A critical role for ChREBP-mediated FGF21 secretion in hepatic fructose metabolism

被引:138
作者
Fisher, Ffolliott M. [1 ]
Kim, MiSung [1 ]
Doridot, Ludivine [1 ]
Cunniff, Jeremy C. [1 ]
Parker, Thomas S. [2 ]
Levine, Daniel M. [2 ]
Hellerstein, Marc K. [3 ]
Hudgins, Lisa C. [2 ]
Maratos-Flier, Eleftheria [1 ]
Herman, Mark A. [1 ,4 ,5 ]
机构
[1] Harvard Med Sch, Div Endocrinol & Metab, Beth Israel Deaconess Med Ctr, Boston, MA 02215 USA
[2] Weill Cornell Med Coll, Rogosin Inst & Dept Med & Biochem, New York, NY 10021 USA
[3] Univ Calif Berkeley, Dept Nutr Sci & Toxicol, Berkeley, CA 94702 USA
[4] Duke Univ, Div Endocrinol Metab & Nutr, Med Ctr, Durham, NC 27705 USA
[5] Duke Univ, Duke Mol Physiol Inst, Med Ctr, Durham, NC 27705 USA
关键词
FGF21; ChREBP; Fructose; Lipogenesis; NAFLD; FATTY LIVER-DISEASE; GROWTH-FACTOR; 21; PPAR-ALPHA; MACRONUTRIENT INTAKE; CIRCULATING FGF21; LIPOGENESIS; ACTIVATION; SWEET; FIBROBLAST-GROWTH-FACTOR-21; CARBOHYDRATE;
D O I
10.1016/j.molmet.2016.11.008
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Objective: Increased fructose consumption is a contributor to the burgeoning epidemic of non-alcoholic fatty liver disease (NAFLD). Recent evidence indicates that the metabolic hormone FGF21 is regulated by fructose consumption in humans and rodents and may play a functional role in this nutritional context. Here, we sought to define the mechanism by which fructose ingestion regulates FGF21 and determine whether FGF21 contributes to an adaptive metabolic response to fructose consumption. Methods: We tested the role of the transcription factor carbohydrate responsive-element binding protein (ChREBP) in fructose-mediated regulation of FGF21 using ChREBP knockout mice. Using FGF21 knockout mice, we investigated whether FGF21 has a metabolic function in the context of fructose consumption. Additionally, we tested whether a ChREBP-FGF21 interaction is likely conserved in human subjects. Results: Hepatic expression of ChREBP-beta and Fgf21 acutely increased 2-fold and 3-fold, respectively, following fructose gavage, and this was accompanied by increased circulating FGF21. The acute increase in circulating FGF21 following fructose gavage was absent in ChREBP knockout mice. Induction of ChREBP-beta and its glycolytic, fructolytic, and lipogenic gene targets were attenuated in FGF21 knockout mice fed high-fructose diets, and this was accompanied by a 50% reduction in de novo lipogenesis a, 30% reduction VLDL secretion, and a 25% reduction in liver fat compared to fructose-fed controls. In human subjects, serum FGF21 correlates with de novo lipogenic rates measured by stable isotopic tracers (R = 0.55, P = 0.04) consistent with conservation of a ChREBP-FGF21 interaction. After 8 weeks of high-fructose diet, livers from FGF21 knockout mice demonstrate atrophy and fibrosis accompanied by molecular markers of inflammation and stellate cell activation; whereas, this did not occur in controls. Conclusions: In summary, ChREBP and FGF21 constitute a signaling axis likely conserved in humans that mediates an essential adaptive response to fructose ingestion that may participate in the pathogenesis of NAFLD and liver fibrosis. (C) 2016 The Authors. Published by Elsevier GmbH.
引用
收藏
页码:14 / 21
页数:8
相关论文
共 35 条
[1]  
Badman MK, 2007, CELL METAB, V5, P426, DOI 10.1016/j.cmet.2007.05.002
[2]  
Bray GA, 2004, AM J CLIN NUTR, V79, P537
[3]   Circulating Fibroblast Growth Factor 21 Is Induced by Peroxisome Proliferator-Activated Receptor Agonists But Not Ketosis in Man [J].
Christodoulides, Constantinos ;
Dyson, Pamela ;
Sprecher, Dennis ;
Tsintzas, Kostas ;
Karpe, Fredrik .
JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 2009, 94 (09) :3594-3601
[4]   Novel locus including FGF21 is associated with dietary macronutrient intake [J].
Chu, Audrey Y. ;
Workalemahu, Tsegaselassie ;
Paynter, Nina P. ;
Rose, Lynda M. ;
Giulianini, Franco ;
Tanaka, Toshiko ;
Ngwa, Julius S. ;
Qi, Qibin ;
Curhan, Gary C. ;
Rimm, Eric B. ;
Hunter, David J. ;
Pasquale, Louis R. ;
Ridker, Paul M. ;
Hu, Frank B. ;
Chasman, Daniel I. ;
Qi, Lu .
HUMAN MOLECULAR GENETICS, 2013, 22 (09) :1895-1902
[5]  
Donnelly KL, 2005, J CLIN INVEST, V115, P1343, DOI 10.1172/JCI23621
[6]   Increased Fibroblast Growth Factor 21 in Obesity and Nonalcoholic Fatty Liver Disease [J].
Dushay, Jody ;
Chui, Patricia C. ;
Gopalakrishnan, Gosala S. ;
Varela-Rey, Marta ;
Crawley, Meghan ;
Fisher, Ffolliott M. ;
Badman, Michael K. ;
Martinez-Chantar, Maria L. ;
Maratos-Flier, Eleftheria .
GASTROENTEROLOGY, 2010, 139 (02) :456-463
[7]   Fructose ingestion acutely stimulates circulating FGF21 levels in humans [J].
Dushay, Jody R. ;
Toschi, Elena ;
Mitten, Emilie K. ;
Fisher, Ffolliott M. ;
Herman, Mark A. ;
Maratos-Flier, Eleftheria .
MOLECULAR METABOLISM, 2015, 4 (01) :51-57
[8]   Fibroblast Growth Factor 21 Limits Lipotoxicity by Promoting Hepatic Fatty Acid Activation in Mice on Methionine and Choline-Deficient Diets [J].
Fisher, Ffolliott M. ;
Chui, Patricia C. ;
Nasser, Imad A. ;
Popov, Yury ;
Cunniff, Jeremy C. ;
Lundasen, Thomas ;
Kharitonenkov, Alexei ;
Schuppan, Detlef ;
Flier, Jeffrey S. ;
Maratos-Flier, Eleftheria .
GASTROENTEROLOGY, 2014, 147 (05) :1073-+
[9]   The circulating metabolic regulator FGF21 is induced by prolonged fasting and PPARα activation in man [J].
Gaelman, Cecilia ;
Lundasen, Tomas ;
Kharitonenkov, Alexei ;
Bina, Holly A. ;
Eriksson, Mats ;
Hafstroem, Ingiaeld ;
Dahlin, Maria ;
Amark, Per ;
Angelin, Bo ;
Rudling, Mats .
CELL METABOLISM, 2008, 8 (02) :169-174
[10]   The Sweet Path to Metabolic Demise: Fructose and Lipid Synthesis [J].
Herman, Mark A. ;
Samuel, Varman T. .
TRENDS IN ENDOCRINOLOGY AND METABOLISM, 2016, 27 (10) :719-730