Liver BCATm transgenic mouse model reveals the important role of the liver in maintaining BCAA homeostasis

被引:18
作者
Ananieva, Elitsa A. [1 ,3 ]
Van Horn, Cynthia G. [2 ]
Jones, Meghan R. [1 ]
Hutson, Susan M. [1 ]
机构
[1] Virginia Tech, Dept Human Nutr Foods & Exercise, Integrated Life Sci Bldg 0913,1981 Kraft Dr, Blacksburg, VA 24060 USA
[2] Wake Forest Sch Med, Dept Biochem & Mol Biol, Med Ctr Blvd, Winston Salem, NC 27157 USA
[3] Des Moines Univ, Dept Biochem & Nutr, 3200 Grand Ave, Des Moines, IA 50312 USA
基金
美国国家卫生研究院;
关键词
BCATm; BCAA metabolism; Liver transgenic mouse; High-fat diet; Amino acids; BRANCHED-CHAIN AMINO; KETO-ACID DEHYDROGENASE; SKELETAL-MUSCLE; NEUROTRANSMITTER METABOLISM; LEUCINE SUPPLEMENTATION; AMINOTRANSFERASE BCATC; ALPHA-KETOISOCAPROATE; GLUTAMINE SYNTHESIS; AMMONIA METABOLISM; PROTEIN STATUS;
D O I
10.1016/j.jnutbio.2016.10.014
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Unlike other amino acids, the branched-chain amino acids (BCAA5) largely bypass first-pass liver degradation due to a lack of hepatocyte expression of the mitochondrial branched-chain aminotransferase (BCATm). This sets up interorgan shuttling of BCAAs and liver-skeletal muscle cooperation in BCAA catabolism. To explore whether complete liver catabolism of BCAAs may impact BCAA shuttling in peripheral tissues, the BCATm gene was stably introduced into mouse liver. Two transgenic mouse lines with low and high hepatocyte expression of the BCATm transgene (LivTg-LE and LivTg-HE) were created and used to measure liver and plasma amino acid concentrations and determine whether the first two BCAA enzymatic steps in liver, skeletal muscle, heart and kidney were impacted. Expression of the hepatic BCATm transgene lowered the concentrations of hepatic BCAA5 while enhancing the concentrations of some nonessential amino acids. Extrahepatic BCAA metabolic enzymes and plasma amino acids were largely unaffected, and no growth rate or body composition differences were observed in the transgenic animals as compared to wild-type mice. Feeding the transgenic animals a high-fat diet did not reverse the effect of the BCATm transgene on the hepatic BCAA catabolism, nor did the high-fat diet cause elevation in plasma BCAAs. However, the high-fat-diet-fed BCATm transgenic animals experienced attenuation in the mammalian target of rapamycin (mTOR) pathway in the liver and had impaired blood glucose tolerance. These results suggest that complete liver BCAA metabolism influences the regulation of glucose utilization during diet-induced obesity. (C) 2016 Elsevier Inc. All rights reserved.
引用
收藏
页码:132 / 140
页数:9
相关论文
共 63 条
[1]   DISPOSAL OF ALPHA-KETOISOCAPROATE - ROLES OF LIVER, GUT, AND KIDNEYS [J].
ABUMRAD, NN ;
WISE, KL ;
WILLIAMS, PE ;
ABUMRAD, NA ;
LACY, WW .
AMERICAN JOURNAL OF PHYSIOLOGY, 1982, 243 (02) :E123-E131
[2]   Cytosolic Branched Chain Aminotransferase (BCATc) Regulates mTORC1 Signaling and Glycolytic Metabolism in CD4+ T Cells [J].
Ananieva, Elitsa A. ;
Patel, Chirag H. ;
Drake, Charles H. ;
Powell, Jonathan D. ;
Hutson, Susan M. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2014, 289 (27) :18793-18804
[3]   Update on nutritional supplementation with branched-chain amino acids [J].
Bianchi, G ;
Marzocchi, R ;
Agostini, F ;
Marchesini, G .
CURRENT OPINION IN CLINICAL NUTRITION AND METABOLIC CARE, 2005, 8 (01) :83-87
[4]   Amino acid transport across mammalian intestinal and renal epithelia [J].
Broer, Stefan .
PHYSIOLOGICAL REVIEWS, 2008, 88 (01) :249-286
[5]   Lessons from genetic disorders of branched-chain amino acid metabolism [J].
Chuang, DT ;
Chuang, JL ;
Wynn, RM .
JOURNAL OF NUTRITION, 2006, 136 (01) :243S-249S
[6]   Expression of mitochondrial branched-chain aminotransferase and α-keto-acid dehydrogenase in rat brain: implications for neurotransmitter metabolism [J].
Cole, Jeffrey T. ;
Sweatt, Andrew J. ;
Hutson, Susan M. .
FRONTIERS IN NEUROANATOMY, 2012, 6
[7]   Post-prandial regulation of hepatic glucokinase and lipogenesis requires the activation of TORC1 signalling in rainbow trout (Oncorhynchus mykiss) [J].
Dai, Weiwei ;
Panserat, Stephane ;
Mennigen, Jan A. ;
Terrier, Frederic ;
Dias, Karine ;
Seiliez, Iban ;
Skiba-Cassy, Sandrine .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2013, 216 (23) :4483-4492
[8]   Aromatic amino acid metabolism during liver failure [J].
Dejong, Cornelis H. C. ;
van de Poll, Marcel C. G. ;
Soeters, Peter B. ;
Jalan, Rajiv ;
Damink, Steven W. M. Olde .
JOURNAL OF NUTRITION, 2007, 137 (06) :1579S-1585S
[9]   Regulation of branched-chain amino acid metabolism in the lactating rat [J].
DeSantiago, S ;
Torres, N ;
Suryawan, A ;
Tovar, AR ;
Hutson, SM .
JOURNAL OF NUTRITION, 1998, 128 (07) :1165-1171
[10]   Effects of leucine supplementation on the body composition and protein status of rats submitted to food restriction [J].
Donato, J ;
Pedrosa, RG ;
Cruzat, VF ;
Pires, ISD ;
Tirapegui, J .
NUTRITION, 2006, 22 (05) :520-527