The regulation of hepatic fatty acid synthesis and partitioning: the effect of nutritional state

被引:0
作者
Leanne Hodson
Pippa J. Gunn
机构
[1] University of Oxford,Oxford Centre for Diabetes, Endocrinology and Metabolism, Radcliffe Department of Medicine
[2] Churchill Hospital,Oxford NIHR Biomedical Research Centre
来源
Nature Reviews Endocrinology | 2019年 / 15卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Nonalcoholic fatty liver disease (NAFLD) is an increasing global public health burden. NAFLD is strongly associated with type 2 diabetes mellitus, obesity and cardiovascular disease and begins with intrahepatic triacylglycerol accumulation. Under healthy conditions, the liver regulates lipid metabolism to meet systemic energy needs in the fed and fasted states. The processes of fatty acid uptake, fatty acid synthesis and the intracellular partitioning of fatty acids into storage, oxidation and secretion pathways are tightly regulated. When one or more of these processes becomes dysregulated, excess lipid accumulation can occur. Although genetic and environmental factors have been implicated in the development of NAFLD, it remains unclear why an imbalance in these pathways begins. The regulation of fatty acid partitioning occurs at several points, including during triacylglycerol synthesis, lipid droplet formation and lipolysis. These processes are influenced by enzyme function, intake of dietary fats and sugars and whole-body metabolism, and are further affected by the presence of obesity or insulin resistance. Insight into how the liver controls fatty acid metabolism in health and how these processes might be affected in disease would offer the potential for new therapeutic treatments for NAFLD to be developed.
引用
收藏
页码:689 / 700
页数:11
相关论文
共 379 条
  • [1] Kmieć Z(2001)Cooperation of liver cells in health and disease Adv. Anat. Embryol. Cell Biol. 161 1-151
  • [2] Brinkmann A(1978)Increase of the gluconeogenic and decrease of the glycolytic capacity of rat liver with a change of the metabolic zonation after partial hepatectomy Hoppe Seylers Z. Physiol. Chem. 359 1561-1571
  • [3] Katz N(2017)Zonation of hepatic fat accumulation: insights from mathematical modelling of nutrient gradients and fatty acid uptake J. R. Soc. Interface 14 20170443-224
  • [4] Sasse D(2011)Hepatic fatty acid partitioning Curr. Opin. Lipidol. 22 216-2035
  • [5] Jungermann K(1970)Splanchnic metabolism of free fatty acids and production of triglycerides of very low density lipoproteins in normotriglyceridemic and hypertriglyceridemic humans J. Clin. Invest. 49 2017-1800
  • [6] Schleicher J(1972)Metabolism of free fatty acids in isolated liver cells. Factors affecting the partition between esterification and oxidation J. Biol. Chem. 247 1788-91
  • [7] Dahmen U(2009)The evolution of plasma cholesterol: direct utility or a “spandrel” of hepatic lipid metabolism? Prog. Lipid Res. 48 73-E327
  • [8] Guthke R(1998)Role of human liver lipogenesis and reesterification in triglycerides secretion and in FFA reesterification Am. J. Physiol. 274 E321-E805
  • [9] Schuster S(1998)Hyperglycemia-induced inhibition of splanchnic fatty acid oxidation increases hepatic triacylglycerol secretion Am. J. Physiol. 275 E798-138
  • [10] Hodson L(2005)The histological course of nonalcoholic fatty liver disease: a longitudinal study of 103 patients with sequential liver biopsies J. Hepatol. 42 132-375