugated linoleic acids alter milk fatty acid composition and inhibit milk fat secretion in dairy cows. Journal of Nutrition 129, 15791584.CrossRefGoogle ScholarPubMed
Corl, BA, Baumgard, LH, Dwyer, DA, Griinari, JM, Phillips, BS, Bauman, DE 2001. The role of Δ9-desaturase in the production of cis-9, trans-11 CLA. Journal of Nutritional Biochemistry 12, 622630.CrossRefGoogle Scholar
Corl, BA, Butler, ST, Butler, WR, Bauman, DE 2006. Short communication: Regulation of milk fat yield and fatty acid composition by insulin. Journal of Dairy Science 89, 41724175.CrossRefGoogle ScholarPubMed
Craig, MC, Nepokroeff, CM, Lakshmanan, MR, Porter, JW 1972. Effect of dietary change on the rates of synthesis and degradation of rat liver fatty acid synthetase. Archives of Biochemistry and Biophysics 152, 619630.CrossRefGoogle ScholarPubMed
Cunningham, BA, Moncur, JT, Huntington, JT, Kinlaw, WB 1998. “Spot 14” protein: a metabolic integrator in normal and neoplastic cells. Thyroid 8, 815825.CrossRefGoogle ScholarPubMed
Davis, CL, Brown, RE 1970. Low-fat milk syndrome. In Physiology of digestion and metabolism in the ruminant (ed. AT Phillipson), pp. 545565. Oriel Press, Newcastle upon Tyne, UK.Google Scholar
de Veth, MJ, Griinari, JM, Pfeiffer, AM, Bauman, DE 2004. Effect of CLA on milk fat synthesis in dairy cows: comparison of inhibition by methyl esters and free fatty acids, and relationships among studies. Lipids 39, 365372.CrossRefGoogle ScholarPubMed
de Veth, MJ, Castañeda-Gutiérrez, E, Dwyer, DA, Pfeiffer, AM, Putnam, DE, Bauman, DE 2006. Response to conjugated linoleic acid in dairy cows differing in energy and protein status. Journal of Dairy Science 89, 46204631.CrossRefGoogle ScholarPubMed
Doreau, M, Chilliard, Y 1997. Digestion and metabolism of dietary fat in farm animals. British Journal of Nutrition 78 (suppl. 1), S15S35.CrossRefGoogle ScholarPubMed
Doreau, M, Chilliard, Y, Rulquin, H, Demeyer, DI 1999. Manipulation of milk fat in dairy cows. In Recent advances in animal nutrition (ed. PC Garnsworthy and J Wiseman), pp. 81109. Nottingham University Press, Nottingham, UK.Google Scholar
Du, X, Kristiana, I, Wong, J, Brown, AJ 2006. Involvement of Akt in ER-to-Golgi transport of SCAP/SREBP: a link between a key cell proliferative pathway and membrane synthesis. Molecular Biology of the Cell 17, 27352745.CrossRefGoogle ScholarPubMed
Duplus, E, Forest, C 2002. Is there a single mechanism for fatty acid regulation of gene transcription? Biochemical Pharmacology 64, 893901.CrossRefGoogle Scholar
Eberle, D, Hegarty, B, Bossard, P, Ferre, P, Foufelle, F 2004. SREBP transcription factors: master regulators of lipid homeostasis. Biochimie 86, 839848.CrossRefGoogle ScholarPubMed
Feige, JN, Gelman, L, Michalik, L, Desvergne, B, Wahli, W 2006. From molecular action to physiological outputs: peroxisome proliferator-activated receptors are nuclear receptors at the crossroads of key cellular functions. Progress in Lipid Research 45, 120159.CrossRefGoogle ScholarPubMed
Francis, GA, Fayard, E, Picard, F, Auwerx, J 2003. Nuclear receptors and the control of metabolism. Annual Review of Physiology 65, 261311.CrossRefGoogle ScholarPubMed
Gaynor, PJ, Erdman, RA, Teter, BB, Sampugna, J, Capuco, AV, Waldo, DR, Hamosh, M 1994. Milk fat yield and composition during abomasal infusion of cis or trans octadecenoates in Holstein cows. Journal of Dairy Science 77, 157165.CrossRefGoogle ScholarPubMed
Goldstein, JL, DeBose-Boyd, RA, Brown, MS 2006. Protein sensors for membrane sterols. Cell 124, 3546.CrossRefGoogle ScholarPubMed
Griinari, JM, Bauman, DE 1999. Biosynthesis of conjugated linoleic acid and its incorporation into meat and milk in ruminants. In Advances in conjugated linoleic acid research, vol. 1 (ed. MP Yurawecz, MM Mossoba, JKG Kramer, MW Pariza and GJ Nelson), pp. 180200. AOCS Press, Champaign, IL.Google Scholar
Griinari, JM, Bauman, DE 2003. Update on theories of diet-induced milk fat depression and potential applications. In Recent advances in animal nutrition (ed. PC Garnsworthy and J Wiseman), pp. 115156. Nottingham University Press, Nottingham, UK.Google Scholar
Griinari, JM, Bauman, DE 2006. Milk fat depression: concepts, mechanisms and management applications. In Ruminant physiology: digestion, metabolism and impact of nutrition on gene expression, immunology and stress (ed. K Sejrsen, T Hvelplund and MO Nielsen), pp. 389417. Wageningen Academic, Wageningen, The Netherlands.CrossRefGoogle Scholar
Griinari, JM, McGuire, MA, Dwyer, DA, Bauman, DE, Palmquist, DL 1997. Role of insulin in the regulation of milk fat synthesis in dairy cows. Journal of Dairy Science 80, 10761084.CrossRefGoogle ScholarPubMed
Griinari, JM, Dwyer, DA, McGuire, MA, Bauman, DE, Palmquist, DL, Nurmela, KV 1998. Trans-octadecenoic acids and milk fat depression in lactating dairy cows. Journal of Dairy Science 81, 12511261.CrossRefGoogle ScholarPubMed
Griinari, JM, Corl, BA, Lacy, SH, Chouinard, PY, Nurmela, KV, Bauman, DE 2000. Conjugated linoleic acid is synthesized endogenously in lactating dairy cows by Δ9-desaturase. Journal of Nutrition 130, 22852291.CrossRefGoogle Scholar
Grummer, RR 1991. Effect of feed on the composition of milk fat. Journal of Dairy Science 74, 32443257.CrossRefGoogle ScholarPubMed
Hannah, VC, Ou, J, Luong, A, Goldstein, JL, Brown, MS 2001. Unsaturated fatty acids down-regulate SREBP isoforms 1a and 1c by two mechanisms in HEK-293 cells. Journal of Biological Chemistry 276, 43654372.CrossRefGoogle ScholarPubMed
Harfoot, CG, Hazlewood, GP 1988. Lipid metabolism in the rumen. In The rumen microbial ecosystem (ed. PN Hobson), pp. 285322. Elsevier Applied Science Publishers, London, UK.Google Scholar
Harvatine, KJ, Allen, MS 2006. Effects of fatty acid supplements on milk yield and energy balance of lactating dairy cows. Journal of Dairy Science 89, 10811091.CrossRefGoogle ScholarPubMed
Harvatine, KJ, Bauman, DE 2006. SREBP1 and thyroid hormone responsive spot 14 (S14) are involved in the regulation of bovine mammary lipid synthesis during diet-induced milk fat depression and treatment with CLA. Journal of Nutrition 136, 24682474.CrossRefGoogle ScholarPubMed
Harvatine, KJ, Bauman, DE 2007a. Expression of PPAR and LXR nuclear hormone receptor families are not modified during milk fat depression induced by diet or treatment with trans-10, cis-12 conjugated linoleic acid (CLA). Journal of Dairy Science 90(suppl. 1), 59.Google Scholar
Harvatine KJ and Bauman DE 2007b. Recent advances in milk fat depression: 1. Time course of milk fat depression and 2. Adipose tissue lipogenesis during milk fat depression. Proceedings of the Cornell Nutrition Conference for Feed Manufacturers, Syracuse, NY, pp. 135–142.Google Scholar
Harvatine, KJ, Dwyer, DA, Bauman, DE 2006. Characterization of the acute lactational response to trans-10, cis-12 conjugated linoleic acid (CLA). Journal of Dairy Science 89(suppl. 1), 294.Google Scholar
Harvatine, KJ, Dwyer, DA, Bauman, DE 2007. Expression of lipogenic genes in adipose tissue increases during milk fat depression induced by treatment with trans-10, cis-12 conjugated linoleic acid (CLA). Journal of Dairy Science 90(suppl. 1), 206.Google Scholar
Hinrichsen T, Lock AL and Bauman DE 2006. The relationship between trans-10 18:1 and milk fat yield in cows fed high oleic acid or high linoleic acid plant oil supplements. Euro-Fed Lipid Congress, Madrid, Spain, p. S81.Google Scholar
Hoashi, S, Ashida, N, Ohsaki, H, Utsugi, T, Sasazaki, S, Taniguchi, M, Oyama, K, Mukai, F, Mannen, H 2007. Genotype of bovine sterol regulatory element binding protein-1 (SREBP-1) is associated with fatty acid composition in Japanese Black cattle. Mammalian Genome 18, 880886.CrossRefGoogle ScholarPubMed
Horton, JD, Goldstein, JL, Brown, MS 2002. SREBPs: activators of the complete program of cholesterol and fatty acid synthesis in the liver. Journal of Clinical Investigation 109, 11251131.CrossRefGoogle ScholarPubMed
Hurtaud, C, Rulquin, H, Verite, R 1998. Effects of graded duodenal infusions of glucose on yield and composition of milk from dairy cows. 1. Diets based on corn silage. Journal of Dairy Science 81, 32393247.CrossRefGoogle ScholarPubMed
Ip, C, Dong, Y, Ip, MM, Banni, S, Carta, G, Angioni, E, Murru, E, Spada, S, Melis, MP, Saebo, A 2002. Conjugated linoleic acid isomers and mammary cancer prevention. Nutrition and Cancer 43, 5258.CrossRefGoogle ScholarPubMed
Jenkins, TC, Wallace, RJ, Moate, PJ, Mosley, EE 2008. Board-invited review: recent advances in biohydrogenation of unsaturated fatty acids within the rumen microbial ecosystem. Journal of Animal Science 86, 397412.CrossRefGoogle ScholarPubMed
Jensen, RG 2002. The composition of bovine milk lipids: January 1995 to December 2000. Journal of Dairy Science 85, 295350.CrossRefGoogle ScholarPubMed
Jump, DB, Botolin, D, Wang, Y, Xu, J, Christian, B, Demeure, O 2005. Fatty acid regulation of hepatic gene transcription. Journal of Nutrition 135, 25032506.CrossRefGoogle ScholarPubMed
Jump DB, Botolin D, Wang Y, Xu J, Demeure O and Christian B 2008. Docosahexaenoic acid (DHA) and hepatic gene transcription. Chemistry and Physics of Lipids 153, 313.CrossRefGoogle Scholar
Jung, MY, Ha, YL 1999. Conjugated linoleic acid isomers in partially hydrogenated soybean oil obtained during nonselective and selective hydrogenation processes. Journal of Agricultural and Food Chemistry 47, 704708.CrossRefGoogle ScholarPubMed
Kadegowda, AK, Piperova, LS, Erdman, RA 2008. Principal component and multivariate analysis of milk long-chain fatty acid composition during diet-induced milk fat depression. Journal of Dairy Science 91, 749759.CrossRefGoogle ScholarPubMed
Kang, K, Miyazaki, M, Ntambi, JM, Pariza, MW 2004. Evidence that the anti-obesity effect of conjugated linoleic acid is independent of effects on stearoyl-CoA desaturase1 expression and enzyme activity. Biochemical and Biophysical Research Communications 315, 532537.CrossRefGoogle ScholarPubMed
Kay, JK, Mackle, TR, Auldist, MJ, Thomson, NA, Bauman, DE 2004. Endogenous synthesis of cis-9, trans-11 conjugated linoleic acid in dairy cows fed fresh pasture. Journal of Dairy Science 87, 369378.CrossRefGoogle ScholarPubMed
Keenan, TW 2001. Milk lipid globules and their surrounding membrane: a brief history and perspectives for future research. Journal of Mammary Gland Biology and Neoplasia 6, 365371.CrossRefGoogle ScholarPubMed
Kelley, NS, Hubbard, NE, Erickson, KL 2007. Conjugated linoleic acid isomers and cancer. Journal of Nutrition 137, 25992607.CrossRefGoogle ScholarPubMed
Kennedy, A, Chung, S, LaPoint, K, Fabiyi, O, McIntosh, MK 2008. Trans-10, cis-12 conjugated linoleic acid antagonizes ligand-dependent PPARgamma activity in primary cultures of human adipocytes. Journal of Nutrition 138, 455461.CrossRefGoogle ScholarPubMed
LaFave, LT, Augustin, LB, Mariash, CN 2006. S14: insights from knockout mice. Endocrinology 147, 40444047.CrossRefGoogle ScholarPubMed
Lock, AL, Bauman, DE 2004. Modifying milk fat composition of dairy cows to enhance fatty acids beneficial to human health. Lipids 39, 11971206.CrossRefGoogle ScholarPubMed
Lock, AL, Shingfield, KJ 2004. Optimising milk composition. In UK dairying: using science to meet consumers’ needs (ed. E Kebreab, J Mills and D Beever), pp. 107188. Nottingham University Press, Nottingham, UK.Google Scholar
Lock AL, Overton TR, Harvatine KJ, Giesy JG and Bauman DE 2006a. Milk fat depression: impact of dietary components and their interaction during rumen fermentation. Proceedings of the Cornell Nutrition Conference for Feed Manufacturers, Syracuse, NY, pp. 75–85.Google Scholar
Lock, AL, Teles, BM, IIPerfield, JW, Bauman, DE, Sinclair, LA 2006b. A conjugated linoleic acid supplement containing trans-10, cis-12 reduces milk fat synthesis in lactating sheep. Journal of Dairy Science 89, 15251532.CrossRefGoogle ScholarPubMed
Lock, AL, Tyburczy, C, Dwyer, DA, Harvatine, KJ, Destaillats, F, Mouloungui, Z, Candy, L, Bauman, DE 2007. Trans-10 octadecenoic acid does not reduce milk fat synthesis in dairy cows. Journal of Nutrition 137, 7176.CrossRefGoogle Scholar
Loor, JJ, Herbein, JH 1998. Exogenous conjugated linoleic acid isomers reduce bovine milk fat concentration and yield by inhibiting de novo fatty acid synthesis. Journal of Nutrition 128, 24112419.CrossRefGoogle ScholarPubMed
Loor, JJ, Herbein, JH 2003. Reduced fatty acid synthesis and desaturation due to exogenous trans-10, cis-12-CLA in cows fed oleic or linoleic oil. Journal of Dairy Science 86, 13541369.CrossRefGoogle ScholarPubMed
Loor, JJ, Ferlay, A, Ollier, A, Doreau, M, Chilliard, Y 2005. Relationship among trans and conjugated fatty acids and bovine milk fat yield due to dietary concentrate and linseed oil. Journal of Dairy Science 88, 726740.CrossRefGoogle ScholarPubMed
Mackle, TR, Dwyer, DA, Ingvartsen, KL, Chouinard, PY, Lynch, JM, Barbano, DM, Bauman, DE 1999. Effects of insulin and amino acids on milk protein concentration and yield from dairy cows. Journal of Dairy Science 82, 15121524.CrossRefGoogle ScholarPubMed
Mackle, TR, Kay, JK, Auldist, MJ, McGibbon, AK, Philpott, BA, Baumgard, LH, Bauman, DE 2003. Effects of abomasal infusion of conjugated linoleic acid on milk fat concentration and yield from pasture-fed dairy cows. Journal of Dairy Science 86, 644652.CrossRefGoogle ScholarPubMed
Martel, PM, Bingham, CM, McGraw, CJ, Baker, CL, Morganelli, PM, Meng, ML, Armstrong, JM, Moncur, JT, Kinlaw, WB 2006. S14 protein in breast cancer cells: direct evidence of regulation by SREBP-1c, superinduction with progestin, and effects on cell growth. Experimental Cell Research 312, 278288.Google ScholarPubMed
Mather, IH, Keenan, TW 1998. Origin and secretion of milk lipids. Journal of Mammary Gland Biology and Neoplasia 3, 259273.CrossRefGoogle ScholarPubMed
McClymont, GL, Vallance, S 1962. Depression of blood glycerides and milk-fat synthesis by glucose infusion. Proceedings of the Nutrition Society 21, 4142.Google Scholar
McGuire, JG, Bauman, DE 2002. Milk biosynthesis and secretion. In Encyclopedia of dairy science (ed. H Roginski, JW Fuquay and PF Fox), pp. 18281834. Elsevier Science Ltd., London, England.CrossRefGoogle Scholar
McGuire, MA, Griinari, JM, Dwyer, DA, Bauman, DE 1995. Role of insulin in the regulation of mammary synthesis of fat and protein. Journal of Dairy Science 78, 816824.CrossRefGoogle ScholarPubMed
McManaman, JL, Palmer, CA, Wright, RM, Neville, MC 2002. Functional regulation of xanthine oxidoreductase expression and localization in the mouse mammary gland: evidence of a role in lipid secretion. Journal of Physiology 545, 567579.CrossRefGoogle ScholarPubMed
Medrano, JF, Rincon, G 2007. SNP identification in genes involved in the SREBP1 pathway in dairy cattle. Journal of Dairy Science 90(suppl. 1), 193.Google Scholar
Miyazaki, M, Flowers, MT, Sampath, H, Chu, K, Otzelberger, C, Liu, X, Ntambi, JM 2007. Hepatic stearoyl-CoA desaturase-1 deficiency protects mice from carbohydrate-induced adiposity and hepatic steatosis. Cell Metabolism 6, 484496.CrossRefGoogle ScholarPubMed
Moon, YS, Latasa, MJ, Griffin, MJ, Sul, HS 2002. Suppression of fatty acid synthase promoter by polyunsaturated fatty acids. Journal of Lipid Research 43, 691698.CrossRefGoogle ScholarPubMed
Moore, CE, Hafliger, HC, Mendivil, OB, Sanders, SR, Bauman, DE, Baumgard, LH 2004. Increasing amounts of conjugated linoleic acid progressively reduces milk fat synthesis immediately postpartum. Journal of Dairy Science 87, 18861895.CrossRefGoogle ScholarPubMed
Moya-Camarena, SY, Vanden Heuvel, JP, Blanchard, SG, Leesnitzer, LA, Belury, MA 1999. Conjugated linoleic acid is a potent naturally occurring ligand and activator of PPARalpha. Journal of Lipid Research 40, 14261433.CrossRefGoogle ScholarPubMed
Ntambi, JM, Miyazaki, M 2004. Regulation of stearoyl-CoA desaturases and role in metabolism. Progress in Lipid Research 43, 91104.CrossRefGoogle ScholarPubMed
Odens, LJ, Burgos, R, Innocenti, M, VanBaale, MJ, Baumgard, LH 2007. Effects of varying doses of supplemental conjugated linoleic acid on production and energetic variables during the transition period. Journal of Dairy Science 90, 293305.CrossRefGoogle ScholarPubMed
Ogg, SL, Weldon, AK, Dobbie, L, Smith, AJ, Mather, IH 2004. Expression of butyrophilin (Btn1a1) in lactating mammary gland is essential for the regulated secretion of milk-lipid droplets. Proceedings of the National Academy of Sciences of the United States of America 101, 1008410089.CrossRefGoogle ScholarPubMed
Olivier-Bousquet, M 2002. Milk lipid and protein traffic in mammary epithelial cells: joint and independent pathways. Reproduction Nutrition Development 42, 149162.CrossRefGoogle Scholar
Oshino, N, Sato, R 1972. The dietary control of the microsomal stearyl CoA desaturation enzyme system in rat liver. Archives of Biochemistry and Biophysics 149, 369377.CrossRefGoogle ScholarPubMed
Palmquist, DL, Mattos, W 1978. Turnover of lipoproteins and transfer to milk fat of dietary (1-carbon-14) linoleic acid in lactating cows. Journal of Dairy Science 61, 561565.CrossRefGoogle Scholar
Palmquist, DL, Beaulieu, AD, Barbano, DM 1993. Feed and animal factors influencing milk fat composition. Journal of Dairy Science 76, 17531771.CrossRefGoogle ScholarPubMed
Palmquist, DL, Lock, AL, Shingfield, KJ, Bauman, DE 2005. Biosynthesis of conjugated linoleic acid in ruminants and humans. Advances in Food and Nutrition Research 50, 179217.CrossRefGoogle ScholarPubMed
Pariza, MW 2004. Perspective on the safety and effectiveness of conjugated linoleic acid. American Journal of Clinical Nutrition 79, 1132S1136S.CrossRefGoogle ScholarPubMed
IIPerfield, JW, Bernal-Santos, G, Overton, TR, Bauman, DE 2002. Effects of dietary supplementation of rumen-protected conjugated linoleic acid in dairy cows during established lactation. Journal of Dairy Science 85, 26092617.CrossRefGoogle ScholarPubMed
IIPerfield, JW, Saebo, A, Bauman, DE 2004. Use of conjugated linoleic acid (CLA) enrichments to examine the effects of trans-8, cis-10 CLA, and cis-11, trans-13 CLA on milk-fat synthesis. Journal of Dairy Science 87, 11961202.CrossRefGoogle ScholarPubMed
IIPerfield, JW, Delmonte, P, Lock, AL, Yurawecz, MP, Bauman, DE 2006. Trans-10, trans-12 conjugated linoleic acid does not affect milk fat yield but reduces Δ9-desaturase index in dairy cows. Journal of Dairy Science 89, 25592566.CrossRefGoogle Scholar
IIPerfield, JW, Lock, AL, Griinari, JM, Saebo, A, Delmonte, P, Dwyer, DA, Bauman, DE 2007. Trans-9, cis-11 conjugated linoleic acid reduces milk fat synthesis in lactating dairy cows. Journal of Dairy Science 90, 22112218.CrossRefGoogle ScholarPubMed
Peters, JM, Park, Y, Gonzalez, FJ, Pariza, MW 2001. Influence of conjugated linoleic acid on body composition and target gene expression in peroxisome proliferator-activated receptor alpha-null mice. Biochimica et Biophysica Acta 1533, 233242.CrossRefGoogle ScholarPubMed
Peterson, DG, Baumgard, LH, Bauman, DE 2002. Short communication: milk fat response to low doses of tran-10, cis-12 conjugated linoleic acid (CLA). Journal of Dairy Science 85, 17641766.CrossRefGoogle ScholarPubMed
Peterson, DG, Matitashvili, EA, Bauman, DE 2003. Diet-induced milk fat depression in dairy cows results in increased trans-10, cis-12 CLA in milk fat and coordinated suppression of mRNA abundance for mammary enzymes involved in milk fat synthesis. Journal of Nutrition 133, 30983102.CrossRefGoogle ScholarPubMed
Peterson, DG, Matitashvili, EA, Bauman, DE 2004. The inhibitory effect of trans-10, cis-12 CLA on lipid synthesis in bovine mammary epithelial cells involves reduced proteolytic activation of the transcription factor SREBP-1. Journal of Nutrition 134, 25232527.CrossRefGoogle ScholarPubMed
Piperova, LS, Teter, BB, Bruckental, I, Sampugna, J, Mills, SE, Yurawecz, MP, Fritsche, J, Ku, K, Erdman, RA 2000. Mammary lipogenic enzyme activity, trans fatty acids and conjugated linoleic acids are altered in lactating dairy cows fed a milk fat-depressing diet. Journal of Nutrition 130, 25682574.CrossRefGoogle ScholarPubMed
Piperova, LS, Moallem, U, Teter, BB, Sampugna, J, Yurawecz, MP, Morehouse, KM, Luchini, D, Erdman, RA 2004. Changes in milk fat in response to dietary supplementation with calcium salts of trans-18:1 or conjugated linoleic fatty acids in lactating dairy cows. Journal of Dairy Science 87, 38363844.CrossRefGoogle ScholarPubMed
Porstmann, T, Griffiths, B, Chung, YL, Delpuech, O, Griffiths, JR, Downward, J, Schulze, A 2005. PKB/Akt induces transcription of enzymes involved in cholesterol and fatty acid biosynthesis via activation of SREBP. Oncogene 24, 64656481.CrossRefGoogle ScholarPubMed
Pullen, DL, Palmquist, DL, Emery, RS 1989. Effect on days of lactation and methionine hydroxy analog on incorporation of plasma fatty acids into plasma triglycerides. Journal of Dairy Science 72, 4958.CrossRefGoogle ScholarPubMed
Reinhardt, TA, Lippolis, JD 2006. Bovine milk fat globule membrane proteome. Journal of Dairy Research 73, 406416.CrossRefGoogle ScholarPubMed
Ricote, M, Glass, CK 2007. PPARs and molecular mechanisms of transrepression. Biochimica et Biophysica Acta 1771, 926935.CrossRefGoogle ScholarPubMed
Rindsig, RB, Schultz, LH 1974. Effects of abomasal infusions of safflower oil or elaidic acid on blood lipids and milk fat in dairy cows. Journal of Dairy Science 57, 14591466.CrossRefGoogle ScholarPubMed
Romo, GA, Casper, DP, Erdman, RA, Teter, BB 1996. Abomasal infusion of cis or trans fatty acid isomers and energy metabolism of lactating dairy cows. Journal of Dairy Science 79, 20052015.CrossRefGoogle ScholarPubMed
Rudolph M, Marians R, Burns V, Russell T and Neville MC 2005. SREBP1-c plays a regulatory, but not essential role in mammary lipogenesis during lactation. The Endoncrine’s Society 87th Annual Meeting Abstracts, p. 604.Google Scholar
Rudolph, MC, Neville, MC, Anderson, SM 2007. Lipid synthesis in lactation: diet and the fatty acid switch. Journal of Mammary Gland Biology and Neoplasia 12, 269281.CrossRefGoogle ScholarPubMed
Saebo, A, Saebo, PC, Griinari, JM, Shingfield, KJ 2005a. Effect of abomasal infusions of geometric isomers of 10,12 conjugated linoleic acid on milk fat synthesis in dairy cows. Lipids 40, 823832.CrossRefGoogle Scholar
Saebo, A, IIPerfield, JW, Delmonte, P, Yurawecz, MP, Lawrence, P, Brenna, JT, Bauman, DE 2005b. Milk fat synthesis is unaffected by abomasal infusion of the conjugated diene 18:3 isomers cis-6, trans-10, cis-12 and cis-6, trans-8, cis-12. Lipids 40, 8995.CrossRefGoogle Scholar
Salter, AM, Tarling, EJ 2007. Regulation of gene transcription by fatty acids. Animal 1, 13141320.CrossRefGoogle ScholarPubMed
Sampath, H, Ntambi, JM 2005. Polyunsaturated fatty acid regulation of genes of lipid metabolism. Annual Review of Nutrition 25, 317340.CrossRefGoogle ScholarPubMed
Satter, LD, Bringe, AN 1969. Effect of abrupt ration changes on milk and blood components. Journal of Dairy Science 52, 17761780.CrossRefGoogle Scholar
Schwertfeger, KL, McManaman, JL, Palmer, CA, Neville, MC, Anderson, SM 2003. Expression of constitutively activated Akt in the mammary gland leads to excess lipid synthesis during pregnancy and lactation. Journal of Lipid Research 44, 11001112.CrossRefGoogle ScholarPubMed
Selberg, KT, Lowe, AC, Staples, CR, Luchini, ND, Badinga, L 2004. Production and metabolic responses of periparturient Holstein cows to dietary conjugated linoleic acid and trans-octadecenoic acids. Journal of Dairy Science 87, 158168.CrossRefGoogle ScholarPubMed
Selner, DR, Schultz, LH 1980. Effects of feeding oleic acid or hydrogenated vegetable oils to lactating cows. Journal of Dairy Science 63, 12351241.CrossRefGoogle ScholarPubMed
Shingfield, KJ, Griinari, JM 2007. Role of biohydrogenation intermediates in milk fat depression. European Journal of Lipid Science and Technology 109, 799816.CrossRefGoogle Scholar
Shingfield, KJ, Toivonen, V, Vanhatalo, A, Huhtanen, P, Griinari, JM 2006a. Short communication: Indigestible markers reduce the mammary Δ9-desaturase index and alter the milk fatty acid composition in cows. Journal of Dairy Science 89, 30063010.CrossRefGoogle ScholarPubMed
Shingfield, KJ, Reynolds, CK, Hervas, G, Griinari, JM, Grandison, AS, Beever, DE 2006b. Examination of the persistency of milk fatty acid composition responses to fish oil and sunflower oil in the diet of dairy cows. Journal of Dairy Science 89, 714732.CrossRefGoogle ScholarPubMed
Shingfield, KJ, Ahvenjarvi, S, Toivonen, V, Vanhatalo, A, Huhtanen, P 2007. Transfer of absorbed cis-9, trans-11 conjugated linoleic acid into milk is biologically more efficient than endogenous synthesis from absorbed vaccenic acid in lactating cows. Journal of Nutrition 137, 11541160.CrossRefGoogle ScholarPubMed
Shingfield, KJ, Chilliard, Y, Toivonen, V, Kairenius, P, Givens, DI 2008a. Trans fatty acids and bioactive lipids in ruminant milk. Advances in Experimental Medicine and Biology 606, 365.CrossRefGoogle ScholarPubMed
Shingfield, KJ, Arola, A, Ahvenjarvi, S, Vanhatalo, A, Toivonen, V, Griinari, JM, Huhtanen, P 2008b. Ruminal infusion of cobalt-EDTA reduce mammary Δ9-desaturase index and alter milk fatty acid composition in lactating cows. Journal of Nutrition 138, 710717.CrossRefGoogle ScholarPubMed
Storry, JE, Rook, JA, Hall, AJ 1967. The effect of the amount and type of dietary fat on milk fat secretion in the cow. British Journal of Nutrition 21, 425438.CrossRefGoogle ScholarPubMed
Sutton, JD 1989. Altering milk composition by feeding. Journal of Dairy Science 72, 28012814.CrossRefGoogle Scholar
Tan, NS, Michalik, L, Desvergne, B, Wahli, W 2005. Multiple expression control mechanisms of peroxisome proliferator-activated receptors and their target genes. Journal of Steroid Biochemistry and Molecular Biology 93, 99105.CrossRefGoogle ScholarPubMed
Timmen, H, Patton, S 1988. Milk fat globules: fatty acid composition, size and in vivo regulation of fat liquidity. Lipids 23, 685689.CrossRefGoogle ScholarPubMed
Toyama, T, Kudo, N, Mitsumoto, A, Hibino, Y, Tsuda, T, Kawashima, Y 2007. Stearoyl-CoA desaturase activity is elevated by the suppression of its degradation by clofibric acid in the liver of rats. Journal of Pharmacological Science 103, 383390.CrossRefGoogle ScholarPubMed
Tyburczy C, Lock AL, Dwyer DA, Destaillats F, Mouloungui Z, Candy L and Bauman DE 2008. Uptake and utilization of trans octadecenoic acids in lactating dairy cows. Journal of Dairy Science (in press).CrossRefGoogle Scholar
Van Soest, PJ 1994. Nutritional ecology of the ruminant. Comstock Pub., Ithaca.CrossRefGoogle Scholar
Virtanen, AI 1966. Milk production of cows on protein-free feed. Science 153, 16031614.CrossRefGoogle ScholarPubMed
Volpe, JJ, Vagelos, PR 1973. Saturated fatty acid biosynthesis and its regulation. Annual Review of Biochemistry 42, 2160.CrossRefGoogle ScholarPubMed
Volpe, JJ, Marasa, JC 1975. Regulation of hepatic fatty acid synthetase in the obese-hyperglycemic mutant mouse. Biochimica et Biophysica Acta 409, 235248.CrossRefGoogle ScholarPubMed
Wallace, RJ, McKain, N, Shingfield, KJ, Devillard, E 2007. Isomers of conjugated linoleic acids are synthesized via different mechanisms in ruminal digesta and bacteria. Journal of Lipid Research 48, 22472254.CrossRefGoogle ScholarPubMed
Wan, Y, Saghatelian, A, Chong, LW, Zhang, CL, Cravatt, BF, Evans, RM 2007. Maternal PPAR gamma protects nursing neonates by suppressing the production of inflammatory milk. Genes and Development 21, 18951908.CrossRefGoogle ScholarPubMed
Yang, ZZ, Tschopp, O, Baudry, A, Dummler, B, Hynx, D, Hemmings, BA 2004. Physiological functions of protein kinase B/Akt. Biochemical Society Transactions 32, 350354.CrossRefGoogle ScholarPubMed
Yu, Y, Correll, PH, Vanden Heuvel, JP 2002. Conjugated linoleic acid decreases production of pro-inflammatory products in macrophages: evidence for a PPAR gamma-dependent mechanism. Biochimica et Biophysica Acta 1581, 8999.CrossRefGoogle ScholarPubMed
Zhu, Q, Mariash, A, Margosian, MR, Gopinath, S, Fareed, MT, Anderson, GW, Mariash, CN 2001. Spot 14 gene deletion increases hepatic de novo lipogenesis. Endocrinology 142, 43634370.CrossRefGoogle ScholarPubMed
Zhu, Q, Anderson, GW, Mucha, GT, Parks, EJ, Metkowski, JK, Mariash, CN 2005. The Spot 14 protein is required for de novo lipid synthesis in the lactating mammary gland. Endocrinology 146, 33433350.CrossRefGoogle Scholar