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Improved Milk Glutamine Level and Growth Performance of Suckling Piglets by Glutamine Supplementation in Maternal Diet


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Aquino R.S., Dutra W.M., Manso H.E.C.C., Manso Filho H.C., Kutschenko M., Nogueira E.T., Watford M. (2014). Glutamine and glutamate (Amino Gut) supplementation influences sow colostrum and mature milk composition. Livest. Sci., 169: 112-117. Search in Google Scholar

Arnaud A., Ramirez M., Baxter J.H., Angulo A.J. (2004). Absorption of enterally administered N-acetyl-l-glutamine versus glutamine in pigs. Clin. Nutr., 23: 1303-1312. Search in Google Scholar

Boza J.J., Moennoz D., Bournot C.E., Blum S., Zbinden I., Finot P.A., Ballevre O. (2000). Role of glutamine on the de novo purine nucleotide synthesis in Caco-2 cells. Europ. J. Nutr., 39: 38-46. Search in Google Scholar

Boza J.J., Turini M., Moennoz D., Montigon F., Vuichoud J., Gueissaz N., Grem - aud G., Pouteau E., Piguet-Welsch C., Finot P.A., Ballèvre O. (2001). Effect of glutamine supplementation of the diet on tissue protein synthesis rate of glucocorticoid-treated rats. Nutrition, 17: 35-40. Search in Google Scholar

Broer S. (2008). Amino acid transport across mammalian intestinal and renal epithelia. Physiol. Rev., 88: 249-286. Search in Google Scholar

Cabrera R.A., Usry J.L., Arrellano C., Nogueira E.T., Kutschenko M., Moeser A.J., Odle J. (2013). Effects of creep feeding and supplemental glutamine or glutamine plus glutamate (Aminogut) on pre- and post-weaning growth performance and intestinal health of piglets. J. Anim. Sci. Biotechnol., 4: 29. Search in Google Scholar

Clowes E.J., Aherne F.X., Baracos V.E. (2005). Skeletal muscle protein mobilization during the progression of lactation. Am. J. Physiol. Endocrin. Metab., 288: E564-E572. Search in Google Scholar

Hankard R.G., Darmaun D., Sager B.K., D’ Amore D., Parsons W.R., Haymond M. (1995). Response of glutamine metabolism to exogenous glutamine in humans. Am. J. Physiol., 269: E663-670. Search in Google Scholar

Haynes T.E., Li P., Li X., Shimotori K., Sato H., Flynn N.E., Wang J., Knabe D.A., Wu G. (2009). L-glutamine or L-alanyl-L-glutamine prevents oxidant- or endotoxin-induced death of neonatal enterocytes. Amino Acids, 37: 131-142. Search in Google Scholar

Hulsewe K.W.,vander Hulst R.W.,van Acker B.A.,von Meyenfeldt M.F., Soeters P.B. (2004). Inflammation rather than nutritional depletion determines glutamine concentrations and intestinal permeability. Clin. Nutr., 23: 1209-1216. Search in Google Scholar

Kreider M.E., Stumvoll M., Meyer C., Overkamp D., Welle S., Gerich J. (1997). Steady-state and non-steady-state measurements of plasma glutamine turnover in humans. Am. J. Physiol., 272: E621-627. Search in Google Scholar

Lacey J.M., Wilmore D.W. (1990). Is glutamineaconditionally essential amino acid? Nutr. Rev., 48: 297-309. Search in Google Scholar

Li N., Liboni K., Fang M.Z., Samuelson D., Lewis P., Patel R., Neu J. (2004). Glutamine decreases lipopolysaccharide-induced intestinal inflammation in infant rats. Am. J. Physiol. Gastr. L., 286: G914-921. Search in Google Scholar

Lynch A.M., Mc Givan J.D. (1987). Evidence forasingle common Na+-dependent transport system for alanine, glutamine, leucine and phenylalanine in brush-border membrane vesicles from bovine kidney. Biochim. Biophys. Acta, 899: 176-184. Search in Google Scholar

Manso H., Filho H., Carvalho L., Kutschenko M., Nogueira E., Watford M. (2012). Glutamine and glutamate supplementation raise milk glutamine concentrations in lactating gilts. J. Anim. Sci. Biotechnol., 3: 2. Search in Google Scholar

Nabuurs M.J.A., Hoogendoorn A.,vander Molen E.J.,van Osta A.L.M. (1993). Villus height and crypt depth in weaned and unweaned pigs, reared under various circumstances in the Netherlands. Res. Vet. Sci., 55: 78-84. Search in Google Scholar

National Research Council (US) Subcommittee on Swine Nutrition (1998). Nutrient requirements of swine. National Academy Press, Washington. Search in Google Scholar

Pacitti A.J., Inoue Y., Souba W.W. (1993). Characterization of Na(+)-independent glutamine transport in rat liver. Am. J. Physiol., 265: G90-98. Search in Google Scholar

Reeds P.J., Burrin D.G. (2001). Glutamine and the bowel. J. Nutr., 131: 2505S-2508S. Search in Google Scholar

Remillard R.L., Guerino F., Dudgeon D.L., Yardley J.H. (1998). Intravenous glutamine or limited enteral feedings in piglets: amelioration of small intestinal disuse atrophy. J. Nutr., 128: 2723S-2726S. Search in Google Scholar

Souba W.W., Wilmore D.W. (1985). Gut-liver interaction during accelerated gluconeogenesis. Arch. Surg., 120: 66-70. Search in Google Scholar

Squires E.J., Brosnan J.T. (1983). Measurements of the turnover rate of glutamine in normal and acidotic rats. Biochem. J., 210: 277-280. Search in Google Scholar

Stumvoll M., Perriello G., Meyer C., Gerich J. (1999). Role of glutamine in human carbohydrate metabolism in kidney and other tissues. Kidney Int., 55: 778-792. Search in Google Scholar

Wang J., Chen L., Li P., Li X., Zhou H., Wang F., Li D., Yin Y., Wu G. (2008). Gene expression is altered in piglet small intestine by weaning and dietary glutamine supplementation. J. Nutr., 138: 1025-1032. Search in Google Scholar

Watford M. (1994). Glutamine metabolism in rat small intestine: synthesis of three-carbon products in isolated enterocytes. Biochim. Biophys. Acta, 1200: 73-78. Search in Google Scholar

Wilde S.W., Kilberg M.S. (1991). Glutamine transport by basolateral plasma-membrane vesicles prepared from rabbit intestine. Biochem. J., 277: 687-691. Search in Google Scholar

Wu G., Knabe D.A. (1994). Free and protein-bound amino acids in sow’s colostrum and milk. J. Nutr., 124: 415-424. Search in Google Scholar

Wu G., Borbolla A.G., Knabe D.A. (1994). The uptake of glutamine and release of arginine, citrulline and proline by the small intestine of developing pigs. J. Nutr., 124: 2437-2444. Search in Google Scholar

Wu G., Meier S.A., Knabe D.A. (1996). Dietary glutamine supplementation prevents jejunal atrophy in weaned pigs. J. Nutr., 126: 2578-2584. Search in Google Scholar

Wu G., Davis P.K., Flynn N.E., Knabe D.A., Davidson J.T. (1997). Endogenous synthesis of arginine plays an important role in maintaining arginine homeostasis in postweaning growing pigs. J. Nutr., 127: 2342-2349. Search in Google Scholar

Wu G., Bazer F.W., Johnson G.A., Knabe D.A., Burghardt R.C., Spencer T.E., Li X.L., Wang J.J. (2010). Important roles for L-glutamine in swine nutrition and production. J. Anim. Sci., 89: 2017-2030. Search in Google Scholar

Wu G., Wu Z., Dai Z., Yang Y., Wang W., Liu C., Wang B., Wang J., Yin Y. (2013). Dietary requirements of“nutritionally non-essential amino acids”by animals and humans. Amino Acids, 44: 1107-1113. Search in Google Scholar

Wu M., Xiao H., Liu G., Chen S., Tan B., Ren W., Bazer F.W., Wu G., Yin Y. (2016). Glutamine promotes intestinal SIg Asecretion through intestinal microbiota and IL-13. Mol. Nutr. Food Res., 60: 1637-1648. Search in Google Scholar

Wu G.Y., Bazer F.W., Davis T.A., Jaeger L.A., Johnson G.A., Kim S.W., Knabe D.A., Meininger C.J., Spencer T.E., Yin Y.L. (2007). Important roles for the arginine family of amino acids in swine nutrition and production. Livest. Sci., 112: 8-22. Search in Google Scholar

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