Successful adaptation to ketosis by mice with tissue-specific deficiency of ketone body oxidation

被引:48
作者
Cotter, David G. [1 ,2 ]
Schugar, Rebecca C. [1 ]
Wentz, Anna E. [1 ]
d'Avignon, D. Andre [3 ]
Crawford, Peter A. [1 ,4 ]
机构
[1] Washington Univ, Ctr Cardiovasc Res, Dept Med, St Louis, MO 63110 USA
[2] Washington Univ, Dept Pediat, St Louis, MO 63110 USA
[3] Washington Univ, Dept Chem, St Louis, MO 63110 USA
[4] Washington Univ, Dept Genet, St Louis, MO 63110 USA
来源
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM | 2013年 / 304卷 / 04期
基金
美国国家卫生研究院;
关键词
coenzyme A transferase; glucose homeostasis; ketone body metabolism; mouse models of ketolytic deficiency; FATTY-ACID OXIDATION; COA-TRANSFERASE DEFICIENCY; MITOCHONDRIAL 3-HYDROXY-3-METHYLGLUTARYL-COA SYNTHASE; DIET-INDUCED OBESITY; SUCCINYL-COA; RAT-HEART; BETA-HYDROXYBUTYRATE; KETOGENIC DIET; ADULT CARDIOMYOCYTES; MAMMALIAN-TISSUES;
D O I
10.1152/ajpendo.00547.2012
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Cotter DG, Schugar RC, Wentz AE, d'Avignon DA, Crawford PA. Successful adaptation to ketosis by mice with tissue-specific deficiency of ketone body oxidation. Am J Physiol Endocrinol Metab 304: E363-E374, 2013. First published December 11, 2012; doi:10.1152/ajpendo.00547.2012.-During states of low carbohydrate intake, mammalian ketone body metabolism transfers energy substrates originally derived from fatty acyl chains within the liver to extrahepatic organs. We previously demonstrated that the mitochondrial enzyme coenzyme A (CoA) transferase [succinyl-CoA:3-oxoacid CoA transferase (SCOT), encoded by nuclear Oxct1] is required for oxidation of ketone bodies and that germline SCOT-knockout (KO) mice die within 48 h of birth because of hyperketonemic hypoglycemia. Here, we use novel transgenic and tissue-specific SCOT-KO mice to demonstrate that ketone bodies do not serve an obligate energetic role within highly ketolytic tissues during the ketogenic neonatal period or during starvation in the adult. Although transgene-mediated restoration of myocardial CoA transferase in germline SCOT-KO mice is insufficient to prevent lethal hyperketonemic hypoglycemia in the neonatal period, mice lacking CoA transferase selectively within neurons, cardiomyocytes, or skeletal myocytes are all viable as neonates. Like germline SCOT-KO neonatal mice, neonatal mice with neuronal CoA transferase deficiency exhibit increased cerebral glycolysis and glucose oxidation, and, while these neonatal mice exhibit modest hyperketonemia, they do not develop hypoglycemia. As adults, tissue-specific SCOT-KO mice tolerate starvation, exhibiting only modestly increased hyperketonemia. Finally, metabolic analysis of adult germline Oxct1(+/-) mice demonstrates that global diminution of ketone body oxidation yields hyperketonemia, but hypoglycemia emerges only during a protracted state of low carbohydrate intake. Together, these data suggest that, at the tissue level, ketone bodies are not a required energy substrate in the newborn period or during starvation, but rather that integrated ketone body metabolism mediates adaptation to ketogenic nutrient states.
引用
收藏
页码:E363 / E374
页数:12
相关论文
共 72 条
[1]   Gene recombination in postmitotic cells - Targeted expression of cre recombinase provokes cardiac-restricted, site-specific rearrangement in adult ventricular muscle in vivo [J].
Agah, R ;
Frenkel, PA ;
French, BA ;
Michael, LH ;
Overbeek, PA ;
Schneider, MD .
JOURNAL OF CLINICAL INVESTIGATION, 1997, 100 (01) :169-179
[2]   Genetic basis of mitochondrial HMG-CoA synthase deficiency [J].
Aledo, R ;
Zschocke, J ;
Pié, J ;
Mir, C ;
Fiesel, S ;
Mayatepek, E ;
Hoffmann, GF ;
Casals, N ;
Hegardt, FG .
HUMAN GENETICS, 2001, 109 (01) :19-23
[3]  
Badman MK, 2007, CELL METAB, V5, P426, DOI 10.1016/j.cmet.2007.05.002
[4]   Fibroblast Growth Factor 21-Deficient Mice Demonstrate Impaired Adaptation to Ketosis [J].
Badman, Michael K. ;
Koester, Anja ;
Flier, Jeffrey S. ;
Kharitonenkov, Alexei ;
Maratos-Flier, Eleftheria .
ENDOCRINOLOGY, 2009, 150 (11) :4931-4940
[5]   A very low carbohydrate ketogenic diet improves glucose tolerance in ob/ob mice independently of weight loss [J].
Badman, Michael K. ;
Kennedy, Adam R. ;
Adams, Andrew C. ;
Pissios, Pavlos ;
Maratos-Flier, Eleftheria .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2009, 297 (05) :E1197-E1204
[6]   KETONE-BODY PRODUCTION AND DISPOSAL - EFFECTS OF FASTING, DIABETES, AND EXERCISE [J].
BALASSE, EO ;
FERY, F .
DIABETES-METABOLISM REVIEWS, 1989, 5 (03) :247-270
[7]   Neonatal hypoglycaemia in severe succinyl-CoA:3-oxoacid CoA-transferase deficiency [J].
Berry, GT ;
Fukao, T ;
Mitchell, GA ;
Mazur, A ;
Ciafre, M ;
Gibson, J ;
Kondo, N ;
Palmieri, MJ .
JOURNAL OF INHERITED METABOLIC DISEASE, 2001, 24 (05) :587-595
[8]  
BING RJ, 1954, HARVEY LECT, V50, P27
[9]   KETONE-BODY TRANSPORT IN THE HUMAN NEONATE AND INFANT [J].
BOUGNERES, PF ;
LEMMEL, C ;
FERRE, P ;
BIER, DM .
JOURNAL OF CLINICAL INVESTIGATION, 1986, 77 (01) :42-48
[10]   HUMAN MITOCHONDRIAL HMG COA SYNTHASE - LIVER CDNA AND PARTIAL GENOMIC CLONING, CHROMOSOME MAPPING TO 1P12-P13, AND POSSIBLE ROLE IN VERTEBRATE EVOLUTION [J].
BOUKAFTANE, Y ;
DUNCAN, A ;
WANG, SP ;
LABUDA, D ;
ROBERT, MF ;
SARRAZIN, J ;
SCHAPPERT, K ;
MITCHELL, GA .
GENOMICS, 1994, 23 (03) :552-559