361
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

Studying the effects of dietary body weight-adjusted acute tryptophan depletion on punishment-related behavioral inhibition

, , , , , , , & show all
Article: 28443 | Received 05 May 2015, Accepted 23 Jun 2015, Published online: 11 Aug 2015

References

  • Naughton M, Mulrooney JB, Leonard BE. A review of the role of serotonin receptors in psychiatric disorders. Hum Psychopharmacol. 2000; 15: 397–415. [PubMed Abstract].
  • Leibowitz SF. The role of serotonin in eating disorders. Drugs. 1990; 39(Suppl 3): 33–48.
  • Quist JF, Barr CL, Schachar R, Roberts W, Malone M, Tannock R, etal. The serotonin 5-HT1B receptor gene and attention deficit hyperactivity disorder. Mol Psychiatry. 2003; 8: 98–102.
  • Soubrié P. Reconciling the role of central serotonin neurons in human and animal behavior. Behav Brain Sci. 1986; 9: 319.
  • Deakin JF, Graeff FG. 5-HT and mechanisms of defence. J Psychopharmacol. 1991; 5: 305–15.
  • Coccaro EF, Kavoussi RJ. Neuropsychopharmacologic challenge in biological psychiatry. Clin Chem. 1994; 40: 319–27.
  • Young SN, Smith SE, Pihl RO, Ervin FR. Tryptophan depletion causes a rapid lowering of mood in normal males. Psychopharmacology. 1985; 87: 173–7.
  • Biskup CS, Sánchez CL, Arrant A, Van Swearingen AE, Kuhn C, Zepf FD. Effects of acute tryptophan depletion on brain serotonin function and concentrations of dopamine and norepinephrine in C57BL/6J and BALB/cJ mice. PLoS One. 2012; 7: e35916.
  • Dingerkus VL, Gaber TJ, Helmbold K, Bubenzer S, Eisert A, Sánchez CL, etal. Acute tryptophan depletion in accordance with body weight: influx of amino acids across the blood-brain barrier. J Neural Transm. 2012; 119: 1037–45.
  • Zepf FD, Dingerkus VL, Helmbold K, Bubenzer-Busch S, Biskup CS, Herpertz-Dahlmann B, etal. Effects of a short-term reduction in brain serotonin synthesis on the availability of the soluble leptin receptor in healthy women. J Neural Transm. 2015; 122: 343–8.
  • Zepf FD, Hood S, Guillemin GJ. Food and your mood: nutritional psychiatry. The Lancet Psychiatry. 2015; 2: 7e19. doi: http://dx.doi.org/10.1016/S2215-0366(15)00241-2 .
  • Zepf FD. Acute tryptophan depletion – a translational research method for studying the impact of central nervous system serotonin function. Acta Psychiatr Scand. 2013; 128: 105–6.
  • Zimmermann M, Grabemann M, Mette C, Abdel-Hamid M, Uekermann J, Kraemer M, etal. The effects of acute tryptophan depletion on reactive aggression in adults with attention-deficit/hyperactivity disorder (ADHD) and healthy controls. PLoS One. 2012; 7: e32023.
  • Kötting WF, Bubenzer S, Helmbold K, Eisert A, Gaber TJ, Zepf FD. Effects of tryptophan depletion on reactive aggression and aggressive decision-making in young people with ADHD. Acta Psychiatr Scand. 2013; 128: 114–23.
  • Mette C, Zimmermann M, Grabemann M, Abdel-Hamid M, Uekermann J, Biskup CS, etal. The impact of acute tryptophan depletion on attentional performance in adult patients with ADHD. Acta Psychiatr Scand. 2013; 128: 124–32.
  • Helmbold K, Bubenzer S, Dahmen B, Eisert A, Gaber TJ, Habel U, etal. Influence of acute tryptophan depletion on verbal declarative episodic memory in young adult females. Amino Acids. 2013; 45: 1207–19.
  • Hildebrand P, Königschulte W, Gaber TJ, Bubenzer-Busch S, Helmbold K, Biskup CS, etal. Effects of dietary tryptophan and phenylalanine-tyrosine depletion on phasic alertness in healthy adults – a pilot study. Food Nutr Res. 2015; 59: 26407. doi: http://dx.doi.org/10.3402/fnr.v59.26407 .
  • Grabemann M, Mette C, Zimmermann M, Heinrich V, Uekermann J, Wiltfang J, etal. No clear effects of acute tryptophan depletion on processing affective prosody in male adults with ADHD. Acta Psychiatr Scand. 2013; 128: 142–8.
  • Mendelsohn D, Riedel WJ, Sambeth A. Effects of acute tryptophan depletion on memory, attention and executive functions: a systematic review. Neurosci Biobehav Rev. 2009; 33: 926–52.
  • Sánchez CL, Biskup CS, Herpertz S, Gaber TJ, Kuhn CM, Hood SH, etal. The role of serotonin (5-HT) in behavioral control: findings from animal research and clinical implications. Int J Neuropsychopharmacol. 2015; 1–3. doi: 10.1093/ijnp/pyv050.
  • Crockett MJ, Clark L, Robbins TW. Reconciling the role of serotonin in behavioral inhibition and aversion: acute tryptophan depletion abolishes punishment-induced inhibition in humans. J Neurosci. 2009; 29: 11993–9.
  • Stadler C, Zepf FD, Demisch L, Schmitt M, Landgraf M, Poustka F. Influence of rapid tryptophan depletion on laboratory-provoked aggression in children with ADHD. Neuropsychobiology. 2007; 56: 104–10.
  • Zepf FD, Stadler C, Demisch L, Schmitt M, Landgraf M, Poustka F. Serotonergic functioning and trait-impulsivity in influence of rapid tryptophan depletion. Hum Psychopharmacol. 2008; 23: 43–51.
  • Robinson OJ, Cools R, Sahakian BJ. Tryptophan depletion disinhibits punishment but not reward prediction: implications for resilience. Psychopharmacology. 2012; 219: 599–605.
  • Nishizawa S, Benkelfat C, Young SN, Leyton M, Mzengeza S, de Montigny C, etal. Differences between males and females in rates of serotonin synthesis in human brain. Proc Natl Acad Sci USA. 1997; 94: 5308–13.
  • Demal U. SKIDPIT light – screening Bogen. 1999. University of Vienna..
  • Swets J, Tanner WP, Birdsall TG. Decision processes in perception. Psychol Rev. 1961; 68: 301–40.
  • Kewitz A. Biochemische Untersuchungen zur Optimierung des ‘Rapid Tryptophan Depletion-Test’ (RTD) – Eine physiologische Methode zur akuten Verminderung der zentralnervösen Serotonin-Synthese in der psychobiologischen Forschung. Doctoral Thesis; 2002; Johann Wolfgang Goethe-University, Frankfurt am Main, Germany.
  • Fleming SM, Whiteley L, Hulme OJ, Sahani M, Dolan RJ. Effects of category-specific costs on neural systems for perceptual decision-making. J Neurophysiol. 2010; 103: 3238–47.
  • Helmbold K, Zvyagintsev M, Dahmen B, Bubenzer-Busch S, Gaber TJ, Crockett MJ, etal. Effects of serotonin depletion on punishment processing in the orbitofrontal and anterior cingulate cortices of healthy women. Eur Neuropsychopharmacol. 2015; 25: 846–56.
  • Biskup CS, Gaber T, Helmbold K, Bubenzer-Busch S, Zepf FD. Amino acid challenge and depletion techniques in human functional neuroimaging studies: an overview. Amino Acids. 2015; 47: 651–83.
  • Van Donkelaar EL, Blokland A, Ferrington L, Kelly PA, Steinbusch HW, Prickaerts J. Mechanism of acute tryptophan depletion: is it only serotonin?. Mol Psychiatry. 2011; 16: 695–713.
  • Crockett MJ, Clark L, Apergis-Schoute AM, Morein-Zamir S, Robbins TW. Serotonin modulates the effects of Pavlovian aversive predictions on response vigor. Neuropsychopharmacolgy. 2012; 37: 2244–52.
  • Luciana M, Burgund ED, Berman M, Hanson KL. Effects of tryptophan loading on verbal, spatial and affective working memory functions in healthy adults. J Psychopharmacol. 2001; 15: 219–30.
  • Stewart ME, Deary IJ, Ebmeier KP. Neuroticism as a predictor of mood change: the effects of tryptophan depletion. Br J Psychiatry. 2002; 181: 242–7.
  • Gallagher P, Massey AE, Young AH, McAllister-Williams RH. Effects of acute tryptophan depletion on executive function in healthy male volunteers. BMC Psychiatry. 2003; 3: 10.
  • Scholtissen B, Verhey FRJ, Adam JJ, Prickaerts J, Leentjens AFG. Effects of acute tryptophan depletion on cognition, memory and motor performance in Parkinson's disease. J Neurol Sci. 2006; 248: 259–65.
  • Schmitt JA, Jorissen BL, Sobczak S, van Boxtel MP, Hogervorst E, Deutz NE, etal. Tryptophan depletion impairs memory consolidation but improves focussed attention in healthy young volunteers. J Psychopharmacol. 2000; 14: 21–9.
  • Evers EA, Cools R, Clark L, van der Veen FM, Jolles J, Sahakian BJ, etal. Serotonergic modulation of prefrontal cortex during negative feedback in probabilistic reversal learning. Neuropsychopharmacology. 2005; 30: 1138–47.
  • Scholes KE, Harrison BJ, O'Neill BV, Leung S, Croft RJ, Pipingas A, etal. Acute serotonin and dopamine depletion improves attentional control: findings from the stroop task. Neuropsychopharmacology. 2007; 32: 1600–10.
  • Williams JHG, Perrett DI, Waiter GD, Pechey S. Differential effects of tryptophan depletion on emotion processing according to face direction. Soc Cogn Affect Neurosci. 2007; 2: 264–73.
  • Golightly KL, Lloyd JA, Hobson JE, Gallagher P, Mercer G, Young AH. Acute tryptophan depletion in schizophrenia. Psychol Med. 2001; 31: 75–84.
  • Merens W, Booij L, Haffmans PJ, van der Does A. The effects of experimentally lowered serotonin function on emotional information processing and memory in remitted depressed patients. J Psychopharmacol. 2008; 22: 653–62.
  • LeMarquand DG, Benkelfat C, Pihl RO, Palmour RM, Young SN. Behavioral disinhibition induced by tryptophan depletion in nonalcoholic young men with multigenerational family histories of paternal alcoholism. Am J Psychiatry. 1999; 156: 1771–9.
  • Amin Z, Gueorguieva R, Cappiello A, Czarkowski KA, Stiklus S, Anderson GM, etal. Estradiol and tryptophan depletion interact to modulate cognition in menopausal women. Neuropsychopharmacology. 2006; 31: 2489–97.
  • Schultz W. Getting formal with dopamine and reward. Neuron. 2002; 36: 241–63.
  • Daw ND, Kakade S, Dayan P. Opponent interactions between serotonin and dopamine. Neural Netw. 2002; 15: 603–16.
  • Walter H, Abler B, Ciaramidaro A, Erk S. Motivating forces of human actions. Neuroimaging reward and social interaction. Brain Res Bull. 2005; 67: 368–81.
  • Izuma K, Saito DN, Sadato N. Processing of social and monetary rewards in the human striatum. Neuron. 2008; 58: 284–94.
  • Lin A, Adolphs R, Rangel A. Social and monetary reward learning engage overlapping neural substrates. Soc Cogn Affect Neurosci. 2012; 7: 274–81.
  • Resnik J, Sobel N, Paz R. Auditory aversive learning increases discrimination thresholds. Nat Neurosci. 2011; 14: 791–6.
  • Laufer O, Paz R. Monetary loss alters perceptual thresholds and compromises future decisions via amygdala and prefrontal networks. J Neurosci. 2012; 32: 6304–11.
  • Yacubian J, Gläscher J, Schroeder K, Sommer T, Braus DF, Büchel C. Dissociable systems for gain- and loss-related value predictions and errors of prediction in the human brain. J Neurosci. 2006; 26: 9530–7.
  • Liu X, Powell DK, Wang H, Gold BT, Corbly CR, Joseph JE. Functional dissociation in frontal and striatal areas for processing of positive and negative reward information. J Neurosci. 2007; 7: 4587–97.
  • Sambeth A, Blokland A, Harmer CJ, Kilkens TO, Nathan PJ, Porter RJ, etal. Sex differences in the effect of acute tryptophan depletion on declarative episodic memory: a pooled analysis of nine studies. Neurosci Biobehav Rev. 2007; 31: 516–29.
  • Bless EP, McGinnis KA, Mitchell AL, Hartwell A, Mitchell JB. The effects of gonadal steroids on brain stimulation reward in female rats. Behav Brain Res. 1997; 82: 235–44.
  • Murphy FC, Smith KA, Cowen PJ, Robbins TW, Sahakian BJ. The effects of tryptophan depletion on cognitive and affective processing in healthy volunteers. Psychopharmacology. 2002; 163: 42–53.
  • Ellenbogen MA, Young SN, Dean P, Palmour RM, Benkelfat C. Mood response to acute tryptophan depletion in healthy volunteers: sex differences and temporal stability. Neuropsychopharmacology. 1996; 15: 465–74.
  • Smith K, Clifford E. Effect of tryptophan depletion on mood in male and female volunteers: a pilot study. Hum Psychopharmacol. 1997; 12: 111–17.
  • Walderhaug E, Magnusson A, Neumeister A, Lappalainen J, Lunde H, Refsum H, etal. Interactive effects of sex and 5-HTTLPR on mood and impulsivity during tryptophan depletion in healthy people. Biol Psychiatry. 2007; 62: 593–9.
  • Spreckelmeyer KN, Krach S, Kohls G, Rademacher L, Irmak A, Konrad K, etal. Anticipation of monetary and social reward differently activates mesolimbic brain structures in men and women. Soc Cogn Affect Neurosci. 2009; 4: 158–65.