Glucose supplementation stimulates peripheral branched-chain amino acid catabolism in lactating dairy cows during essential amino acid infusions

被引:46
|
作者
Nichols, K. [1 ]
Kim, J. J. M. [1 ]
Carson, M. [2 ]
Metcalf, J. A. [2 ]
Cant, J. P. [1 ]
Doelman, J. [2 ]
机构
[1] Univ Guelph, Dept Anim Biosci, Guelph, ON N1G 2W1, Canada
[2] Trouw Nutr Agres Canada, Guelph, ON N1G 4T2, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
amino acid; glucose; protein synthesis; mammary; muscle; MILK PROTEIN-SYNTHESIS; GRADED DUODENAL INFUSIONS; MAMMARY-GLAND; GRASS-SILAGE; WHOLE-BODY; ADIPOSE-TISSUE; METABOLIZABLE PROTEIN; INSULIN SENSITIVITY; LEUCINE METABOLISM; GENE-EXPRESSION;
D O I
10.3168/jds.2015-9912
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
To determine how glucose modulates protein synthesis when essential AA are in abundant supply, 5 early-lactation, rumen-fistulated Holstein dairy cows were fed a diet containing 6.95 MJ/kg of net energy for lactation and 12.4% crude protein and abomasally infused for 5 d with saline, 844 or 1,126 g/d of a complete essential AA mix, with and without the inclusion of 1,000 g/d of glucose, in a 5 x 5 Latin square design. Infusion of essential AA increased milk yield by 4.1 kg/d, milk protein by 256 g/d, milk fat by 95 g/d, and milk urea nitrogen by 70% compared with saline, with no differences between the level of essential AA infusion. The addition of glucose to essential AA infusate did not stimulate milk protein yield or concentration, but reduced milk urea nitrogen by 17% and decreased milk fat yield. Arterial concentrations of total essential AA increased 3- to 4-fold, mammary clearance decreased 61%, and mammary uptake of essential AA increased 65% in response to essential AA infusion. Arterial branched-chain AA concentrations declined 29% in response to glucose and mammary clearance increased 48%, but mammary AA uptake was unchanged. Essential AA infusion increased plasma 3-methylhistidine by 50% and reduced muscle branched-chain alpha-keto acid dehydrogenase kinase abundance by 14%, indicating stimulation of muscle protein turnover and branched-chain AA catabolism, respectively. Glucose had no further effect on muscle branched-chain alpha-keto acid dehydrogenase kinase abundance but decreased mRNA expression of branched chain aminotransferase 1. Lack of further increases in plasma 3-methylhistidine or greater stimulation of muscle branched-chain AA catabolism indicates that muscle protein degradation was unchanged with glucose but that accretion may have been stimulated. The decrease in circulating branched-chain AA concentrations and nitrogen excretion in response to glucose suggests that surplus essential AA were redirected to peripheral, extra-mammary tissues.
引用
收藏
页码:1145 / 1160
页数:16
相关论文
共 50 条
  • [41] Regulation of branched-chain amino acid catabolism: glucose limitation enhances the component of isovalerylspiramycin for the bitespiramycin production
    Yong-Hong Wang
    Chun-Hai Wu
    Ju Chu
    Yu-You Hao
    Ying-Ping Zhuang
    Si-Liang Zhang
    Bioprocess and Biosystems Engineering, 2010, 33 : 257 - 265
  • [42] Regulation of branched-chain amino acid (BCAA) catabolism in the pig small intestine
    Elango, R
    Pink, D
    Dixon, WT
    Pencharz, PB
    Ball, R
    FASEB JOURNAL, 2004, 18 (04): : A546 - A547
  • [43] INFLUENCE OF BRANCHED-CHAIN AMINO-ACID INFUSIONS ON WOUND-HEALING
    MCCAULEY, R
    PLATELL, C
    HALL, J
    MCCULLOCH, R
    AUSTRALIAN AND NEW ZEALAND JOURNAL OF SURGERY, 1990, 60 (06): : 471 - 473
  • [44] EFFECT OF BRANCHED-CHAIN AMINO-ACID SUPPLEMENTATION ON MENTAL PERFORMANCE
    BLOMSTRAND, E
    HASSMEN, P
    NEWSHOLME, EA
    ACTA PHYSIOLOGICA SCANDINAVICA, 1991, 143 (02): : 225 - 226
  • [45] METABOLIC AND REGULATORY EFFECTS OF BRANCHED-CHAIN AMINO-ACID SUPPLEMENTATION
    LAL, H
    CHUGH, K
    NUTRITION RESEARCH, 1995, 15 (11) : 1717 - 1733
  • [46] Branched-Chain Amino Acid Catabolism Impacts Triacylglycerol Homeostasis in Chlamydomonas reinhardtii
    Liang, Yuanxue
    Kong, Fantao
    Torres-Romero, Ismael
    Burlacot, Adrien
    Cuine, Stephan
    Legeret, Bertrand
    Billon, Emmanuelle
    Brotman, Yariv
    Alseekh, Saleh
    Fernie, Alisdair R.
    Beisson, Fred
    Peltier, Gilles
    Li-Beisson, Yonghua
    PLANT PHYSIOLOGY, 2019, 179 (04) : 1502 - 1514
  • [47] Regulation of branched-chain amino acid metabolism and pharmacological effects of branched-chain amino acids
    Shimomura, Y
    Murakami, T
    Nagasaki, M
    Honda, T
    Goto, H
    Kotake, K
    Kurokawa, T
    Nonami, T
    HEPATOLOGY RESEARCH, 2004, 30 : S3 - S8
  • [48] Impact of Branched-Chain Amino Acid Catabolism on Fatty Acid and Alkene Biosynthesis in Micrococcus luteus
    Surger, Maximilian J.
    Angelov, Angel
    Stier, Philipp
    Uebelacker, Maria
    Liebl, Wolfgang
    FRONTIERS IN MICROBIOLOGY, 2018, 9
  • [49] Regulation of branched-chain amino acid catabolism:: Interaction between branched-chain α-keto acid dehydrogenase (BCKDH) complex and BCKDH kinase
    Shimomura, Y
    Matsuo, Y
    Murakami, T
    FASEB JOURNAL, 2004, 18 (04): : A546 - A546
  • [50] Regulation of branched-chain amino acid catabolism:: nutritional and hormonal regulation of activity and expression of the branched-chain α-keto acid dehydrogenase kinase
    Shimomura, Y
    Obayashi, M
    Murakami, T
    Harris, RA
    CURRENT OPINION IN CLINICAL NUTRITION AND METABOLIC CARE, 2001, 4 (05): : 419 - 423