Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Richter, M.
Svobodová, J.
Křížová, L.
Třináctý, J.
and
Homolka, P.
2010.
Effect of duodenal infusions of leucine on milk yield and plasma amino acids in dairy cows.
Czech Journal of Animal Science,
Vol. 55,
Issue. 9,
p.
351.
Swanepoel, N.
Robinson, P.H.
and
Erasmus, L.J.
2010.
Amino acid needs of lactating dairy cows: Impact of feeding lysine in a ruminally protected form on productivity of lactating dairy cows.
Animal Feed Science and Technology,
Vol. 157,
Issue. 1-2,
p.
79.
Appuhamy, J.A.D.R.N.
Knapp, J.R.
Becvar, O.
Escobar, J.
and
Hanigan, M.D.
2011.
Effects of jugular-infused lysine, methionine, and branched-chain amino acids on milk protein synthesis in high-producing dairy cows.
Journal of Dairy Science,
Vol. 94,
Issue. 4,
p.
1952.
Haque, M.N.
Rulquin, H.
and
Lemosquet, S.
2013.
Milk protein responses in dairy cows to changes in postruminal supplies of arginine, isoleucine, and valine.
Journal of Dairy Science,
Vol. 96,
Issue. 1,
p.
420.
Swanepoel, N.
Robinson, P.H.
and
Erasmus, L.J.
2014.
Determining the optimal ratio of canola meal and high protein dried distillers grain protein in diets of high producing Holstein dairy cows.
Animal Feed Science and Technology,
Vol. 189,
Issue. ,
p.
41.
Kokkonen, Tuomo
2014.
Investigation of sources of variation in the effect of prepartum protein supplementation on early lactation performance of dairy cows.
Livestock Science,
Vol. 163,
Issue. ,
p.
41.
Arriola Apelo, S.I.
Bell, A.L.
Estes, K.
Ropelewski, J.
de Veth, M.J.
and
Hanigan, M.D.
2014.
Effects of reduced dietary protein and supplemental rumen-protected essential amino acids on the nitrogen efficiency of dairy cows.
Journal of Dairy Science,
Vol. 97,
Issue. 9,
p.
5688.
Arriola Apelo, S.I.
Singer, L.M.
Ray, W.K.
Helm, R.F.
Lin, X.Y.
McGilliard, M.L.
St-Pierre, N.R.
and
Hanigan, M.D.
2014.
Casein synthesis is independently and additively related to individual essential amino acid supply.
Journal of Dairy Science,
Vol. 97,
Issue. 5,
p.
2998.
Swanepoel, N.
Robinson, P.H.
and
Erasmus, L.J.
2015.
Effects of ruminally protected methionine and/or phenylalanine on performance of high producing Holstein cows fed rations with very high levels of canola meal.
Animal Feed Science and Technology,
Vol. 205,
Issue. ,
p.
10.
Doelman, J.
Curtis, R.V.
Carson, M.
Kim, J.J.M.
Metcalf, J.A.
and
Cant, J.P.
2015.
Essential amino acid infusions stimulate mammary expression of eukaryotic initiation factor 2Bε but milk protein yield is not increased during an imbalance.
Journal of Dairy Science,
Vol. 98,
Issue. 7,
p.
4499.
Doelman, John
Kim, Julie J.M.
Carson, Michelle
Metcalf, John A.
and
Cant, John P.
2015.
Branched-chain amino acid and lysine deficiencies exert different effects on mammary translational regulation.
Journal of Dairy Science,
Vol. 98,
Issue. 11,
p.
7846.
Liu, K.
Liu, Y.
Liu, S.M.
Xu, M.
Yu, Z.P.
Wang, X.
Cao, Y.C.
and
Yao, J.H.
2015.
Relationships between leucine and the pancreatic exocrine function for improving starch digestibility in ruminants.
Journal of Dairy Science,
Vol. 98,
Issue. 4,
p.
2576.
Rezaei, Reza
Wu, Zhenlong
Hou, Yongqing
Bazer, Fuller W.
and
Wu, Guoyao
2016.
Amino acids and mammary gland development: nutritional implications for milk production and neonatal growth.
Journal of Animal Science and Biotechnology,
Vol. 7,
Issue. 1,
Giallongo, F.
Harper, M.T.
Oh, J.
Lopes, J.C.
Lapierre, H.
Patton, R.A.
Parys, C.
Shinzato, I.
and
Hristov, A.N.
2016.
Effects of rumen-protected methionine, lysine, and histidine on lactation performance of dairy cows.
Journal of Dairy Science,
Vol. 99,
Issue. 6,
p.
4437.
Kassube, K.R.
Kaufman, J.D.
Pohler, K.G.
McFadden, J.W.
and
Ríus, A.G.
2017.
Jugular-infused methionine, lysine and branched-chain amino acids does not improve milk production in Holstein cows experiencing heat stress.
Animal,
Vol. 11,
Issue. 12,
p.
2220.
Wang, YanHong
Liu, JunQiang
Wu, Hui
Fang, XingTang
Chen, Hong
and
Zhang, ChunLei
2017.
Amino acids regulate mTOR pathway and milk protein synthesis in a mouse mammary epithelial cell line is partly mediated by T1R1/T1R3.
European Journal of Nutrition,
Vol. 56,
Issue. 8,
p.
2467.
Gao, H.N.
Zhao, S.G.
Zheng, N.
Zhang, Y.D.
Wang, S.S.
Zhou, X.Q.
and
Wang, J.Q.
2017.
Combination of histidine, lysine, methionine, and leucine promotes β-casein synthesis via the mechanistic target of rapamycin signaling pathway in bovine mammary epithelial cells.
Journal of Dairy Science,
Vol. 100,
Issue. 9,
p.
7696.
Sadri, Hassan
von Soosten, Dirk
Meyer, Ulrich
Kluess, Jeannette
Dänicke, Sven
Saremi, Behnam
Sauerwein, Helga
and
Fürnsinn, Clemens
2017.
Plasma amino acids and metabolic profiling of dairy cows in response to a bolus duodenal infusion of leucine.
PLOS ONE,
Vol. 12,
Issue. 4,
p.
e0176647.
Liu, Junqiang
Wang, Yanhong
Li, Dewei
Wang, Yanhuan
Li, Menglu
Chen, Caifa
Fang, Xingtang
Chen, Hong
and
Zhang, Chunlei
2017.
Milk protein synthesis is regulated by T1R1/T1R3, a G protein-coupled taste receptor, through the mTOR pathway in the mouse mammary gland.
Molecular Nutrition & Food Research,
Vol. 61,
Issue. 9,
p.
1601017.
Tian, W.
Wang, H. R.
Wu, T. Y.
Ding, L. Y.
Zhao, R.
Khas, E.
Wang, C. F.
Zhang, F. Q.
Mi, F. Y.
Wang, L.
and
Ning, L. T.
2017.
Milk protein responses to balanced amino acid and removal ofLeucine andArginine supplied from jugular‐infused amino acid mixture in lactating dairy cows.
Journal of Animal Physiology and Animal Nutrition,
Vol. 101,
Issue. 5,