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Chronobiology International
The Journal of Biological and Medical Rhythm Research
Volume 30, 2013 - Issue 5
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Research Article

Reduced preprandial dipping accounts for rapid elevation of blood pressure and renal sympathetic nerve activity in rabbits fed a high-fat diet

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Pages 726-738 | Received 06 Dec 2012, Accepted 04 Mar 2013, Published online: 20 May 2013

REFERENCES

  • Adachi T, Sert-Kuniyoshi FH, Calvin AD, et al. (2011). Effect of weight gain on cardiac autonomic control during wakefulness and sleep. Hypertension, 57, 723–30
  • Ando H, Yanagihara H, Hayashi Y, et al. (2005). Rhythmic messenger ribonucleic acid expression of clock genes and adipocytokines in mouse visceral adipose tissue. Endocrinology, 146, 5631–6
  • Antic V, Dulloo A, Montani JP. (2003). Short-term (5-day) changes in food intake alter daily hemodynamics in rabbits. Am J Hypertens, 16, 302–6
  • Antic V, Van Vliet BN, Montani JP. (2001). Loss of nocturnal dipping of blood pressure and heart rate in obesity-induced hypertension in rabbits. Auton Neurosci, 90, 152–7
  • Armitage JA, Burke SL, Prior LJ, et al. (2012). Rapid onset of renal sympathetic nerve activation in rabbits fed a high fat diet. Hypertension, 60, 163–71
  • Barnes MJ, Lapanowski K, Conley A, et al. (2003). High fat feeding is associated with increased blood pressure, sympathetic nerve activity and hypothalamic mu opioid receptors. Brain Res Bull, 61, 511–19
  • Barrett CJ, Navakatikyan MA, Malpas SC. (2001). Long-term control of renal blood flow: what is the role of the renal nerves? Am J Physiol, 280, R1534–45
  • Bodosi B, Gardi J, Hajdu I, et al. (2004). Rhythms of ghrelin, leptin, and sleep in rats: effects of the normal diurnal cycle, restricted feeding, and sleep deprivation. Am J Physiol Regul Integr Comp Physiol, 287, R1071–9
  • Burke SL, Head GA. (2003). Method for in-vivo calibration of renal sympathetic nerve activity in rabbits. J Neurosci Methods, 127, 63–74
  • Carroll JF, Dwyer TM, Grady AW, et al. (1996). Hypertension, cardiac hypertrophy, and neurohumoral activity in a new animal model of obesity. Am J Physiol, 271, H373–8
  • Carroll JF, Thaden JJ, Wright AM, Strange T. (2005). Loss of diurnal rhythms of blood pressure and heart rate caused by high-fat feeding. Am J Hypertens, 18, 1320–6
  • Cha MC, Chou CJ, Boozer CN. (2000). High-fat diet feeding reduces the diurnal variation of plasma leptin concentration in rats. Metabolism, 49, 503–7
  • Cox HS, Kaye DM, Thompson JM, et al. (1995). Regional sympathetic nervous activation after a large meal in humans. Clin Sci (Lond), 89, 145–54
  • Davern PJ, Head GA. (2007). Fos-related antigen immunoreactivity after acute and chronic angiotensin II-induced hypertension in the rabbit brain. Hypertension, 49, 1170–7
  • de la Sierra A, Redon J, Banegas JR, et al. (2009). Prevalence and factors associated with circadian blood pressure patterns in hypertensive patients. Hypertension, 53, 466–72
  • Eijzenbach V, Sneek JH, Borst C. (1986). Arterial pressure and heart period in the conscious rabbit: diurnal rhythm and influence of activity. Clin Exp Pharmacol Physiol, 13, 585–92
  • Emdin M, Gastaldelli A, Muscelli E, et al. (2001). Hyperinsulinemia and autonomic nervous system dysfunction in obesity: effects of weight loss. Circulation, 103, 513–19
  • Fortaleza EA, Scopinho AA, de Aguiar Correa FM. (2012). alpha1 and alpha2-adrenoceptors in the medial amygdaloid nucleus modulate differently the cardiovascular responses to restraint stress in rats. Pharmacol Res, 66, 154–62
  • Furlan R, Guzzetti S, Crivellaro W, et al. (1990). Continuous 24-hour assessment of the neural regulation of systemic arterial pressure and RR variabilities in ambulant subjects. Circulation, 81, 537–47
  • Gooley JJ, Schomer A, Saper CB. (2006). The dorsomedial hypothalamic nucleus is critical for the expression of food-entrainable circadian rhythms. Nat Neurosci, 9, 398–407
  • Havel PJ, Townsend R, Chaump L, Teff K. (1999). High-fat meals reduce 24-h circulating leptin concentrations in women. Diabetes, 48, 334–41
  • Head GA, Lukoshkova EV, Mayorov DN, Van den Buuse M. (2004). Non-symmetrical double logistic analysis of 24 hour blood pressure recordings in normotensive and hypertensive rats. J Hypertens, 22, 2075–85
  • Kalra SP, Bagnasco M, Otukonyong EE, et al. (2003). Rhythmic, reciprocal ghrelin and leptin signaling: new insight in the development of obesity. Regul Pept, 111, 1–11
  • Kario K, Pickering TG, Umeda Y, et al. (2003). Morning surge in blood pressure as a predictor of silent and clinical cerebrovascular disease in elderly hypertensives: a prospective study. Circulation, 107, 1401–6
  • Kaur S, Thankachan S, Begum S, et al. (2008). Entrainment of temperature and activity rhythms to restricted feeding in orexin knock out mice. Brain Res, 1205, 47–54
  • Kohsaka A, Laposky AD, Ramsey KM, et al. (2007). High-fat diet disrupts behavioral and molecular circadian rhythms in mice. Cell Metab, 6, 414–21
  • la Fleur SE, Kalsbeek A, Wortel J, et al. (2001). A daily rhythm in glucose tolerance: a role for the suprachiasmatic nucleus. Diabetes, 50, 1237–43
  • Lambert E, Straznicky N, Schlaich M, et al. (2007). Differing pattern of sympathoexcitation in normal-weight and obesity-related hypertension. Hypertension, 50, 862–8
  • LeSauter J, Hoque N, Weintraub M, et al. (2009). Stomach ghrelin-secreting cells as food-entrainable circadian clocks. Proc Natl Acad Sci U S A, 106, 13582–7
  • Lim K, Burke SL, Armitage JA, Head GA. (2012). Comparison of blood pressure and sympathetic activity of rabbits in their home cage and the laboratory environment Exp. Physiol, 97, 1263–71
  • Lin JD, Liu C, Li S. (2008). Integration of energy metabolism and the mammalian clock. Cell Cycle, 7, 453–7
  • Ludbrook J. (1994). Repeated measurements and multiple comparisons in cardiovascular research. Cardiovasc Res, 28, 303–11
  • Maffeis C, Bonadonna RC, Consolaro A, et al. (2006). Ghrelin, insulin sensitivity and postprandial glucose disposal in overweight and obese children. Eur J Endocrinol, 154, 61–8
  • Marsh AJ, Fontes MA, Killinger S, et al. (2003). Cardiovascular responses evoked by leptin acting on neurons in the ventromedial and dorsomedial hypothalamus. Hypertension, 42, 488–93
  • Mendoza J, Pevet P, Challet E. (2008). High-fat feeding alters the clock synchronization to light. J Physiol, 586, 5901–10
  • Murphy NF, MacIntyre K, Stewart S, et al. (2006). Long-term cardiovascular consequences of obesity: 20-year follow-up of more than 15 000 middle-aged men and women (the Renfrew-Paisley study). Eur Heart J, 27, 96–106
  • Poppitt SD, Leahy FE, Keogh GF, et al. (2006). Effect of high-fat meals and fatty acid saturation on postprandial levels of the hormones ghrelin and leptin in healthy men. Eur J Clin Nutr, 60, 77–84
  • Prior LJ, Eikelis N, Armitage JA, et al. (2010a). Exposure to a high fat diet alters leptin sensitivity and elevates renal sympathetic nerve activity and arterial pressure in rabbits. Hypertension, 55, 862–8
  • Prior LJ, Head GA, Burke SL, Armitage J. (2010b). Central ghrelin administration reduces arterial pressure, heart rate and cardiovascular reactivity to acute airjet stress in rabbits. Hypertension, 55, 1507
  • Ramsey KM, Marcheva B, Kohsaka A, Bass J. (2007). The clockwork of metabolism. Annu Rev Nutr, 27, 219–40
  • Reisin E, Abel R, Modan M, et al. (1978). Effect of weight loss without salt restriction on the reduction of blood pressure in overweight hypertensive patients. N Engl J Med, 298, 1–6
  • Sanderson JD, Vanderweele DA. (1975). Analysis of feeding patterns in normal and vagotomized rabbits. Physiol Behav, 15, 357–64
  • Van Cauter E, Polonsky KS, Scheen AJ. (1997). Roles of circadian rhythmicity and sleep in human glucose regulation. Endocr Rev, 18, 716–38
  • Van den Buuse M, Malpas SC. (1997). 24-Hour recordings of blood pressure, heart rate and behavioural activity in rabbits by radiotelemetry: effects of feeding and hypertension. Physiol Behav, 62, 83–9
  • Verwaerde P, Senard JM, Galinier M, et al. (1999). Changes in short-term variability of blood pressure and heart rate during the development of obesity-associated hypertension in high-fat fed dogs. J Hypertens, 17, 1135–43
  • Vollenweider P, Tappy L, Randin D, et al. (1993). Differential effects of hyperinsulinemia and carbohydrate metabolism on sympathetic nerve activity and muscle blood flow in humans. J Clin Invest, 92, 147–54

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