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Chronobiology International
The Journal of Biological and Medical Rhythm Research
Volume 34, 2017 - Issue 10
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Original Articles

Complex interaction between circadian rhythm and diet on bile acid homeostasis in male rats

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Pages 1339-1353 | Received 09 May 2017, Accepted 31 Jul 2017, Published online: 13 Oct 2017

References

  • Angelin B, Bjorkhem I. 1977. Postprandial serum bile acids in healthy man. Evidence for differences in absorptive pattern between individual bile acids. Gut. 18:606–09. doi:10.1136/gut.18.8.606.
  • Angelin B, Bjorkhem I, Einarsson K, Ewerth S. 1982. Hepatic uptake of bile acids in man. Fasting and postprandial concentrations of individual bile acids in portal venous and systemic blood serum. J Clin Invest. 70:724–31. doi:10.1172/JCI110668.
  • Bass J, Takahashi JS. 2010. Circadian integration of metabolism and energetics. Science. 330:1349–54. doi:10.1126/science.1195027.
  • Bavner A, Sanyal S, Gustafsson JA, Treuter E. 2005. Transcriptional corepression by SHP: molecular mechanisms and physiological consequences. Trends Endocrinol Metab. 16:478–88. doi:10.1016/j.tem.2005.10.005.
  • Bustin SA, Benes V, Garson JA, Hellemans J, Huggett J, Kubista M, Mueller R, Nolan T, Pfaffl MW, Shipley GL, et al. 2009. The MIQE guidelines: Minimum information for publication of quantitative real-time PCR experiments. Clin Chem. 55:611–22. doi:10.1373/clinchem.2008.112797.
  • Chaix A, Zarrinpar A. 2015. The effects of time-restricted feeding on lipid metabolism and adiposity. Adipocyte. 4:319–24. doi:10.1080/21623945.2015.1025184.
  • del Castillo-Olivares A, Gil G. 2001. Suppression of sterol 12alpha-hydroxylase transcription by the short heterodimer partner: Insights into the repression mechanism. Nucleic Acids Res. 29:4035–42. doi:10.1093/nar/29.19.4035.
  • Duane WC, Gilberstadt ML, Wiegand DM. 1979. Diurnal rhythms of bile acid production in the rat. Am J Physiol. 236:R175–179.
  • Duane WC, Levitt DG, Mueller SM, Behrens JC. 1983. Regulation of bile acid synthesis in man. Presence Diurnal Rhythm J Clin Invest. 72:1930–36. doi:10.1172/JCI111157.
  • Duez H, Van Der Veen JN, Duhem C, Pourcet B, Touvier T, Fontaine C, Derudas B, Bauge E, Havinga R, Bloks VW, et al. 2008. Regulation of bile acid synthesis by the nuclear receptor Rev-erbalpha. Gastroenterology. 135:689–98. doi:10.1053/j.gastro.2008.05.035.
  • Ferrell JM, Chiang JY. 2015. Short-term circadian disruption impairs bile acid and lipid homeostasis in mice. Cell Mol Gastroenterol Hepatol. 1:664–77. doi:10.1016/j.jcmgh.2015.08.003.
  • Galman C, Angelin B, Rudling M. 2005. Bile acid synthesis in humans has a rapid diurnal variation that is asynchronous with cholesterol synthesis. Gastroenterology. 129:1445–53. doi:10.1053/j.gastro.2005.09.009.
  • Gilberstadt ML, Bellinger LL, Lindblad S, Duane WC. 1991. Liver denervation does not alter the circadian rhythm of bile acid synthesis in rats. Am J Physiol. 261:G799–802.
  • Goodwin B, Jones SA, Price RR, Watson MA, McKee DD, Moore LB, Galardi C, Wilson JG, Lewis MC, Roth ME, et al. 2000. A regulatory cascade of the nuclear receptors FXR, SHP-1, and LRH-1 represses bile acid biosynthesis. Mol Cell. 6:517–26. doi:10.1016/S1097-2765(00)00051-4.
  • Govindarajan K, MacSharry J, Casey PG, Shanahan F, Joyce SA, Gahan CG. 2016. Unconjugated bile acids influence expression of circadian genes: a potential mechanism for microbe-host crosstalk. PLoS One. 11:e0167319. doi:10.1371/journal.pone.0167319.
  • Han S, Zhang R, Jain R, Shi H, Zhang L, Zhou G, Sangwung P, Tugal D, Atkins GB, Prosdocimo DA, et al. 2015. Circadian control of bile acid synthesis by a KLF15-Fgf15 axis. Nat Commun. 6:7231. doi:10.1038/ncomms8231.
  • Hofmann AF, Hagey LR. 2008. Bile acids: chemistry, pathochemistry, biology, pathobiology, and therapeutics. Cell Mol Life Sci. 65:2461–83. doi:10.1007/s00018-008-7568-6.
  • Hughes ME, Hogenesch JB, Kornacker K. 2010. JTK_CYCLE: an efficient nonparametric algorithm for detecting rhythmic components in genome-scale data sets. J Biol Rhythms. 25:372–80. doi:10.1177/0748730410379711.
  • Jeyaraj D, Scheer FA, Ripperger JA, Haldar SM, Lu Y, Prosdocimo DA, Eapen SJ, Eapen BL, Cui Y, Mahabeleshwar GH, et al. 2012. Klf15 orchestrates circadian nitrogen homeostasis. Cell Metab. 15:311–23. doi:10.1016/j.cmet.2012.01.020.
  • Kalsbeek A, Strubbe JH. 1998. Circadian control of insulin secretion is independent of the temporal distribution of feeding. Physiol Behav. 63:553–58. doi:10.1016/S0031-9384(97)00493-9.
  • Kerr TA, Saeki S, Schneider M, Schaefer K, Berdy S, Redder T, Shan B, Russell DW, Schwarz M. 2002. Loss of nuclear receptor SHP impairs but does not eliminate negative feedback regulation of bile acid synthesis. Dev Cell. 2:713–20. doi:10.1016/S1534-5807(02)00154-5.
  • Kim DH, Rhee JC, Yeo S, Shen R, Lee SK, Lee JW, Lee S. 2015. Crucial roles of mixed-lineage leukemia 3 and 4 as epigenetic switches of the hepatic circadian clock controlling bile acid homeostasis in mice. Hepatology. 61:1012–23. doi:10.1002/hep.27578.
  • Kim I, Ahn SH, Inagaki T, Choi M, Ito S, Guo GL, Kliewer SA, Gonzalez FJ. 2007. Differential regulation of bile acid homeostasis by the farnesoid X receptor in liver and intestine. J Lipid Res. 48:2664–72. doi:10.1194/jlr.M700330-JLR200.
  • Kliewer SA, Mangelsdorf DJ. 2015. Bile acids as hormones: the FXR-FGF15/19 pathway. Dig Dis. 33:327–31. doi:10.1159/000371670.
  • Ko CH, Takahashi JS. 2006. Molecular components of the mammalian circadian clock. Hum Mol Genet. 15 Spec No 2:R271–277. doi:10.1093/hmg/ddl207.
  • Kong B, Wang L, Chiang JY, Zhang Y, Klaassen CD, Guo GL. 2012. Mechanism of tissue-specific farnesoid X receptor in suppressing the expression of genes in bile-acid synthesis in mice. Hepatology. 56:1034–43. doi:10.1002/hep.25740.
  • Kuipers F, Bloks VW, Groen AK. 2014. Beyond intestinal soap—bile acids in metabolic control. Nat Rev Endocrinol. 10:488–98. doi:10.1038/nrendo.2014.60.
  • la Fleur SE, Van Rozen AJ, Luijendijk MC, Groeneweg F, Adan RA. 2010. A free-choice high-fat high-sugar diet induces changes in arcuate neuropeptide expression that support hyperphagia. Int J Obes (Lond). 34:537–46. doi:10.1038/ijo.2009.257.
  • la Fleur SE, Vanderschuren LJ, Luijendijk MC, Kloeze BM, Tiesjema B, Adan RA. 2007. A reciprocal interaction between food-motivated behavior and diet-induced obesity. Int J Obes (Lond). 31:1286–94. doi:10.1038/sj.ijo.0803570.
  • LaRusso NF, Hoffman NE, Korman MG, Hofmann AF, Cowen AE. 1978. Determinants of fasting and postprandial serum bile acid levels in healthy man. Am J Dig Dis. 23:385–91. doi:10.1007/BF01072919.
  • Lavery DJ, Schibler U. 1993. Circadian transcription of the cholesterol 7 alpha hydroxylase gene may involve the liver-enriched bZIP protein DBP. Genes Dev. 7:1871–84. doi:10.1101/gad.7.10.1871.
  • Lefebvre P, Cariou B, Lien F, Kuipers F, Staels B. 2009. Role of bile acids and bile acid receptors in metabolic regulation. Physiol Rev. 89:147–91. doi:10.1152/physrev.00010.2008.
  • Li T, Francl JM, Boehme S, Ochoa A, Zhang Y, Klaassen CD, Erickson SK, Chiang JY. 2012. Glucose and insulin induction of bile acid synthesis: Mechanisms and implication in diabetes and obesity. J Biol Chem. 287:1861–73. doi:10.1074/jbc.M111.305789.
  • Lu TT, Makishima M, Repa JJ, Schoonjans K, Kerr TA, Auwerx J, Mangelsdorf DJ. 2000. Molecular basis for feedback regulation of bile acid synthesis by nuclear receptors. Mol Cell. 6:507–15. doi:10.1016/S1097-2765(00)00050-2.
  • Ma K, Xiao R, Tseng HT, Shan L, Fu L, Moore DD. 2009. Circadian dysregulation disrupts bile acid homeostasis. PLoS One. 4:e6843. doi:10.1371/journal.pone.0006843.
  • Oiwa A, Kakizawa T, Miyamoto T, Yamashita K, Jiang W, Takeda T, Suzuki S, Hashizume K. 2007. Synergistic regulation of the mouse orphan nuclear receptor SHP gene promoter by CLOCK-BMAL1 and LRH-1. Biochem Biophys Res Commun. 353:895–901. doi:10.1016/j.bbrc.2006.12.131.
  • Opperhuizen AL, Wang D, Foppen E, Jansen R, Boudzovitch-Surovtseva O, De Vries J, Fliers E, Kalsbeek A. 2016. Feeding during the resting phase causes profound changes in physiology and desynchronization between liver and muscle rhythms of rats. Eur J Neurosci. 44:2795–806. doi:10.1111/ejn.13377.
  • Pan X, Zhang Y, Wang L, Hussain MM. 2010. Diurnal regulation of MTP and plasma triglyceride by CLOCK is mediated by SHP. Cell Metab. 12:174–86. doi:10.1016/j.cmet.2010.05.014.
  • Pathak P, Li T, Chiang JY. 2013. Retinoic acid-related orphan receptor alpha regulates diurnal rhythm and fasting induction of sterol 12alpha-hydroxylase in bile acid synthesis. J Biol Chem. 288:37154–65. doi:10.1074/jbc.M113.485987.
  • Pellicoro A, Van Den Heuvel FA, Geuken M, Moshage H, Jansen PL, Faber KN. 2007. Human and rat bile acid-CoA: Aminoacid N-acyltransferase are liver-specific peroxisomal enzymes: implications for intracellular bile salt transport. Hepatology. 45:340–48. doi:10.1002/hep.21528.
  • Schalm SW, LaRusso NF, Hofmann AF, Hoffman NE, Van Berge-Henegouwen GP, Korman MG. 1978. Diurnal serum levels of primary conjugated bile acids. Assessment by specific radioimmunoassays for conjugates of cholic and chenodeoxycholic acid. Gut. 19:1006–14. doi:10.1136/gut.19.11.1006.
  • Setchell KD, Lawson AM, Blackstock EJ, Murphy GM. 1982. Diurnal changes in serum unconjugated bile acids in normal man. Gut. 23:637–42. doi:10.1136/gut.23.8.637.
  • Sonne DP, Hare KJ, Martens P, Rehfeld JF, Holst JJ, Vilsboll T, Knop FK. 2013. Postprandial gut hormone responses and glucose metabolism in cholecystectomized patients. Am J Physiol Gastrointest Liver Physiol. 304:G413–419. doi:10.1152/ajpgi.00435.2012.
  • Sonne DP, van Nierop FS, Kulik W, Soeters MR, Vilsboll T, Knop FK. 2016. Postprandial plasma concentrations of individual bile acids and FGF-19 in patients with type 2 diabetes. J Clin Endocrinol Metab. 101:3002–09. doi:10.1210/jc.2016-1607.
  • Su Y, Cailotto C, Foppen E, Jansen R, Zhang Z, Buijs R, Fliers E, Kalsbeek A. 2016a. The role of feeding rhythm, adrenal hormones and neuronal inputs in synchronizing daily clock gene rhythms in the liver. Mol Cell Endocrinol. 422:125–31. doi:10.1016/j.mce.2015.12.011.
  • Su Y, Foppen E, Zhang Z, Fliers E, Kalsbeek A. 2016b. Effects of 6-meals-a-day feeding and 6-meals-a-day feeding combined with adrenalectomy on daily gene expression rhythms in rat epididymal white adipose tissue. Genes Cells. 21:6–24. doi:10.1111/gtc.12315.
  • Suzuki Y, Kaneko R, Nomura M, Naito H, Kitamori K, Nakajima T, Ogawa T, Hattori H, Seno H, Ishii A. 2013. Simple and rapid quantitation of 21 bile acids in rat serum and liver by UPLC-MS-MS: effect of high fat diet on glycine conjugates of rat bile acids. Nagoya J Med Sci. 75:57–71.
  • Swann JR, Want EJ, Geier FM, Spagou K, Wilson ID, Sidaway JE, Nicholson JK, Holmes E. 2011. Systemic gut microbial modulation of bile acid metabolism in host tissue compartments. Proc Natl Acad Sci U S A. 108(Suppl 1):4523–30. doi:10.1073/pnas.1006734107.
  • Thaiss CA, Levy M, Korem T, Dohnalova L, Shapiro H, Jaitin DA, David E, Winter DR, Gury-BenAri M, Tatirovsky E, et al. 2016. Microbiota diurnal rhythmicity programs host transcriptome oscillations. Cell. 167:1495–1510 e1412. doi:10.1016/j.cell.2016.11.003.
  • Wu N, Kim KH, Zhou Y, Lee JM, Kettner NM, Mamrosh JL, Choi S, Fu L, Moore DD. 2016. Small heterodimer partner (NR0B2) coordinates nutrient signaling and the circadian clock in mice. Mol Endocrinol. 30:988–95. doi:10.1210/me.2015-1295.
  • Yamajuku D, Okubo S, Haruma T, Inagaki T, Okuda Y, Kojima T, Noutomi K, Hashimoto S, Oda H. 2009. Regular feeding plays an important role in cholesterol homeostasis through the liver circadian clock. Circ Res. 105:545–U575.
  • Zhang YK, Guo GL, Klaassen CD. 2011. Diurnal variations of mouse plasma and hepatic bile acid concentrations as well as expression of biosynthetic enzymes and transporters. PLoS One. 6:e16683. doi:10.1371/journal.pone.0016683.