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Erschienen in: Brain Structure and Function 6/2018

27.04.2018 | Original Article

Neural substrates of fear-induced hypophagia in male and female rats

verfasst von: C. J. Reppucci, G. D. Petrovich

Erschienen in: Brain Structure and Function | Ausgabe 6/2018

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Abstract

Cessation of eating under fear is an adaptive response that aids survival by prioritizing the expression of defensive behaviors over feeding behavior. However, this response can become maladaptive when persistent. Thus, accurate mediation of the competition between fear and feeding is important in health and disease; yet, the underlying neural substrates are largely unknown. The current study identified brain regions that were recruited when a fear cue inhibited feeding in male and female rats. We used a previously established behavioral paradigm to elicit hypophagia with a conditioned cue for footshocks, and Fos imaging to map activation patterns during this behavior. We found that distinct patterns of recruitment were associated with feeding and fear expression, and that these patterns were similar in males and females except within the medial prefrontal cortex (mPFC). In both sexes, food consumption was associated with activation of cell groups in the central amygdalar nucleus, hypothalamus, and dorsal vagal complex, and exposure to food cues was associated with activation of the anterior basolateral amygdalar nucleus. In contrast, fear expression was associated with activation of the lateral and posterior basomedial amygdalar nuclei. Interestingly, selective recruitment of the mPFC in females, but not in males, was associated with both feeding and freezing behavior, suggesting sex differences in the neuronal processing underlying the competition between feeding and fear. This study provided the first evidence of the neural network mediating fear-induced hypophagia, and important functional activation maps for future interrogation of the underlying neural substrates.
Literatur
Zurück zum Zitat Amano T, Duvarci S, Popa D, Pare D (2011) The fear circuit revisited: contributions of the basal amygdala nuclei to conditioned fear. J Neurosci 31:15481–15489PubMedPubMedCentralCrossRef Amano T, Duvarci S, Popa D, Pare D (2011) The fear circuit revisited: contributions of the basal amygdala nuclei to conditioned fear. J Neurosci 31:15481–15489PubMedPubMedCentralCrossRef
Zurück zum Zitat Anderson LC, Petrovich GD (2017) Sex specific recruitment of a medial prefrontal cortex-hippocampal-thalamic system during context-dependent renewal of responding to food cues in rats. Neurobiol Learn Mem 139:11–21PubMedCrossRef Anderson LC, Petrovich GD (2017) Sex specific recruitment of a medial prefrontal cortex-hippocampal-thalamic system during context-dependent renewal of responding to food cues in rats. Neurobiol Learn Mem 139:11–21PubMedCrossRef
Zurück zum Zitat Anderson LC, Petrovich GD (2018) Ventromedial prefrontal cortex mediates sex differences in persistent cognitive drive for food. Sci Rep 8(1):2230PubMedPubMedCentralCrossRef Anderson LC, Petrovich GD (2018) Ventromedial prefrontal cortex mediates sex differences in persistent cognitive drive for food. Sci Rep 8(1):2230PubMedPubMedCentralCrossRef
Zurück zum Zitat Anglada-Figueroa D, Quirk GJ (2005) Lesions of the basal amygdala block expression of conditioned fear but not extinction. J Neurosci 25:9680–9685PubMedCrossRefPubMedCentral Anglada-Figueroa D, Quirk GJ (2005) Lesions of the basal amygdala block expression of conditioned fear but not extinction. J Neurosci 25:9680–9685PubMedCrossRefPubMedCentral
Zurück zum Zitat Asarian L, Geary N (2013) Sex differences in the physiology of eating. Am J Physiol Regul Integr Comp Physiol 305:R1215-1267CrossRef Asarian L, Geary N (2013) Sex differences in the physiology of eating. Am J Physiol Regul Integr Comp Physiol 305:R1215-1267CrossRef
Zurück zum Zitat Beck CH, Fibiger HC (1995) Conditioned fear-induced changes in behavior and in the expression of the immediate early gene c-fos: with and without diazepam pretreatment. J Neurosci 15:709–720PubMedCrossRefPubMedCentral Beck CH, Fibiger HC (1995) Conditioned fear-induced changes in behavior and in the expression of the immediate early gene c-fos: with and without diazepam pretreatment. J Neurosci 15:709–720PubMedCrossRefPubMedCentral
Zurück zum Zitat Becker J, Taylor J (2008) Sex differences in motivation. In: Becker J, Berkley K, Geary N, Hampson E, Herman J, Young E (eds) Sex differences in the brain from genes to behavior. Oxford University Press, New York, pp 177–199 Becker J, Taylor J (2008) Sex differences in motivation. In: Becker J, Berkley K, Geary N, Hampson E, Herman J, Young E (eds) Sex differences in the brain from genes to behavior. Oxford University Press, New York, pp 177–199
Zurück zum Zitat Becker JB, Monteggia LM, Perrot-Sinal TS, Romeo RD, Taylor JR, Yehuda R, Bale TL (2007) Stress and disease: is being female a predisposing factor? J Neurosci 27:11851–11855PubMedCrossRefPubMedCentral Becker JB, Monteggia LM, Perrot-Sinal TS, Romeo RD, Taylor JR, Yehuda R, Bale TL (2007) Stress and disease: is being female a predisposing factor? J Neurosci 27:11851–11855PubMedCrossRefPubMedCentral
Zurück zum Zitat Berthoud HR, Münzberg H (2011) The lateral hypothalamus as integrator of metabolic and environmental needs: from electrical self-stimulation to opto-genetics. Physiol Behav 104:29–39PubMedPubMedCentralCrossRef Berthoud HR, Münzberg H (2011) The lateral hypothalamus as integrator of metabolic and environmental needs: from electrical self-stimulation to opto-genetics. Physiol Behav 104:29–39PubMedPubMedCentralCrossRef
Zurück zum Zitat Blair HT, Sotres-Bayon F, Moita MA, Ledoux JE (2005) The lateral amygdala processes the value of conditioned and unconditioned aversive stimuli. Neuroscience 133:561–569PubMedCrossRef Blair HT, Sotres-Bayon F, Moita MA, Ledoux JE (2005) The lateral amygdala processes the value of conditioned and unconditioned aversive stimuli. Neuroscience 133:561–569PubMedCrossRef
Zurück zum Zitat Blanchard RJ, Blanchard DC (1969) Crouching as an index of fear. J Comp Physiol Psychol 67:370–375PubMedCrossRef Blanchard RJ, Blanchard DC (1969) Crouching as an index of fear. J Comp Physiol Psychol 67:370–375PubMedCrossRef
Zurück zum Zitat Bouton ME, Bolles RC (1980) Conditioned fear assessed by freezing and by the suppression of 3 different baselines. Animal Learning Behavior 8:429–434CrossRef Bouton ME, Bolles RC (1980) Conditioned fear assessed by freezing and by the suppression of 3 different baselines. Animal Learning Behavior 8:429–434CrossRef
Zurück zum Zitat Bull LS, Pitts GC (1971) Gastric capacity and energy absorption in the force-fed rat. J Nutr 101:593–596PubMedCrossRef Bull LS, Pitts GC (1971) Gastric capacity and energy absorption in the force-fed rat. J Nutr 101:593–596PubMedCrossRef
Zurück zum Zitat Cai H, Haubensak W, Anthony TE, Anderson DJ (2014) Central amygdala PKC-delta(+) neurons mediate the influence of multiple anorexigenic signals. Nat Neurosci 17:1240–1248PubMedPubMedCentralCrossRef Cai H, Haubensak W, Anthony TE, Anderson DJ (2014) Central amygdala PKC-delta(+) neurons mediate the influence of multiple anorexigenic signals. Nat Neurosci 17:1240–1248PubMedPubMedCentralCrossRef
Zurück zum Zitat Campbell EJ, Barker DJ, Nasser HM, Kaganovsky K, Dayas CV, Marchant NJ (2017) Cue-induced food seeking after punishment is associated with increased Fos expression in the lateral hypothalamus and basolateral and medial amygdala. Behav Neurosci 131:155–167PubMedCrossRefPubMedCentral Campbell EJ, Barker DJ, Nasser HM, Kaganovsky K, Dayas CV, Marchant NJ (2017) Cue-induced food seeking after punishment is associated with increased Fos expression in the lateral hypothalamus and basolateral and medial amygdala. Behav Neurosci 131:155–167PubMedCrossRefPubMedCentral
Zurück zum Zitat Campese VD, Gonzaga R, Moscarello JM, LeDoux JE (2015) Modulation of instrumental responding by a conditioned threat stimulus requires lateral and central amygdala. Front Behav Neurosci 9:293PubMedPubMedCentralCrossRef Campese VD, Gonzaga R, Moscarello JM, LeDoux JE (2015) Modulation of instrumental responding by a conditioned threat stimulus requires lateral and central amygdala. Front Behav Neurosci 9:293PubMedPubMedCentralCrossRef
Zurück zum Zitat Cannon WB (1915) Bodily changes in pain, hunger, fear, and rage; an account of recent researches into the function of emotional excitement. D. Appleton and Company, New YorkCrossRef Cannon WB (1915) Bodily changes in pain, hunger, fear, and rage; an account of recent researches into the function of emotional excitement. D. Appleton and Company, New YorkCrossRef
Zurück zum Zitat Cassell MD, Gray TS, Kiss JZ (1986) Neuronal architecture in the rat central nucleus of the amygdala: a cytological, hodological, and immunocytochemical study. J Comp Neurol 246:478–499PubMedCrossRef Cassell MD, Gray TS, Kiss JZ (1986) Neuronal architecture in the rat central nucleus of the amygdala: a cytological, hodological, and immunocytochemical study. J Comp Neurol 246:478–499PubMedCrossRef
Zurück zum Zitat Choi DL, Davis JF, Fitzgerald ME, Benoit SC (2010) The role of orexin-A in food motivation, reward-based feeding behavior and food-induced neuronal activation in rats. Neuroscience 167:11–20PubMedCrossRef Choi DL, Davis JF, Fitzgerald ME, Benoit SC (2010) The role of orexin-A in food motivation, reward-based feeding behavior and food-induced neuronal activation in rats. Neuroscience 167:11–20PubMedCrossRef
Zurück zum Zitat Choy VJ, Watkins WB (1977) Immunocytochemical study of the hypothalamo-neurohypophysial system. II. Distribution of neurophysin, vasopressin and oxytocin in the normal and osmotically stimulated rat. Cell Tissue Res 180:467–490PubMedCrossRef Choy VJ, Watkins WB (1977) Immunocytochemical study of the hypothalamo-neurohypophysial system. II. Distribution of neurophysin, vasopressin and oxytocin in the normal and osmotically stimulated rat. Cell Tissue Res 180:467–490PubMedCrossRef
Zurück zum Zitat Cole S, Powell DJ, Petrovich GD (2013) Differential recruitment of distinct amygdalar nuclei across appetitive associative learning. Learn Mem 20:295–299PubMedPubMedCentralCrossRef Cole S, Powell DJ, Petrovich GD (2013) Differential recruitment of distinct amygdalar nuclei across appetitive associative learning. Learn Mem 20:295–299PubMedPubMedCentralCrossRef
Zurück zum Zitat Cole S, Hobin MP, Petrovich GD (2015a) Appetitive associative learning recruits a distinct network with cortical, striatal, and hypothalamic regions. Neuroscience 286:187–202PubMedCrossRef Cole S, Hobin MP, Petrovich GD (2015a) Appetitive associative learning recruits a distinct network with cortical, striatal, and hypothalamic regions. Neuroscience 286:187–202PubMedCrossRef
Zurück zum Zitat Cole S, Mayer HS, Petrovich GD (2015b) Orexin/Hypocretin-1 receptor antagonism selectively reduces cue-induced feeding in sated rats and recruits medial prefrontal cortex and thalamus. Scientific reports 5:16143PubMedPubMedCentralCrossRef Cole S, Mayer HS, Petrovich GD (2015b) Orexin/Hypocretin-1 receptor antagonism selectively reduces cue-induced feeding in sated rats and recruits medial prefrontal cortex and thalamus. Scientific reports 5:16143PubMedPubMedCentralCrossRef
Zurück zum Zitat Courtin J, Bienvenu TC, Einarsson EO, Herry C (2013) Medial prefrontal cortex neuronal circuits in fear behavior. Neuroscience 240:219–242PubMedCrossRef Courtin J, Bienvenu TC, Einarsson EO, Herry C (2013) Medial prefrontal cortex neuronal circuits in fear behavior. Neuroscience 240:219–242PubMedCrossRef
Zurück zum Zitat Cover KK, Maeng LY, Lebron-Milad K, Milad MR (2014) Mechanisms of estradiol in fear circuitry: implications for sex differences in psychopathology. Transl Psychiatry 4:e422PubMedPubMedCentralCrossRef Cover KK, Maeng LY, Lebron-Milad K, Milad MR (2014) Mechanisms of estradiol in fear circuitry: implications for sex differences in psychopathology. Transl Psychiatry 4:e422PubMedPubMedCentralCrossRef
Zurück zum Zitat Dalley JW, Cardinal RN, Robbins TW (2004) Prefrontal executive and cognitive functions in rodents: neural and neurochemical substrates. Neurosci Biobehav Rev 28:771–784PubMedCrossRef Dalley JW, Cardinal RN, Robbins TW (2004) Prefrontal executive and cognitive functions in rodents: neural and neurochemical substrates. Neurosci Biobehav Rev 28:771–784PubMedCrossRef
Zurück zum Zitat Danielsen EH, Magnuson DJ, Gray TS (1989) The central amygdaloid nucleus innervation of the dorsal vagal complex in rat: a Phaseolus vulgaris leucoagglutinin lectin anterograde tracing study. Brain Res Bull 22:705–715PubMedCrossRef Danielsen EH, Magnuson DJ, Gray TS (1989) The central amygdaloid nucleus innervation of the dorsal vagal complex in rat: a Phaseolus vulgaris leucoagglutinin lectin anterograde tracing study. Brain Res Bull 22:705–715PubMedCrossRef
Zurück zum Zitat Day HE, Kryskow EM, Nyhuis TJ, Herlihy L, Campeau S (2008) Conditioned fear inhibits c-fos mRNA expression in the central extended amygdala. Brain Res 1229:137–146PubMedPubMedCentralCrossRef Day HE, Kryskow EM, Nyhuis TJ, Herlihy L, Campeau S (2008) Conditioned fear inhibits c-fos mRNA expression in the central extended amygdala. Brain Res 1229:137–146PubMedPubMedCentralCrossRef
Zurück zum Zitat Dong HW, Petrovich GD, Swanson LW (2001) Topography of projections from amygdala to bed nuclei of the stria terminalis. Brain Res Rev 38:192–246PubMedCrossRef Dong HW, Petrovich GD, Swanson LW (2001) Topography of projections from amygdala to bed nuclei of the stria terminalis. Brain Res Rev 38:192–246PubMedCrossRef
Zurück zum Zitat Douglass AM et al (2017) Central amygdala circuits modulate food consumption through a positive-valence mechanism. Nat Neurosci 20:1384–1394PubMedCrossRef Douglass AM et al (2017) Central amygdala circuits modulate food consumption through a positive-valence mechanism. Nat Neurosci 20:1384–1394PubMedCrossRef
Zurück zum Zitat Ehrlich I, Humeau Y, Grenier F, Ciocchi S, Herry C, Luthi A (2009) Amygdala inhibitory circuits and the control of fear memory. Neuron 62:757–771PubMedCrossRef Ehrlich I, Humeau Y, Grenier F, Ciocchi S, Herry C, Luthi A (2009) Amygdala inhibitory circuits and the control of fear memory. Neuron 62:757–771PubMedCrossRef
Zurück zum Zitat Elmquist JK, Elias CF, Saper CB (1999) From lesions to leptin: hypothalamic control of food intake and body weight. Neuron 22:221–232PubMedCrossRef Elmquist JK, Elias CF, Saper CB (1999) From lesions to leptin: hypothalamic control of food intake and body weight. Neuron 22:221–232PubMedCrossRef
Zurück zum Zitat Fanselow MS (1984) What is conditioned fear? TINS 7:460–462 Fanselow MS (1984) What is conditioned fear? TINS 7:460–462
Zurück zum Zitat Fukushima A, Hagiwara H, Fujioka H, Kimura F, Akema T, Funabashi T (2015) Sex differences in feeding behavior in rats: the relationship with neuronal activation in the hypothalamus. Front Neurosci 9:88PubMedPubMedCentralCrossRef Fukushima A, Hagiwara H, Fujioka H, Kimura F, Akema T, Funabashi T (2015) Sex differences in feeding behavior in rats: the relationship with neuronal activation in the hypothalamus. Front Neurosci 9:88PubMedPubMedCentralCrossRef
Zurück zum Zitat Gruene TM, Roberts E, Thomas V, Ronzio A, Shansky RM (2014) Sex-specific neuroanatomical correlates of fear expression in prefrontal-amygdala circuits. Biol Psychiatry 78:186–193PubMedPubMedCentralCrossRef Gruene TM, Roberts E, Thomas V, Ronzio A, Shansky RM (2014) Sex-specific neuroanatomical correlates of fear expression in prefrontal-amygdala circuits. Biol Psychiatry 78:186–193PubMedPubMedCentralCrossRef
Zurück zum Zitat Hahn JD, Swanson LW (2010) Distinct patterns of neuronal inputs and outputs of the juxtaparaventricular and suprafornical regions of the lateral hypothalamic area in the male rat. Brain Res Rev 64:14–103PubMedPubMedCentralCrossRef Hahn JD, Swanson LW (2010) Distinct patterns of neuronal inputs and outputs of the juxtaparaventricular and suprafornical regions of the lateral hypothalamic area in the male rat. Brain Res Rev 64:14–103PubMedPubMedCentralCrossRef
Zurück zum Zitat Hahn JD, Swanson LW (2015) Connections of the juxtaventromedial region of the lateral hypothalamic area in the male rat. Front Syst Neurosci 9:66PubMedPubMedCentralCrossRef Hahn JD, Swanson LW (2015) Connections of the juxtaventromedial region of the lateral hypothalamic area in the male rat. Front Syst Neurosci 9:66PubMedPubMedCentralCrossRef
Zurück zum Zitat Hall J, Thomas KL, Everitt BJ (2001) Fear memory retrieval induces CREB phosphorylation and Fos expression within the amygdala. Eur J Neurosci 13:1453–1458PubMedCrossRef Hall J, Thomas KL, Everitt BJ (2001) Fear memory retrieval induces CREB phosphorylation and Fos expression within the amygdala. Eur J Neurosci 13:1453–1458PubMedCrossRef
Zurück zum Zitat Holland PC, Hsu M (2014) Role of amygdala central nucleus in the potentiation of consuming and instrumental lever-pressing for sucrose by cues for the presentation or interruption of sucrose delivery in rats. Behav Neurosci 128:71–82PubMedPubMedCentralCrossRef Holland PC, Hsu M (2014) Role of amygdala central nucleus in the potentiation of consuming and instrumental lever-pressing for sucrose by cues for the presentation or interruption of sucrose delivery in rats. Behav Neurosci 128:71–82PubMedPubMedCentralCrossRef
Zurück zum Zitat Holmes NM, Westbrook RF (2014) Appetitive context conditioning proactively, but transiently, interferes with expression of counterconditioned context fear. Learn Mem 21:597–605PubMedPubMedCentralCrossRef Holmes NM, Westbrook RF (2014) Appetitive context conditioning proactively, but transiently, interferes with expression of counterconditioned context fear. Learn Mem 21:597–605PubMedPubMedCentralCrossRef
Zurück zum Zitat Kirouac GJ (2015) Placing the paraventricular nucleus of the thalamus within the brain circuits that control behavior. Neurosci Biobehav Rev 56:315–329PubMedCrossRef Kirouac GJ (2015) Placing the paraventricular nucleus of the thalamus within the brain circuits that control behavior. Neurosci Biobehav Rev 56:315–329PubMedCrossRef
Zurück zum Zitat Kwon JT, Nakajima R, Kim HS, Jeong Y, Augustine GJ, Han JH (2014) Optogenetic activation of presynaptic inputs in lateral amygdala forms associative fear memory. Learn Mem 21:627–633PubMedPubMedCentralCrossRef Kwon JT, Nakajima R, Kim HS, Jeong Y, Augustine GJ, Han JH (2014) Optogenetic activation of presynaptic inputs in lateral amygdala forms associative fear memory. Learn Mem 21:627–633PubMedPubMedCentralCrossRef
Zurück zum Zitat Lebron-Milad K, Milad MR (2012) Sex differences, gonadal hormones and the fear extinction network: implications for anxiety disorders. Biol Mood Anxiety Disord 2:3PubMedPubMedCentralCrossRef Lebron-Milad K, Milad MR (2012) Sex differences, gonadal hormones and the fear extinction network: implications for anxiety disorders. Biol Mood Anxiety Disord 2:3PubMedPubMedCentralCrossRef
Zurück zum Zitat Li S, Kirouac GJ (2012) Sources of inputs to the anterior and posterior aspects of the paraventricular nucleus of the thalamus. Brain Struct Funct 217:257–273PubMedCrossRef Li S, Kirouac GJ (2012) Sources of inputs to the anterior and posterior aspects of the paraventricular nucleus of the thalamus. Brain Struct Funct 217:257–273PubMedCrossRef
Zurück zum Zitat Li J et al (2012) Increased sucrose intake and corresponding c-Fos in amygdala and parabrachial nucleus of dietary obese rats. Neurosci Lett 525:111–116PubMedCrossRef Li J et al (2012) Increased sucrose intake and corresponding c-Fos in amygdala and parabrachial nucleus of dietary obese rats. Neurosci Lett 525:111–116PubMedCrossRef
Zurück zum Zitat Li Y, Dong X, Li S, Kirouac GJ (2014) Lesions of the posterior paraventricular nucleus of the thalamus attenuate fear expression. Front Behav Neurosci 8:94PubMedPubMedCentral Li Y, Dong X, Li S, Kirouac GJ (2014) Lesions of the posterior paraventricular nucleus of the thalamus attenuate fear expression. Front Behav Neurosci 8:94PubMedPubMedCentral
Zurück zum Zitat Liubashina O, Jolkkonen E, Pitkanen A (2000) Projections from the central nucleus of the amygdala to the gastric related area of the dorsal vagal complex: a Phaseolus vulgaris-leucoagglutinin study in rat. Neurosci Lett 291:85–88PubMedCrossRef Liubashina O, Jolkkonen E, Pitkanen A (2000) Projections from the central nucleus of the amygdala to the gastric related area of the dorsal vagal complex: a Phaseolus vulgaris-leucoagglutinin study in rat. Neurosci Lett 291:85–88PubMedCrossRef
Zurück zum Zitat Marchant NJ, Densmore VS, Osborne PB (2007) Coexpression of prodynorphin and corticotrophin-releasing hormone in the rat central amygdala: evidence of two distinct endogenous opioid systems in the lateral division. J Comp Neurol 504:702–715PubMedCrossRef Marchant NJ, Densmore VS, Osborne PB (2007) Coexpression of prodynorphin and corticotrophin-releasing hormone in the rat central amygdala: evidence of two distinct endogenous opioid systems in the lateral division. J Comp Neurol 504:702–715PubMedCrossRef
Zurück zum Zitat Maren S, De Oca B, Fanselow MS (1994) Sex differences in hippocampal long-term potentiation (LTP) and Pavlovian fear conditioning in rats: positive correlation between LTP and contextual learning. Brain Res 661:25–34PubMedCrossRef Maren S, De Oca B, Fanselow MS (1994) Sex differences in hippocampal long-term potentiation (LTP) and Pavlovian fear conditioning in rats: positive correlation between LTP and contextual learning. Brain Res 661:25–34PubMedCrossRef
Zurück zum Zitat McCarthy MM, Arnold AP, Ball GF, Blaustein JD, de Vries GJ (2012) Sex differences in the brain: the not so inconvenient truth. J Neurosci 32:2241–2247PubMedPubMedCentralCrossRef McCarthy MM, Arnold AP, Ball GF, Blaustein JD, de Vries GJ (2012) Sex differences in the brain: the not so inconvenient truth. J Neurosci 32:2241–2247PubMedPubMedCentralCrossRef
Zurück zum Zitat McLean CP, Anderson ER (2009) Brave men and timid women? A review of the gender differences in fear and anxiety. Clin Psychol Rev 29:496–505PubMedCrossRef McLean CP, Anderson ER (2009) Brave men and timid women? A review of the gender differences in fear and anxiety. Clin Psychol Rev 29:496–505PubMedCrossRef
Zurück zum Zitat McLean JH, Hopkins DA (1982) Ultrastructural identification of labeled neurons in the dorsal motor nucleus of the vagus nerve following injections of horseradish peroxidase into the vagus nerve and brainstem. J Comp Neurol 206:243–252PubMedCrossRef McLean JH, Hopkins DA (1982) Ultrastructural identification of labeled neurons in the dorsal motor nucleus of the vagus nerve following injections of horseradish peroxidase into the vagus nerve and brainstem. J Comp Neurol 206:243–252PubMedCrossRef
Zurück zum Zitat Morgan JI, Curran T (1991) Stimulus-transcription coupling in the nervous system: involvement of the inducible proto-oncogenes fos and jun. Annu Rev Neurosci 14:421–451PubMedCrossRef Morgan JI, Curran T (1991) Stimulus-transcription coupling in the nervous system: involvement of the inducible proto-oncogenes fos and jun. Annu Rev Neurosci 14:421–451PubMedCrossRef
Zurück zum Zitat Moscarello JM, LeDoux JE (2013) Active avoidance learning requires prefrontal suppression of amygdala-mediated defensive reactions. J Neurosci 33:3815–3823PubMedPubMedCentralCrossRef Moscarello JM, LeDoux JE (2013) Active avoidance learning requires prefrontal suppression of amygdala-mediated defensive reactions. J Neurosci 33:3815–3823PubMedPubMedCentralCrossRef
Zurück zum Zitat Norgren R (1978) Projections from the nucleus of the solitary tract in the rat. Neuroscience 3:207–218PubMedCrossRef Norgren R (1978) Projections from the nucleus of the solitary tract in the rat. Neuroscience 3:207–218PubMedCrossRef
Zurück zum Zitat Norgren R, Smith GP (1988) Central distribution of subdiaphragmatic vagal branches in the rat. J Comp Neurol 273:207–223PubMedCrossRef Norgren R, Smith GP (1988) Central distribution of subdiaphragmatic vagal branches in the rat. J Comp Neurol 273:207–223PubMedCrossRef
Zurück zum Zitat Olszewski PK, Klockars A, Olszewska AM, Fredriksson R, Schioth HB, Levine AS (2010) Molecular, immunohistochemical, and pharmacological evidence of oxytocin’s role as inhibitor of carbohydrate but not fat intake. Endocrinology 151:4736–4744PubMedPubMedCentralCrossRef Olszewski PK, Klockars A, Olszewska AM, Fredriksson R, Schioth HB, Levine AS (2010) Molecular, immunohistochemical, and pharmacological evidence of oxytocin’s role as inhibitor of carbohydrate but not fat intake. Endocrinology 151:4736–4744PubMedPubMedCentralCrossRef
Zurück zum Zitat Orsini CA, Willis ML, Gilbert RJ, Bizon JL, Setlow B (2016) Sex differences in a rat model of risky decision making. Behav Neurosci 130:50–61PubMedCrossRef Orsini CA, Willis ML, Gilbert RJ, Bizon JL, Setlow B (2016) Sex differences in a rat model of risky decision making. Behav Neurosci 130:50–61PubMedCrossRef
Zurück zum Zitat Pare D, Quirk GJ, Ledoux JE (2004) New vistas on amygdala networks in conditioned fear. J Neurophysiol 92:1–9PubMedCrossRef Pare D, Quirk GJ, Ledoux JE (2004) New vistas on amygdala networks in conditioned fear. J Neurophysiol 92:1–9PubMedCrossRef
Zurück zum Zitat Park TH, Carr KD (1998) Neuroanatomical patterns of Fos-like immunoreactivity induced by a palatable meal and meal-paired environment in saline- and naltrexone-treated rats. Brain Res 805:169–180PubMedCrossRef Park TH, Carr KD (1998) Neuroanatomical patterns of Fos-like immunoreactivity induced by a palatable meal and meal-paired environment in saline- and naltrexone-treated rats. Brain Res 805:169–180PubMedCrossRef
Zurück zum Zitat Pei H, Sutton AK, Burnett KH, Fuller PM, Olson DP (2014) AVP neurons in the paraventricular nucleus of the hypothalamus regulate feeding. Mol Metabol 3:209–215CrossRef Pei H, Sutton AK, Burnett KH, Fuller PM, Olson DP (2014) AVP neurons in the paraventricular nucleus of the hypothalamus regulate feeding. Mol Metabol 3:209–215CrossRef
Zurück zum Zitat Petrov T, Krukoff TL, Jhamandas JH (1995) Convergent influence of the central nucleus of the amygdala and the paraventricular hypothalamic nucleus upon brainstem autonomic neurons as revealed by c-fos expression and anatomical tracing. J Neurosci Res 42:835–845PubMedCrossRef Petrov T, Krukoff TL, Jhamandas JH (1995) Convergent influence of the central nucleus of the amygdala and the paraventricular hypothalamic nucleus upon brainstem autonomic neurons as revealed by c-fos expression and anatomical tracing. J Neurosci Res 42:835–845PubMedCrossRef
Zurück zum Zitat Petrovich GD, Lougee MA (2011) Sex differences in fear-induced feeding cessation: prolonged effect in female rats. Physiol Behav 104:996–1001PubMedCrossRef Petrovich GD, Lougee MA (2011) Sex differences in fear-induced feeding cessation: prolonged effect in female rats. Physiol Behav 104:996–1001PubMedCrossRef
Zurück zum Zitat Petrovich GD, Risold PY, Swanson LW (1996) Organization of projections from the basomedial nucleus of the amygdala: a PHAL study in the rat. J Comp Neurol 374:387–420PubMedCrossRef Petrovich GD, Risold PY, Swanson LW (1996) Organization of projections from the basomedial nucleus of the amygdala: a PHAL study in the rat. J Comp Neurol 374:387–420PubMedCrossRef
Zurück zum Zitat Petrovich GD, Ross CA, Holland PC, Gallagher M (2007) Medial prefrontal cortex is necessary for an appetitive contextual conditioned stimulus to promote eating in sated rats. J Neurosci 27:6436–6441PubMedPubMedCentralCrossRef Petrovich GD, Ross CA, Holland PC, Gallagher M (2007) Medial prefrontal cortex is necessary for an appetitive contextual conditioned stimulus to promote eating in sated rats. J Neurosci 27:6436–6441PubMedPubMedCentralCrossRef
Zurück zum Zitat Petrovich GD, Ross CA, Mody P, Holland PC, Gallagher M (2009) Central, but not basolateral, amygdala is critical for control of feeding by aversive learned cues. J Neurosci 29:15205–15212PubMedPubMedCentralCrossRef Petrovich GD, Ross CA, Mody P, Holland PC, Gallagher M (2009) Central, but not basolateral, amygdala is critical for control of feeding by aversive learned cues. J Neurosci 29:15205–15212PubMedPubMedCentralCrossRef
Zurück zum Zitat Pezzone MA, Lee WS, Hoffman GE, Rabin BS (1992) Induction of c-Fos immunoreactivity in the rat forebrain by conditioned and unconditioned aversive stimuli. Brain Res 597:41–50PubMedCrossRef Pezzone MA, Lee WS, Hoffman GE, Rabin BS (1992) Induction of c-Fos immunoreactivity in the rat forebrain by conditioned and unconditioned aversive stimuli. Brain Res 597:41–50PubMedCrossRef
Zurück zum Zitat Pitkänen A, Stefanacci L, Farb CR, Go GG, LeDoux JE, Amaral DG (1995) Intrinsic connections of the rat amygdaloid complex: projections originating in the lateral nucleus. J Comp Neurol 356:288–310PubMedCrossRef Pitkänen A, Stefanacci L, Farb CR, Go GG, LeDoux JE, Amaral DG (1995) Intrinsic connections of the rat amygdaloid complex: projections originating in the lateral nucleus. J Comp Neurol 356:288–310PubMedCrossRef
Zurück zum Zitat Pitkänen A, Savander V, LeDoux JE (1997) Organization of intra-amygdaloid circuitries in the rat: an emerging framework for understanding functions of the amygdala. Trends Neurosci 20:517–523PubMedCrossRef Pitkänen A, Savander V, LeDoux JE (1997) Organization of intra-amygdaloid circuitries in the rat: an emerging framework for understanding functions of the amygdala. Trends Neurosci 20:517–523PubMedCrossRef
Zurück zum Zitat Poulin AM, Timofeeva E (2008) The dynamics of neuronal activation during food anticipation and feeding in the brain of food-entrained rats. Brain Res 1227:128–141PubMedCrossRef Poulin AM, Timofeeva E (2008) The dynamics of neuronal activation during food anticipation and feeding in the brain of food-entrained rats. Brain Res 1227:128–141PubMedCrossRef
Zurück zum Zitat Pryce CR, Lehmann J, Feldon J (1999) Effect of sex on fear conditioning is similar for context and discrete CS in Wistar, Lewis and Fischer rat strains. Pharmacol Biochem Behavior 64:753–759CrossRef Pryce CR, Lehmann J, Feldon J (1999) Effect of sex on fear conditioning is similar for context and discrete CS in Wistar, Lewis and Fischer rat strains. Pharmacol Biochem Behavior 64:753–759CrossRef
Zurück zum Zitat Quirk GJ, Likhtik E, Pelletier JG, Pare D (2003) Stimulation of medial prefrontal cortex decreases the responsiveness of central amygdala output neurons. J Neurosci 23:8800–8807PubMedCrossRefPubMedCentral Quirk GJ, Likhtik E, Pelletier JG, Pare D (2003) Stimulation of medial prefrontal cortex decreases the responsiveness of central amygdala output neurons. J Neurosci 23:8800–8807PubMedCrossRefPubMedCentral
Zurück zum Zitat Reppucci CJ (2015) The functional forebrain circuitry of fear-cue inhibited feeding in food-deprived rats: evidence from complementary pathway tracing and Fos induction maps studies (Order No. 3719611). Available from ProQuest Dissertations & Theses Global (1713683085) Reppucci CJ (2015) The functional forebrain circuitry of fear-cue inhibited feeding in food-deprived rats: evidence from complementary pathway tracing and Fos induction maps studies (Order No. 3719611). Available from ProQuest Dissertations & Theses Global (1713683085)
Zurück zum Zitat Reppucci CJ, Petrovich GD (2014) Suppressed Fos induction within the central nucleus of the amygdala corresponds with inhibited feeding in the presence of a fear-cue in male and female rats. Program No 256.10. 2014 Neuroscience Meeting Planner. Washington, DC: Society for Neuroscience Reppucci CJ, Petrovich GD (2014) Suppressed Fos induction within the central nucleus of the amygdala corresponds with inhibited feeding in the presence of a fear-cue in male and female rats. Program No 256.10. 2014 Neuroscience Meeting Planner. Washington, DC: Society for Neuroscience
Zurück zum Zitat Reppucci CJ, Petrovich GD (2016) Organization of connections between the amygdala, medial prefrontal cortex, and lateral hypothalamus: a single and double retrograde tracing study in rats. Brain Struct Funct 221:2937–2962PubMedCrossRef Reppucci CJ, Petrovich GD (2016) Organization of connections between the amygdala, medial prefrontal cortex, and lateral hypothalamus: a single and double retrograde tracing study in rats. Brain Struct Funct 221:2937–2962PubMedCrossRef
Zurück zum Zitat Reppucci CJ, Kuthyar M, Petrovich GD (2013) Contextual fear cues inhibit eating in food-deprived male and female rats. Appetite 69:186–195PubMedCrossRef Reppucci CJ, Kuthyar M, Petrovich GD (2013) Contextual fear cues inhibit eating in food-deprived male and female rats. Appetite 69:186–195PubMedCrossRef
Zurück zum Zitat Ricardo JA, Koh ET (1978) Anatomical evidence of direct projections from the nucleus of the solitary tract to the hypothalamus, amygdala, and other forebrain structures in the rat. Brain Res 153:1–26PubMedCrossRef Ricardo JA, Koh ET (1978) Anatomical evidence of direct projections from the nucleus of the solitary tract to the hypothalamus, amygdala, and other forebrain structures in the rat. Brain Res 153:1–26PubMedCrossRef
Zurück zum Zitat Ritter S, Dinh TT (1994) 2-Mercaptoacetate and 2-deoxy-d-glucose induce Fos-like immunoreactivity in rat brain. Brain Res 641:111–120PubMedCrossRef Ritter S, Dinh TT (1994) 2-Mercaptoacetate and 2-deoxy-d-glucose induce Fos-like immunoreactivity in rat brain. Brain Res 641:111–120PubMedCrossRef
Zurück zum Zitat Rogers RC, Kita H, Butcher LL, Novin D (1980) Afferent projections to the dorsal motor nucleus of the vagus. Brain Res Bull 5:365–373PubMedCrossRef Rogers RC, Kita H, Butcher LL, Novin D (1980) Afferent projections to the dorsal motor nucleus of the vagus. Brain Res Bull 5:365–373PubMedCrossRef
Zurück zum Zitat Rosen JB, Fanselow MS, Young SL, Sitcoske M, Maren S (1998) Immediate-early gene expression in the amygdala following footshock stress and contextual fear conditioning. Brain Res 796:132–142PubMedCrossRef Rosen JB, Fanselow MS, Young SL, Sitcoske M, Maren S (1998) Immediate-early gene expression in the amygdala following footshock stress and contextual fear conditioning. Brain Res 796:132–142PubMedCrossRef
Zurück zum Zitat Savander V, Go CG, Ledoux JE, Pitkänen A (1996) Intrinsic connections of the rat amygdaloid complex: projections originating in the accessory basal nucleus. J Comp Neurol 374:291–313PubMedCrossRef Savander V, Go CG, Ledoux JE, Pitkänen A (1996) Intrinsic connections of the rat amygdaloid complex: projections originating in the accessory basal nucleus. J Comp Neurol 374:291–313PubMedCrossRef
Zurück zum Zitat Sawchenko PE, Swanson LW (1983) The organization and biochemical specificity of afferent projections to the paraventricular and supraoptic nuclei. Prog Brain Res 60:19–29PubMedCrossRef Sawchenko PE, Swanson LW (1983) The organization and biochemical specificity of afferent projections to the paraventricular and supraoptic nuclei. Prog Brain Res 60:19–29PubMedCrossRef
Zurück zum Zitat Schiltz CA, Bremer QZ, Landry CF, Kelley AE (2007) Food-associated cues alter forebrain functional connectivity as assessed with immediate early gene and proenkephalin expression. BMC Biol 5:16PubMedPubMedCentralCrossRef Schiltz CA, Bremer QZ, Landry CF, Kelley AE (2007) Food-associated cues alter forebrain functional connectivity as assessed with immediate early gene and proenkephalin expression. BMC Biol 5:16PubMedPubMedCentralCrossRef
Zurück zum Zitat Schwartz MW, Woods SC, Porte D Jr, Seeley RJ, Baskin DG (2000) Central nervous system control of food intake. Nature 404:661–671PubMedCrossRef Schwartz MW, Woods SC, Porte D Jr, Seeley RJ, Baskin DG (2000) Central nervous system control of food intake. Nature 404:661–671PubMedCrossRef
Zurück zum Zitat Scicli AP, Petrovich GD, Swanson LW, Thompson RF (2004) Contextual fear conditioning is associated with lateralized expression of the immediate early gene c-fos in the central and basolateral amygdalar nuclei. Behav Neurosci 118:5–14PubMedCrossRef Scicli AP, Petrovich GD, Swanson LW, Thompson RF (2004) Contextual fear conditioning is associated with lateralized expression of the immediate early gene c-fos in the central and basolateral amygdalar nuclei. Behav Neurosci 118:5–14PubMedCrossRef
Zurück zum Zitat Senn V et al (2014) Long-range connectivity defines behavioral specificity of amygdala neurons. Neuron 81:428–437PubMedCrossRef Senn V et al (2014) Long-range connectivity defines behavioral specificity of amygdala neurons. Neuron 81:428–437PubMedCrossRef
Zurück zum Zitat Sharpe MJ et al (2017) Lateral hypothalamic GABAergic neurons encode reward predictions that are relayed to the ventral tegmental area to regulate learning. Curr Biol 27:2089–2100 (e2085)PubMedCrossRefPubMedCentral Sharpe MJ et al (2017) Lateral hypothalamic GABAergic neurons encode reward predictions that are relayed to the ventral tegmental area to regulate learning. Curr Biol 27:2089–2100 (e2085)PubMedCrossRefPubMedCentral
Zurück zum Zitat Sherwood A, Holland PC, Adamantidis A, Johnson AW (2015) Deletion of melanin concentrating hormone receptor-1 disrupts overeating in the presence of food cues. Physiol Behav 152:402–407PubMedCrossRef Sherwood A, Holland PC, Adamantidis A, Johnson AW (2015) Deletion of melanin concentrating hormone receptor-1 disrupts overeating in the presence of food cues. Physiol Behav 152:402–407PubMedCrossRef
Zurück zum Zitat Sigurdsson T, Doyere V, Cain CK, LeDoux JE (2007) Long-term potentiation in the amygdala: a cellular mechanism of fear learning and memory. Neuropharmacology 52:215–227PubMedCrossRef Sigurdsson T, Doyere V, Cain CK, LeDoux JE (2007) Long-term potentiation in the amygdala: a cellular mechanism of fear learning and memory. Neuropharmacology 52:215–227PubMedCrossRef
Zurück zum Zitat Simmons DM, Swanson LW (1993) The Nissl stain. In: Wouterlood FG (ed) Neuroscience protocols. Elsevier, Amsterdam, pp 93-050-012-001-093-050-012-007 Simmons DM, Swanson LW (1993) The Nissl stain. In: Wouterlood FG (ed) Neuroscience protocols. Elsevier, Amsterdam, pp 93-050-012-001-093-050-012-007
Zurück zum Zitat Simmons DM, Swanson LW (2009) Comparison of the spatial distribution of seven types of neuroendocrine neurons in the rat paraventricular nucleus: toward a global 3D model. J Comp Neurol 516:423–441PubMedCrossRef Simmons DM, Swanson LW (2009) Comparison of the spatial distribution of seven types of neuroendocrine neurons in the rat paraventricular nucleus: toward a global 3D model. J Comp Neurol 516:423–441PubMedCrossRef
Zurück zum Zitat Song Z, Levin BE, Stevens W, Sladek CD (2014) Supraoptic oxytocin and vasopressin neurons function as glucose and metabolic sensors. Am J Physiol Regul Integr Comp Physiol 306:R447–R456CrossRef Song Z, Levin BE, Stevens W, Sladek CD (2014) Supraoptic oxytocin and vasopressin neurons function as glucose and metabolic sensors. Am J Physiol Regul Integr Comp Physiol 306:R447–R456CrossRef
Zurück zum Zitat Swanson LW (2000) Cerebral hemisphere regulation of motivated behavior. Brain Res 886:113–164PubMedCrossRef Swanson LW (2000) Cerebral hemisphere regulation of motivated behavior. Brain Res 886:113–164PubMedCrossRef
Zurück zum Zitat Swanson LW (2004) Brain maps III: structure of the rat brain. An atlas with printed and electronic templates for data, models, and schematics, 3rd rev. edn. Elsevier, Academic Press, Amsterdam Swanson LW (2004) Brain maps III: structure of the rat brain. An atlas with printed and electronic templates for data, models, and schematics, 3rd rev. edn. Elsevier, Academic Press, Amsterdam
Zurück zum Zitat Swanson LW (2005) Anatomy of the soul as reflected in the cerebral hemispheres: neural circuits underlying voluntary control of basic motivated behaviors. J Comp Neurol 493:122–131PubMedCrossRef Swanson LW (2005) Anatomy of the soul as reflected in the cerebral hemispheres: neural circuits underlying voluntary control of basic motivated behaviors. J Comp Neurol 493:122–131PubMedCrossRef
Zurück zum Zitat Travagli RA, Hermann GE, Browning KN, Rogers RC (2006) Brainstem circuits regulating gastric function. Ann Rev Physiol 68:279–305CrossRef Travagli RA, Hermann GE, Browning KN, Rogers RC (2006) Brainstem circuits regulating gastric function. Ann Rev Physiol 68:279–305CrossRef
Zurück zum Zitat Uher R et al (2004) Medial prefrontal cortex activity associated with symptom provocation in eating disorders. Am J Psychiatry 161:1238–1246PubMedCrossRef Uher R et al (2004) Medial prefrontal cortex activity associated with symptom provocation in eating disorders. Am J Psychiatry 161:1238–1246PubMedCrossRef
Zurück zum Zitat Vandesande F, Dierickx K (1975) Identification of the vasopressin producing and of the oxytocin producing neurons in the hypothalamic magnocellular neurosecretroy system of the rat. Cell Tissue Res 164:153–162PubMedCrossRef Vandesande F, Dierickx K (1975) Identification of the vasopressin producing and of the oxytocin producing neurons in the hypothalamic magnocellular neurosecretroy system of the rat. Cell Tissue Res 164:153–162PubMedCrossRef
Zurück zum Zitat Verhagen LA, Luijendijk MC, de Groot JW, van Dommelen LP, Klimstra AG, Adan RA, Roeling TA (2011) Anticipation of meals during restricted feeding increases activity in the hypothalamus in rats. Eur J Neurosci 34:1485–1491PubMedCrossRef Verhagen LA, Luijendijk MC, de Groot JW, van Dommelen LP, Klimstra AG, Adan RA, Roeling TA (2011) Anticipation of meals during restricted feeding increases activity in the hypothalamus in rats. Eur J Neurosci 34:1485–1491PubMedCrossRef
Zurück zum Zitat Vertes RP, Hoover WB (2008) Projections of the paraventricular and paratenial nuclei of the dorsal midline thalamus in the rat. J Comp Neurol 508:212–237PubMedCrossRef Vertes RP, Hoover WB (2008) Projections of the paraventricular and paratenial nuclei of the dorsal midline thalamus in the rat. J Comp Neurol 508:212–237PubMedCrossRef
Zurück zum Zitat Wheeler DS, Wan S, Miller A, Angeli N, Adileh B, Hu W, Holland PC (2014) Role of lateral hypothalamus in two aspects of attention in associative learning. Eur J Neurosci 40:2359–2377PubMedPubMedCentralCrossRef Wheeler DS, Wan S, Miller A, Angeli N, Adileh B, Hu W, Holland PC (2014) Role of lateral hypothalamus in two aspects of attention in associative learning. Eur J Neurosci 40:2359–2377PubMedPubMedCentralCrossRef
Zurück zum Zitat Wray S, Hoffman GE (1983) Organization and interrelationship of neuropeptides in the central amygdaloid nucleus of the rat. Peptides 4:525–541PubMedCrossRef Wray S, Hoffman GE (1983) Organization and interrelationship of neuropeptides in the central amygdaloid nucleus of the rat. Peptides 4:525–541PubMedCrossRef
Zurück zum Zitat Zhang X, Cui J, Tan Z, Jiang C, Fogel R (2003) The central nucleus of the amygdala modulates gut-related neurons in the dorsal vagal complex in rats. J Physiol 553:1005–1018PubMedPubMedCentralCrossRef Zhang X, Cui J, Tan Z, Jiang C, Fogel R (2003) The central nucleus of the amygdala modulates gut-related neurons in the dorsal vagal complex in rats. J Physiol 553:1005–1018PubMedPubMedCentralCrossRef
Zurück zum Zitat Zseli G, Vida B, Szilvasy-Szabo A, Toth M, Lechan RM, Fekete C (2017) Neuronal connections of the central amygdalar nucleus with refeeding-activated brain areas in rats. Brain Struct Funct 223(1):391–414PubMedCrossRefPubMedCentral Zseli G, Vida B, Szilvasy-Szabo A, Toth M, Lechan RM, Fekete C (2017) Neuronal connections of the central amygdalar nucleus with refeeding-activated brain areas in rats. Brain Struct Funct 223(1):391–414PubMedCrossRefPubMedCentral
Metadaten
Titel
Neural substrates of fear-induced hypophagia in male and female rats
verfasst von
C. J. Reppucci
G. D. Petrovich
Publikationsdatum
27.04.2018
Verlag
Springer Berlin Heidelberg
Erschienen in
Brain Structure and Function / Ausgabe 6/2018
Print ISSN: 1863-2653
Elektronische ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-018-1668-3

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