Literature DB >> 31481463

Circadian rhythm-dependent induction of hepatic lipogenic gene expression in rats fed a high-sucrose diet.

Shumin Sun1, Fumiaki Hanzawa2, Daeun Kim1, Miki Umeki3, Syunsuke Nakajima1, Kumiko Sakai4, Saiko Ikeda2, Satoshi Mochizuki5, Hiroaki Oda6.   

Abstract

Metabolic syndrome has become a global health challenge and was recently reported to be positively correlated with increased sucrose consumption. Mechanistic analyses of excess sucrose-induced progression of metabolic syndrome have been focused mainly on abnormal hepatic lipogenesis, and the exact contribution of excess sucrose to metabolic disorders remains controversial. Considering that carbohydrate and lipid metabolisms exhibit clear circadian rhythms, here we investigated the possible contribution of diurnal oscillations to responses of hepatic lipid metabolism to excess sucrose. We found that excess sucrose dose-dependently promotes fatty liver and hyperlipidemia in in rats fed a high-sucrose diet (HSD). We observed that excess sucrose enhances the oscillation amplitudes of the expression of clock genes along with the levels of hepatic lipid and carbohydrate metabolism-related mRNAs that increase lipogenesis. We did not observe similar changes in the levels of the transcription factors regulating the expression of these genes. This suggested that the excess sucrose-induced, circadian rhythm-dependent amplification of lipogenesis is post-transcriptionally regulated via the stability of metabolic gene transcripts. Of note, our findings also provide evidence that fructose causes some of the HSD-induced, circadian rhythm-dependent alterations in lipogenic gene expression. Our discovery of HSD-induced circadian rhythm-dependent alterations in lipogenesis at the post-transcriptional level may inform future studies investigating the complex relationships among sucrose uptake, circadian rhythm, and metabolic enzyme expression. Our findings could contribute to the design of chrono-nutritional interventions to prevent or manage the development of fatty liver and hyperlipidemia in sucrose-induced metabolic syndrome.
© 2019 Sun et al.

Entities:  

Keywords:  circadian rhythm; dyslipidemia; excess sucrose intake; fatty acid metabolism; gene regulation; high-sucrose diet (HSD); lipid metabolic disorders; lipogenesis; metabolic syndrome; nonalcoholic fatty liver diseases

Mesh:

Substances:

Year:  2019        PMID: 31481463      PMCID: PMC6802514          DOI: 10.1074/jbc.RA119.010328

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  51 in total

Review 1.  Hepatic adaptations to sucrose and fructose.

Authors:  Michael E Bizeau; Michael J Pagliassotti
Journal:  Metabolism       Date:  2005-09       Impact factor: 8.694

Review 2.  Fructose and metabolic diseases: new findings, new questions.

Authors:  Luc Tappy; Kim A Lê; Christel Tran; Nicolas Paquot
Journal:  Nutrition       Date:  2010-05-14       Impact factor: 4.008

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Authors:  W N Tian; L D Braunstein; J Pang; K M Stuhlmeier; Q C Xi; X Tian; R C Stanton
Journal:  J Biol Chem       Date:  1998-04-24       Impact factor: 5.157

Review 4.  Circadian topology of metabolism.

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Review 5.  Animal models of nonalcoholic fatty liver disease/nonalcoholic steatohepatitis.

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Review 8.  Circadian integration of metabolism and energetics.

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Review 9.  Metabolic zonation of the liver: The oxygen gradient revisited.

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10.  Delayed first active-phase meal, a breakfast-skipping model, led to increased body weight and shifted the circadian oscillation of the hepatic clock and lipid metabolism-related genes in rats fed a high-fat diet.

Authors:  Hatsumi Shimizu; Fumiaki Hanzawa; Daeun Kim; Shumin Sun; Thomas Laurent; Miki Umeki; Saiko Ikeda; Satoshi Mochizuki; Hiroaki Oda
Journal:  PLoS One       Date:  2018-10-31       Impact factor: 3.240

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