Literature DB >> 28077572

Impact of a High-fat Diet on Tissue Acyl-CoA and Histone Acetylation Levels.

Alessandro Carrer1, Joshua L D Parris1, Sophie Trefely2, Ryan A Henry3, David C Montgomery4, AnnMarie Torres1, John M Viola1, Yin-Ming Kuo3, Ian A Blair5, Jordan L Meier4, Andrew J Andrews3, Nathaniel W Snyder6, Kathryn E Wellen7.   

Abstract

Cellular metabolism dynamically regulates the epigenome via availability of the metabolite substrates of chromatin-modifying enzymes. The impact of diet on the metabolism-epigenome axis is poorly understood but could alter gene expression and influence metabolic health. ATP citrate-lyase produces acetyl-CoA in the nucleus and cytosol and regulates histone acetylation levels in many cell types. Consumption of a high-fat diet (HFD) results in suppression of ATP citrate-lyase levels in tissues such as adipose and liver, but the impact of diet on acetyl-CoA and histone acetylation in these tissues remains unknown. Here we examined the effects of HFD on levels of acyl-CoAs and histone acetylation in mouse white adipose tissue (WAT), liver, and pancreas. We report that mice consuming a HFD have reduced levels of acetyl-CoA and/or acetyl-CoA:CoA ratio in these tissues. In WAT and the pancreas, HFD also impacted the levels of histone acetylation; in particular, histone H3 lysine 23 acetylation was lower in HFD-fed mice. Genetic deletion of Acly in cultured adipocytes also suppressed acetyl-CoA and histone acetylation levels. In the liver, no significant effects on histone acetylation were observed with a HFD despite lower acetyl-CoA levels. Intriguingly, acetylation of several histone lysines correlated with the acetyl-CoA: (iso)butyryl-CoA ratio in liver. Butyryl-CoA and isobutyryl-CoA interacted with the acetyltransferase P300/CBP-associated factor (PCAF) in liver lysates and inhibited its activity in vitro This study thus provides evidence that diet can impact tissue acyl-CoA and histone acetylation levels and that acetyl-CoA abundance correlates with acetylation of specific histone lysines in WAT but not in the liver.
© 2017 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  Acetyl-CoA; adipose tissue; diet; histone acetylation; liver

Mesh:

Substances:

Year:  2017        PMID: 28077572      PMCID: PMC5336165          DOI: 10.1074/jbc.M116.750620

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


  43 in total

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Authors:  Min Peng; Na Yin; Sagar Chhangawala; Ke Xu; Christina S Leslie; Ming O Li
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2.  ATP-Citrate Lyase Controls a Glucose-to-Acetate Metabolic Switch.

Authors:  Steven Zhao; AnnMarie Torres; Ryan A Henry; Sophie Trefely; Martina Wallace; Joyce V Lee; Alessandro Carrer; Arjun Sengupta; Sydney L Campbell; Yin-Ming Kuo; Alexander J Frey; Noah Meurs; John M Viola; Ian A Blair; Aalim M Weljie; Christian M Metallo; Nathaniel W Snyder; Andrew J Andrews; Kathryn E Wellen
Journal:  Cell Rep       Date:  2016-10-18       Impact factor: 9.423

Review 3.  KAT(ching) metabolism by the tail: insight into the links between lysine acetyltransferases and metabolism.

Authors:  Brittany N Albaugh; Kevin M Arnold; John M Denu
Journal:  Chembiochem       Date:  2010-11-24       Impact factor: 3.164

4.  Production of stable isotope-labeled acyl-coenzyme A thioesters by yeast stable isotope labeling by essential nutrients in cell culture.

Authors:  Nathaniel W Snyder; Gregory Tombline; Andrew J Worth; Robert C Parry; Jacob A Silvers; Kevin P Gillespie; Sankha S Basu; Jonathan Millen; David S Goldfarb; Ian A Blair
Journal:  Anal Biochem       Date:  2015-01-06       Impact factor: 3.365

5.  Suppression of oxidative stress by β-hydroxybutyrate, an endogenous histone deacetylase inhibitor.

Authors:  Tadahiro Shimazu; Matthew D Hirschey; John Newman; Wenjuan He; Kotaro Shirakawa; Natacha Le Moan; Carrie A Grueter; Hyungwook Lim; Laura R Saunders; Robert D Stevens; Christopher B Newgard; Robert V Farese; Rafael de Cabo; Scott Ulrich; Katerina Akassoglou; Eric Verdin
Journal:  Science       Date:  2012-12-06       Impact factor: 47.728

6.  The Warburg effect dictates the mechanism of butyrate-mediated histone acetylation and cell proliferation.

Authors:  Dallas R Donohoe; Leonard B Collins; Aminah Wali; Rebecca Bigler; Wei Sun; Scott J Bultman
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7.  Akt-dependent metabolic reprogramming regulates tumor cell histone acetylation.

Authors:  Joyce V Lee; Alessandro Carrer; Supriya Shah; Nathaniel W Snyder; Shuanzeng Wei; Sriram Venneti; Andrew J Worth; Zuo-Fei Yuan; Hee-Woong Lim; Shichong Liu; Ellen Jackson; Nicole M Aiello; Naomi B Haas; Timothy R Rebbeck; Alexander Judkins; Kyoung-Jae Won; Lewis A Chodosh; Benjamin A Garcia; Ben Z Stanger; Michael D Feldman; Ian A Blair; Kathryn E Wellen
Journal:  Cell Metab       Date:  2014-07-03       Impact factor: 27.287

8.  Measurement of tissue acyl-CoAs using flow-injection tandem mass spectrometry: acyl-CoA profiles in short-chain fatty acid oxidation defects.

Authors:  Andrew A Palladino; Jie Chen; Staci Kallish; Charles A Stanley; Michael J Bennett
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9.  Akt-mTORC1 signaling regulates Acly to integrate metabolic input to control of macrophage activation.

Authors:  Anthony J Covarrubias; Halil Ibrahim Aksoylar; Jiujiu Yu; Nathaniel W Snyder; Andrew J Worth; Shankar S Iyer; Jiawei Wang; Issam Ben-Sahra; Vanessa Byles; Tiffany Polynne-Stapornkul; Erika C Espinosa; Dudley Lamming; Brendan D Manning; Yijing Zhang; Ian A Blair; Tiffany Horng
Journal:  Elife       Date:  2016-02-19       Impact factor: 8.140

10.  Differences in specificity and selectivity between CBP and p300 acetylation of histone H3 and H3/H4.

Authors:  Ryan A Henry; Yin-Ming Kuo; Andrew J Andrews
Journal:  Biochemistry       Date:  2013-08-12       Impact factor: 3.162

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  54 in total

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2.  Colon-delivered short-chain fatty acids attenuate the cortisol response to psychosocial stress in healthy men: a randomized, placebo-controlled trial.

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Journal:  Neuropsychopharmacology       Date:  2020-06-10       Impact factor: 7.853

3.  Acetyl-CoA Derived from Hepatic Peroxisomal β-Oxidation Inhibits Autophagy and Promotes Steatosis via mTORC1 Activation.

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Review 4.  Epigenetic regulation by endogenous metabolite pharmacology.

Authors:  Rhushikesh A Kulkarni; David C Montgomery; Jordan L Meier
Journal:  Curr Opin Chem Biol       Date:  2019-03-15       Impact factor: 8.822

Review 5.  The vital role of ATP citrate lyase in chronic diseases.

Authors:  Amrita Devi Khwairakpam; Kishore Banik; Sosmitha Girisa; Bano Shabnam; Mehdi Shakibaei; Lu Fan; Frank Arfuso; Javadi Monisha; Hong Wang; Xinliang Mao; Gautam Sethi; Ajaikumar B Kunnumakkara
Journal:  J Mol Med (Berl)       Date:  2019-12-19       Impact factor: 4.599

Review 6.  Spatiotemporal Control of Acetyl-CoA Metabolism in Chromatin Regulation.

Authors:  Sharanya Sivanand; Isabella Viney; Kathryn E Wellen
Journal:  Trends Biochem Sci       Date:  2017-11-23       Impact factor: 13.807

Review 7.  De Novo Lipogenesis as a Source of Second Messengers in Adipocytes.

Authors:  Wen-Yu Hsiao; David A Guertin
Journal:  Curr Diab Rep       Date:  2019-11-20       Impact factor: 4.810

Review 8.  Metabolic choreography of gene expression: nutrient transactions with the epigenome.

Authors:  Babukrishna Maniyadath; U S Sandra; Ullas Kolthur-Seetharam
Journal:  J Biosci       Date:  2020       Impact factor: 1.826

9.  More than a powerplant: the influence of mitochondrial transfer on the epigenome.

Authors:  Alexander N Patananan; Alexander J Sercel; Michael A Teitell
Journal:  Curr Opin Physiol       Date:  2017-12-13

10.  Genome-wide profiling of histone H3K27 acetylation featured fatty acid signalling in pancreatic beta cells in diet-induced obesity in mice.

Authors:  Takao Nammo; Haruhide Udagawa; Nobuaki Funahashi; Miho Kawaguchi; Takashi Uebanso; Masaki Hiramoto; Wataru Nishimura; Kazuki Yasuda
Journal:  Diabetologia       Date:  2018-10-03       Impact factor: 10.122

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