Fatty acid cycling in the fasting rat

被引:52
作者
Kalderon, B [1 ]
Mayorek, N [1 ]
Berry, E [1 ]
Zevit, N [1 ]
Bar-Tana, J [1 ]
机构
[1] Hebrew Univ Jerusalem, Fac Med, Dept Human Nutr & Metab, IL-91120 Jerusalem, Israel
来源
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM | 2000年 / 279卷 / 01期
关键词
adipose tissue; lipoproteins; stable isotopes; thyroid hormone; Medica; 16;
D O I
10.1152/ajpendo.2000.279.1.E221
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Adipose tissue lipolysis and fatty acid reesterification by liver and adipose tissue were investigated in rats fasted for 15 h under basal and calorigenic conditions. The fatty acid flux initiated by adipose fat lipolysis in the fasted rat is mostly futile and is characterized by reesterification of 57% of lipolyzed free fatty acid (FFA) back into adipose triglycerides (TG). About two-thirds of FFA reesterification are carried out before FFA release into plasma, whereas the rest consists of plasma FFA extracted by adipose tissue. Thirty-six percent of the fasting lipolytic flux is accounted for by oxidation of plasma FFA, whereas only a minor fraction is channeled into hepatic very low density lipoprotein-triglycerides (VLDLTG). Total body calorigenesis induced by thyroid hormone treatment and liver-specific calorigenesis induced by treatment with beta,beta'-tetramethylhexadecanedioic acid (Medica 16) are characterized by a 1.7- and 1.3-fold increase in FFA oxidation, respectively, maintained by a 1.5-fold increase in adipose fat lipolysis. Hepatic reesterification of plasma FFA into VLDL-TG is negligible under both calorigenic conditions. Hence, total body fatty acid metabolism is regulated by adipose tissue as both source and sink. The futile nature of fatty acid cycling allows for its fine tuning in response to metabolic demands.
引用
收藏
页码:E221 / E227
页数:7
相关论文
共 50 条
[31]   The Role of Intermittent Fasting in the Management of Nonalcoholic Fatty Liver Disease: A Narrative Review [J].
Lavallee, Celeste M. ;
Bruno, Andreina ;
Ma, Christopher ;
Raman, Maitreyi .
NUTRIENTS, 2022, 14 (21)
[32]   The Hepatic Genes for Immunoproteasome Are Upregulated by Refeeding after Fasting in the Rat [J].
Ushiama, Shota ;
Nakamura, Toshiaki ;
Ishijima, Tomoko ;
Misaka, Takumi ;
Abe, Keiko ;
Nakai, Yuji .
BIOSCIENCE BIOTECHNOLOGY AND BIOCHEMISTRY, 2010, 74 (06) :1320-1323
[33]   Mutagenesis of triad determinants of rat Alox15 alters the specificity of fatty acid and phospholipid oxygenation [J].
Pekarova, Maria ;
Kuhn, Hartmut ;
Bezakova, Lydia ;
Ufer, Christoph ;
Heydeck, Dagmar .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2015, 571 :50-57
[34]   Rescue of glucocorticoid-programmed adipocyte inflammation by omega-3 fatty acid supplementation in the rat [J].
Mark, Peter J. ;
Wyrwoll, Caitlin S. ;
Zulkafli, Intan S. ;
Mori, Trevor A. ;
Waddell, Brendan J. .
REPRODUCTIVE BIOLOGY AND ENDOCRINOLOGY, 2014, 12
[35]   The mighty, mighty fatty acid [J].
Plutzky, Jorge .
NATURE MEDICINE, 2009, 15 (06) :618-619
[36]   Carcass fatty acid mapping [J].
Turk, S. N. ;
Smith, S. B. .
MEAT SCIENCE, 2009, 81 (04) :658-663
[37]   Hepatic fatty acid partitioning [J].
Hodson, Leanne ;
Frayn, Keith N. .
CURRENT OPINION IN LIPIDOLOGY, 2011, 22 (03) :216-224
[38]   Nonalcoholic Fatty Liver Disease: Correlation of the Liver Parenchyma Fatty Acid with Intravoxel Incoherent Motion MR Imaging-An Experimental Study in a Rat Model [J].
Yu, Seung-Man ;
Ki, Sung Hwan ;
Baek, Hyeon-Man .
PLOS ONE, 2015, 10 (10)
[39]   Meat quality and tissue fatty acid profiles in rabbits fed diets supplemented with conjugated linoleic acid [J].
Marounek, M. ;
Skrivanova, V. ;
Dokoupilova, A. ;
Czauderna, M. ;
Berladyn, A. .
VETERINARNI MEDICINA, 2007, 52 (12) :552-561
[40]   Recent advances in targeting the fatty acid biosynthetic pathway using fatty acid synthase inhibitors [J].
Angeles, Thelma S. ;
Hudkins, Robert L. .
EXPERT OPINION ON DRUG DISCOVERY, 2016, 11 (12) :1187-1199