Hepatic glucose and lipid metabolism

被引:234
作者
Jones, John G. [1 ,2 ]
机构
[1] UC Biotech, Ctr Neurosci & Cell Biol Coimbra, Metab Control Grp, Biocant Pk, P-3060197 Cantanhede, Portugal
[2] APDP Diabet Portugal Educ & Res Ctr APDP ERC, Lisbon, Portugal
关键词
Anaplerosis; De novo lipogenesis; Deuterated water; C-13 Isotopomer analysis; Krebs cycle; Magnetic resonance spectroscopy; Pyruvate cycling; Review; DE-NOVO LIPOGENESIS; FATTY-ACID-METABOLISM; C-13 NMR MEASUREMENTS; TCA CYCLE FLUX; IN-VIVO; TRIGLYCERIDE SYNTHESIS; GLYCOGEN-SYNTHESIS; LIVER-DISEASE; GLUCONEOGENESIS; PATHWAYS;
D O I
10.1007/s00125-016-3940-5
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The liver has a central role in the regulation of systemic glucose and lipid fluxes during feeding and fasting and also relies on these substrates for its own energy needs. These parallel requirements are met by coordinated control of carbohydrate and lipid fluxes into and out of the Krebs cycle, which is highly tuned to nutrient availability and heavily regulated by insulin and glucagon. During progression of type 2 diabetes, hepatic carbohydrate and lipid biosynthesis fluxes become elevated, thus contributing to hyperglycaemia and hypertriacylglycerolaemia. Over this interval there are also significant fluctuations in hepatic energy state. To date, it is not known to what extent abnormal glucose and lipid fluxes are causally linked to altered energy states. Recent evidence that the glucose-lowering effects of metformin appear to be mediated by attenuation of hepatic energy generation places an additional spotlight on the interdependence of hepatic bio-synthetic and oxidative fluxes. The transition from fasting to feeding results in a significant re-direction of hepatic glucose and lipid fluxes and may also incur a temporary hepatic energy deficit. At present, it is not known to what extent these variables are additionally modified by type 2 diabetes and/or non-alcoholic fatty liver disease. Thus, there is a compelling need to measure fluxes through oxidative, gluconeogenic and lipogenic pathways and determine their relationship with hepatic energy state in both fasting and fed conditions. New magnetic resonance-based technologies allow these variables to be non-invasively studied in animal models and humans. This review summarises a presentation given at the symposium entitled 'The liver in focus' at the 2015 annual meeting of the EASD. It is accompanied by two other reviews on topics from this symposium (by Kenneth Cusi, DOI: 10.1007/s00125-016-3952-1, and by Hannele Yki-Jarvinen, DOI: 10.1007/s00125-016-3944-1) and a commentary by the Session Chair, Michael Roden (DOI: 10.1007/s00125-016-3911-x).
引用
收藏
页码:1098 / 1103
页数:6
相关论文
共 50 条
[1]   Regulation of Hepatic Fat and Glucose Oxidation in Rats with Lipid-Induced Hepatic Insulin Resistance [J].
Alves, Tiago C. ;
Befroy, Douglas E. ;
Kibbey, Richard G. ;
Kahn, Mario ;
Codella, Roberto ;
Carvalho, Rui A. ;
Petersen, Kitt Falk ;
Shulman, Gerald I. .
HEPATOLOGY, 2011, 53 (04) :1175-1181
[2]   Direct assessment of hepatic mitochondrial oxidative and anaplerotic fluxes in humans using dynamic 13C magnetic resonance spectroscopy [J].
Befroy, Douglas E. ;
Perry, Rachel J. ;
Jain, Nimit ;
Dufour, Sylvie ;
Cline, Gary W. ;
Trimmer, Jeff K. ;
Brosnan, Julia ;
Rothman, Douglas L. ;
Petersen, Kitt Falk ;
Shulman, Gerald I. .
NATURE MEDICINE, 2014, 20 (01) :98-+
[3]   Effects of metformin and other biguanides on oxidative phosphorylation in mitochondria [J].
Bridges, Hannah R. ;
Jones, Andrew J. Y. ;
Pollak, Michael N. ;
Hirst, Judy .
BIOCHEMICAL JOURNAL, 2014, 462 :475-487
[4]   Effect of murine strain on metabolic pathways of glucose production after brief or prolonged fasting [J].
Burgess, SC ;
Jeffrey, FMH ;
Storey, C ;
Milde, A ;
Hausler, N ;
Merritt, ME ;
Mulder, H ;
Holm, C ;
Sherry, AD ;
Malloy, CR .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2005, 289 (01) :E53-E61
[5]   Microbiota-Generated Metabolites Promote Metabolic Benefits via Gut-Brain Neural Circuits [J].
De Vadder, Filipe ;
Kovatcheva-Datchary, Petia ;
Goncalves, Daisy ;
Vinera, Jennifer ;
Zitoun, Carine ;
Duchampt, Adeline ;
Backhed, Fredrik ;
Mithieux, Gilles .
CELL, 2014, 156 (1-2) :84-96
[6]   Sources of hepatic triglyceride accumulation during high-fat feeding in the healthy rat [J].
Delgado, T. C. ;
Pinheiro, D. ;
Caldeira, M. ;
Castro, M. M. C. A. ;
Geraldes, C. F. G. C. ;
Lopez-Larrubia, P. ;
Cerdan, S. ;
Jones, J. G. .
NMR IN BIOMEDICINE, 2009, 22 (03) :310-317
[7]   2H enrichment distribution of hepatic glycogen from 2H2O reveals the contribution of dietary fructose to glycogen synthesis [J].
Delgado, Teresa C. ;
Martins, Fatima O. ;
Carvalho, Filipa ;
Goncalves, Ana ;
Scott, Donald K. ;
O'Doherty, Robert ;
Paula Macedo, M. ;
Jones, John G. .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2013, 304 (04) :E384-E391
[8]   Resolving the Sources of Plasma Glucose Excursions following a Glucose Tolerance Test in the Rat with Deuterated Water and [U-13C]Glucose [J].
Delgado, Teresa C. ;
Barosa, Cristina ;
Nunes, Patricia M. ;
Cerdan, Sebastian ;
Geraldes, Carlos F. G. C. ;
Jones, John G. .
PLOS ONE, 2012, 7 (03)
[9]   Non-invasive tracing of liver intermediary metabolism in normal subjects and in moderately hyperglycaemic NIDDM subjects. Evidence against increased gluconeogenesis and hepatic fatty acid oxidation in NIDDM [J].
Diraison, F ;
Large, V ;
Brunengraber, H ;
Beylot, M .
DIABETOLOGIA, 1998, 41 (02) :212-220
[10]  
Diraison F, 1997, J MASS SPECTROM, V32, P81, DOI 10.1002/(SICI)1096-9888(199701)32:1<81::AID-JMS454>3.0.CO