Publication Cover
Chronobiology International
The Journal of Biological and Medical Rhythm Research
Volume 29, 2012 - Issue 7
602
Views
35
CrossRef citations to date
0
Altmetric
Research Article

Low-Carbohydrate, High-Protein Diet Affects Rhythmic Expression of Gluconeogenic Regulatory and Circadian Clock Genes in Mouse Peripheral Tissues

, &
Pages 799-809 | Received 11 Mar 2012, Accepted 16 May 2012, Published online: 23 Jul 2012

REFERENCES

  • Astrup A, Meinert Larsen T, Harper A. (2004). Atkins and other low-carbohydrate diets: hoax or an effective tool for weight loss? Lancet 364:897–899.
  • Bass J, Takahashi JS. (2010). Circadian integration of metabolism and energetics. Science 330:1349–1354.
  • Brito SC, Festuccia WL, Kawashita NH, Moura MF, Xavier AR, Garofalo MA, Kettelhut IC, Migliorini RH. (2006). Increased glyceroneogenesis in adipose tissue from rats adapted to a high-protein, carbohydrate-free diet: role of dietary fatty acids. Metabolism 55:84–89.
  • Canaple L, Rambaud J, Dkhissi-Benyahya O, Rayet B, Tan NS, Michalik L, Delaunay F, Wahli W, Laudet V. (2006). Reciprocal regulation of brain and muscle Arnt-like protein 1 and peroxisome proliferator-activated receptor alpha defines a novel positive feedback loop in the rodent liver circadian clock. Mol. Endocrinol. 20:1715–1727.
  • Challet E, Pevet P, Malan A. (1997). Effect of prolonged fasting and subsequent refeeding on free-running rhythms of temperature and locomotor activity in rats. Behav. Brain Res. 84:275–284.
  • Challet E, Losee-Olson S, Turek FW. (1999). Reduced glucose availability attenuates circadian responses to light in mice. Am. J. Physiol. 276:R1063–R1070.
  • Connor WE, Duell PB, Connor SL. (2005). Benefits and hazards of dietary carbohydrate. Curr. Atheroscler. Rep. 7:428–434.
  • Delezie J, Challet E. (2011). Interactions between metabolism and circadian clocks: reciprocal disturbances. Ann. N. Y. Acad. Sci. 1243:30–46.
  • Duez H, Staels B. (2010). Nuclear receptors linking circadian rhythms and cardiometabolic control. Arterioscler. Thromb. Vasc. Biol. 30:1529–1534.
  • Froy O. (2011). The circadian clock and metabolism. Clin. Sci. (Lond.) 120:65–72.
  • Froy O, Chapnik N, Miskin R. (2006). Long-lived alphaMUPA transgenic mice exhibit pronounced circadian rhythms. Am. J. Physiol. Endocrinol. Metab. 291:E1017–E1024.
  • Garaulet M, Madrid JA. (2010). Chronobiological aspects of nutrition, metabolic syndrome and obesity. Adv. Drug Deliv. Rev. 62:967–978.
  • Hirao A, Tahara Y, Kimura I, Shibata S. (2009). A balanced diet is necessary for proper entrainment signals of the mouse liver clock. PLoS ONE 4:e6909.
  • Iwanaga H, Yano M, Miki H, Okada K, Azama T, Takiguchi S, Fujiwara Y, Yasuda T, Nakayama M, Kobayashi M, Oishi K, Ishida N, Nagai K, Monden M. (2005). Per2 gene expressions in the suprachiasmatic nucleus and liver differentially respond to nutrition factors in rats. J. Parenter. Enteral. Nutr. 29:157–161.
  • Jeyaraj D, Scheer FA, Ripperger JA, Haldar SM, Lu Y, Prosdocimo DA, Eapen SJ, Eapen BL, Cui Y, Mahabeleshwar GH, Lee HG, Smith MA, Casadesus G, Mintz EM, Sun H, Wang Y, Ramsey KM, Bass J, Shea SA, Albrecht U, Jain MK. (2012). Klf15 orchestrates circadian nitrogen homeostasis. Cell. Metab. 15:311–323.
  • Johnson JB, Laub DR, John S. (2006). The effect on health of alternate day calorie restriction: eating less and more than needed on alternate days prolongs life. Med. Hypotheses 67:209–211.
  • Kirk JK, Graves DE, Craven TE, Lipkin EW, Austin M, Margolis KL. (2008). Restricted-carbohydrate diets in patients with type 2 diabetes: a meta-analysis. J. Am. Diet. Assoc. 108:91–100.
  • Marsset-Baglieri A, Fromentin G, Tome D, Bensaid A, Makkarios L, Even PC. (2004). Increasing the protein content in a carbohydrate-free diet enhances fat loss during 35% but not 75% energy restriction in rats. J. Nutr. 134:2646–2652.
  • Martins-Afferri MP, Festuccia WT, Navegantes LC, Garofalo MA, Botion LM, Kettelhut IC, Migliorini RH. (2004). Response to intra- and extracellular lipolytic agents and hormone-sensitive lipase translocation are impaired in adipocytes from rats adapted to a high-protein, carbohydrate-free diet. J. Nutr. 134:2919–2923.
  • Maury E, Ramsey KM, Bass J. (2010). Circadian rhythms and metabolic syndrome: from experimental genetics to human disease. Circ. Res. 106:447–462.
  • Mendoza J, Drevet K, Pevet P, Challet E. (2008). Daily meal timing is not necessary for resetting the main circadian clock by calorie restriction. J. Neuroendocrinol. 20:251–260.
  • Miller BH, McDearmon EL, Panda S, Hayes KR, Zhang J, Andrews JL, Antoch MP, Walker JR, Esser KA, Hogenesch JB, Takahashi JS. (2007). Circadian and CLOCK-controlled regulation of the mouse transcriptome and cell proliferation. Proc. Natl. Acad. Sci. U. S. A. 104:3342–3347.
  • Nordmann AJ, Nordmann A, Briel M, Keller U, Yancy WS, Brehm BJ, Bucher HC. (2006). Effects of low-carbohydrate vs low-fat diets on weight loss and cardiovascular risk factors: a meta-analysis of randomized controlled trials. Arch. Intern. Med. 166:285–293.
  • Ohkura N, Oishi K, Sakata T, Kadota K, Kasamatsu M, Fukushima N, Kurata A, Tamai Y, Shirai H, Atsumi G, Ishida N, Matsuda J, Horie S. (2007). Circadian variations in coagulation and fibrinolytic factors among four different strains of mice. Chronobiol. Int. 24:651–669.
  • Oike H, Nagai K, Fukushima T, Ishida N, Kobori M. (2011). Feeding cues and injected nutrients induce acute expression of multiple clock genes in the mouse liver. PLoS ONE 6:e23709.
  • Oishi K, Miyazaki K, Kadota K, Kikuno R, Nagase T, Atsumi G, Ohkura N, Azama T, Mesaki M, Yukimasa S, Kobayashi H, Iitaka C, Umehara T, Horikoshi M, Kudo T, Shimizu Y, Yano M, Monden M, Machida K, Matsuda J, Horie S, Todo T, Ishida N. (2003). Genome-wide expression analysis of mouse liver reveals CLOCK-regulated circadian output genes. J. Biol. Chem. 278:41519–41527.
  • Oishi K, Shirai H, Ishida N. (2005). CLOCK is involved in the circadian transactivation of peroxisome-proliferator-activated receptor alpha (PPARalpha) in mice. Biochem. J. 386:575–581.
  • Oishi K, Uchida D, Ohkura N, Doi R, Ishida N, Kadota K, Horie S. (2009). Ketogenic diet disrupts the circadian clock and increases hypofibrinolytic risk by inducing expression of plasminogen activator inhibitor-1. Arterioscler. Thromb. Vasc. Biol. 29:1571–1577.
  • Panda S, Antoch MP, Miller BH, Su AI, Schook AB, Straume M, Schultz PG, Kay SA, Takahashi JS, Hogenesch JB. (2002). Coordinated transcription of key pathways in the mouse by the circadian clock. Cell 109:307–320.
  • Pillot B, Soty M, Gautier-Stein A, Zitoun C, Mithieux G. (2009). Protein feeding promotes redistribution of endogenous glucose production to the kidney and potentiates its suppression by insulin. Endocrinology 150:616–624.
  • Portaluppi F, Smolensky MH, Touitou Y. (2010). Ethics and methods for biological rhythm research on animals and human beings. Chronobiol. Int. 27:1919–1929.
  • Reppert SM, Weaver DR. (2002). Coordination of circadian timing in mammals. Nature 418:935–941.
  • Santesso N, Akl EA, Bianchi M, Mente A, Mustafa R, Heels-Ansdell D, Schunemann HJ. (2012). Effects of higher- versus lower-protein diets on health outcomes: a systematic review and meta-analysis. Eur. J. Clin. Nutr. Epub ahead of print. doi: 10.1038/ejcn.2012.37 (accessed 18 April 2012).
  • Schmutz I, Ripperger JA, Baeriswyl-Aebischer S, Albrecht U. (2010). The mammalian clock component PERIOD2 coordinates circadian output by interaction with nuclear receptors. Genes Dev. 24:345–357.
  • Shibata S, Tahara Y, Hirao A. (2010). The adjustment and manipulation of biological rhythms by light, nutrition, and abused drugs. Adv. Drug Deliv. Rev. 62:918–927.
  • Shirai H, Oishi K, Kudo T, Shibata S, Ishida N. (2007). PPARalpha is a potential therapeutic target of drugs to treat circadian rhythm sleep disorders. Biochem. Biophys. Res. Commun. 357:679–682.
  • Takahashi JS, Hong HK, Ko CH, McDearmon EL. (2008). The genetics of mammalian circadian order and disorder: implications for physiology and disease. Nat. Rev. Genet. 9:764–775.
  • Ueda HR, Chen W, Adachi A, Wakamatsu H, Hayashi S, Takasugi T, Nagano M, Nakahama K, Suzuki Y, Sugano S, Iino M, Shigeyoshi Y, Hashimoto S. (2002). A transcription factor response element for gene expression during circadian night. Nature 418:534–539.
  • Wu T, Ni Y, Kato H, Fu Z. (2010). Feeding-induced rapid resetting of the hepatic circadian clock is associated with acute induction of Per2 and Dec1 transcription in rats. Chronobiol. Int. 27:1–18.
  • Wu T, Sun L, ZhuGe F, Xichao G, Zhao Z, Tang R, Chen Q, Chen L, Kato H, Fu Z. (2011). Differential roles of breakfast and supper in rats of adaily three-meal schedule upon regulation and physiology. Chronobiol. Int. 28:800–903.
  • Yamada K, Kawata H, Shou Z, Mizutani T, Noguchi T, Miyamoto K. (2003). Insulin induces the expression of the SHARP-2/Stra13/DEC1 gene via a phosphoinositide 3-kinase pathway. J. Biol. Chem. 278:30719–30724.
  • Yamada KA. (2008). Calorie restriction and glucose regulation. Epilepsia 49( Suppl 8):94–96.
  • Yamaoka I, Hagi M, Doi M. (2009). Circadian changes in core body temperature, metabolic rate and locomotor activity in rats on a high-protein, carbohydrate-free diet. J. Nutr. Sci. Vitaminol. (Tokyo) 55:511–517.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.