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First published June 2004

The Amygdala and Persistent Pain

Abstract

A reciprocal relationship exists between persistent pain and negative affective states such as fear, anxiety, and depression. Accumulating evidence points to the amygdala as an important site of such interaction. Whereas a key role of the amygdala in the neuronal mechanisms of emotionality and affective disorders has been well established, the concept of the amygdala as an important contributor to pain and its emotional component is still emerging. This article will review and discuss evidence from anatomical, neuroimaging, behavioral, electrophysiological, pharmacological, and biochemical data that implicate the amygdala in pain modulation and emotional responses to pain. The latero-capsular division of the central nucleus of the amygdala is now defined as the “nociceptive amygdala” and integrates nociceptive information with poly-modal information about the internal and external bodily environment. Dependent on environmental conditions and affective states, the amygdala appears to play a dual facilitatory and inhibitory role in the modulation of pain behavior and nociceptive processing at different levels of the pain neuraxis. Only recently, electrophysiological, pharmacological, and biochemical neuroplastic changes were shown in the nociceptive amygdala in persistent pain. It is conceivable, however, that amygdala plasticity plays an important role in emotional pain behavior and its modulation by affective state.

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References

Aggleton JP. 2000. The amygdala: a functional analysis. 2nd ed. Oxford: Oxford University Press.
Augustine JR. 1996. Circuitry and functional aspects of the insular lobe in primates including humans. Brain Res Rev 22:229-244.
Basbaum AI. 1999. Distinct neurochemical features of acute and persistent pain. Proc Natl Acad Sci U S A 96:7739-7743.
Becerra LR, Breiter HC, Stojanovic M, Fishman S, Edwards A, Comite AR, and others. 1999. Human brain activation under controlled thermal stimulation and habituation of noxious heat: an fMRI study. Mag Reson Med 41:1044-1057.
Bernard J-F, Bester H, Besson JM. 1996. Involvement of the spino-parabrachio-amygdaloid and -hypothalamic pathways in the autonomic and affective emotional aspects of pain. Prog Brain Res 107:243-255.
Bernard J-F, Huang GF, Besson JM. 1992. Nucleus centralis of the amygdala and the globus pallidus ventralis: electrophysiological evidence for an involvement in pain processes. J Neurophysiol 68:551-569.
Besson JM. 1999. The neurobiology of pain. Lancet 353:1610-1615.
Bingel U, Quante M, Knab R, Bromm B, Weiller C, Buchel C. 2002. Subcortical structures involved in pain processing: evidence from single-trial fMRI. Pain 99:313-321.
Blood AJ, Zatorre RJ. 2001. Intensely pleasurable responses to music correlate with activity in brain regions implicated in reward and emotion. Proc Natl Acad Sci U S A 98:11818-11823.
Bonaz B, Baciu M, Papillon E, Bost R, Gueddah N, Le Bas JF, and others. 2002. Central processing of rectal pain in patients with irritable bowel syndrome: an fMRI study. Am J Gastroenterol 97:654-661.
Bornhovd K, Quante M, Glauche V, Bromm B, Weiller C, Buchel C. 2002. Painful stimuli evoke different stimulus-response functions in the amygdala, prefrontal, insula and somatosensory cortex: a single-trial fMRI study. Brain 125:1326-1336.
Borszcz GS. 1999. Differential contributions of medullary, thalamic, and amygdaloid serotonin to the antinociceptive action of morphine administered into the periaqueductal gray: a model of morphine analgesia. Behav Neurosci 113:612-631.
Bourgeais L, Gauriau C, Bernard J-F. 2001. Projections from the nociceptive area of the central nucleus of the amygdala to the forebrain: a PHA-L study in the rat. Eur J Neurosci 14:229-255.
Burstein R, Potrebic S. 1993. Retrograde labeling of neurons in the spinal cord that project directly to the amygdala or the orbital cortex in the rat. J Comp Neurol 335:469-485.
Calvino B, Levesque G, Besson JM. 1982. Possible involvement of the amygdaloid complex in morphine analgesia as studied by electrolytic lesions in rats. Brain Res 233:221-226.
Cardinal RN, Parkinson JA, Hall J, Everitt BJ. 2002. Emotion and motivation: the role of the amygdala, ventral striatum, and prefrontal cortex. Neurosci Biobehav Rev 26:321-352.
Charpentier J. 1967. Modifications de la réaction à la douleur provoquées par diverses lésions cérébrales, et leurs effets sur la sensibilitè á la morphine. Psychopharmacologia 11:95-121.
Crown ED, King TE, Meagher MW, Grau JW. 2000. Shock-induced hyperalgesia: III. Role of the bed nucleus of the stria terminalis and amygdaloid nuclei. Behav Neurosci 114:561-573.
Da Costa Gomez TM, Behbehani MM. 1995. An electrophysiological characterization of the projection from the central nucleus of the amygdala to the periaqueductal gray of the rat: the role of opioid receptors. Brain Res 689:21-31.
Davidson RJ. 2002. Anxiety and affective style: role of prefrontal cortex and amygdala. Biol Psychiatry 51:68-80.
Davis KD. 2003. Neurophysiological and anatomical considerations in functional imaging of pain. Pain 105:1-3.
Davis M. 1998. Anatomic and physiologic substrates of emotion in an animal model. J Clin Neurophysiol 15:378-387.
Derbyshire SWG, Jones AKP, Gyulai F, Clark S, Townsend D, Firestone LL. 1997. Pain processing during three levels of noxious stimulation produces differential patterns of central activity. Pain 73:431-445.
Dubner R, Gold M. 1999. The neurobiology of pain. Proc Natl Acad Sci U S A 96:7627-7630.
Fields HL. 2000. Pain modulation: expectation, opioid analgesia and virtual pain. Prog Brain Res 122:245-253.
Fields HL, Basbaum AI. 1999. Central nervous system mechanisms of pain modulation. In: Wall PD, Melzack R, editors. Textbook of pain. London: Churchill Livingstone. p 309-329.
Fox RJ, Sorenson CA. 1994. Bilateral lesions of the amygdala attenuate analgesia induced by diverse environmental challenges. Brain Res 648:215-221.
Gallagher M, Schoenbaum G. 1999. Functions of the amygdala and related forebrain areas in attention and cognition. Ann N Y Acad Sci 877:397-411.
Gauriau C, Bernard J-F. 2002. Pain pathways and parabrachial circuits in the rat. Exp Physiol 87:251-258.
Greenwood-Van Meerveld B, Gibson M, Gunder W, Shepard J, Foreman R, Myers D. 2001. Stereotaxic delivery of corticosterone to the amygdala modulates colonic sensitivity in rats. Brain Res 893:135-142.
Haythornthwaite JA, Sieber WJ, Kerns RD. 1991. Depression and the chronic pain experience. Pain 46:177-184.
Heinricher MM, McGaraughty S. 1999. Pain-modulating neurons and behavioral state. In: Lydic R, Baghdoyan HA, editors. Handbook of behavioral state control. New York: CRC Press. p 487-503.
Helmstetter FJ. 1992. The amygdala is essential for the expression of conditional hypoalgesia. Behav Neurosci 106:518-528.
Helmstetter FJ, Bellgowan PS. 1993. Lesions of the amygdala block conditional hypoalgesia on the tail flick test. Brain Res 612:253-257.
Helmstetter FJ, Tershner SA, Poore LH, Bellgowan PSF. 1998. Antinociception following opioid stimulation of the basolateral amygdala is expressed through the periaqueductal gray and rostral ventromedial medulla. Brain Res 779:104-118.
Henry JL, Yashpal K, Pitcher GM, Coderre TJ. 1999. Physiological evidence that the “interphase” in the formalin test is due to active inhibition. Pain 82:57-63.
Huyser BA, Parker JC. 1999. Negative affect and pain in arthritis. Rheum Dis Clin North Am 25:105-121.
Jurgens U. 1982. Amygdalar vocalization pathways in the squirrel monkey. Brain Res 241:189-196.
Jurgens U, Maurus M, Ploog D, Winter P. 1967. Vocalization in the squirrel monkey (Saimiri sciureus) elicited by brain stimulation. Exp Brain Res 4:114-117.
LeDoux JE. 2000. Emotion circuits in the brain. Annu Rev Neurosci 23:155-184.
Li W, Neugebauer V. 2003. Differential roles of mGluR1 and mGluR5 in brief and prolonged nociceptive processing in the amygdala. J Neurophysiol (in press).
Maier SF, Grahn RE, Kalman BA, Sutton LC, Wiertelak EP, Watkins LR. 1993. The role of the amygdala and dorsal raphe nucleus in mediating the behavioral consequences of inescapable shock. Behav Neurosci 107:377-388.
Manning BH. 1998. A lateralized deficit in morphine antinociception after unilateral inactivation of the central amygdala. J Neurosci 18:9453-9470.
Manning BH, Martin WJ, Meng ID. 2003. The rodent amygdala contributes to the production of cannabinoid-induced antinociception. Neuroscience 120:1157-1170.
Manning BH, Mayer DJ. 1995a. The central nucleus of the amygdala contributes to the production of morphine antinociception in the formalin test. Pain 63:141-152.
Manning BH, Mayer DJ. 1995b. The central nucleus of the amygdala contributes to the production of morphine antinociception in the rat tail-flick test. J Neurosci 15:8199-8213.
Maren S. 1999. Long-term potentiation in the amygdala: a mechanism for emotional learning and memory. Trends Neurosci 22:561-567.
McKernan MG, Shinnick-Gallagher P. 1997. Fear conditioning induces a lasting potentiation of synaptic currents in vitro. Nature 390:607-611.
McWilliams LA, Cox BJ, Enns MW. 2003. Mood and anxiety disorders associated with chronic pain: an examination in a nationally representative sample. Pain 106:127-133.
Meagher MW, Arnau RC, Rhudy JL. 2001. Pain and emotion: effects of affective picture modulation. Psychosom Med 63:79-90.
Mena NB, Mathur R, Nayar U. 1995. Amygdalar involvement in pain. Indian J Physiol Pharmacol 39:339-346.
Millan MJ. 1999. The induction of pain: an integrative review. Progr Neurobiol. 57:1-164.
Nakagawa T, Katsuya A, Tanimoto S, Yamamoto J, Yamauchi Y, Minami M, and others. 2003. Differential patterns of c-fos mRNA expression in the amygdaloid nuclei induced by chemical somatic and visceral noxious stimuli in rats. Neurosci Lett 344:197-200.
Naliboff BD, Berman S, Chang L, Derbyshire SWG, Suyenobu B, Vogt BA, and others. 2003. Sex-related differences in IBS patients: central processing of visceral stimuli. Gastroenterology 124:1738-1747.
National Institutes of Health. 2001. NIH guide, management of chronic pain. PA-01-115. Bethesda (MD): National Institutes of Health.
Neugebauer V. 2002. Metabotropic glutamate receptors—important modulators of nociception and pain behavior. Pain 98:1-8.
Neugebauer V, Keele NB, Shinnick-Gallagher P. 1997. Epileptogenesis in vivo enhances the sensitivity of inhibitory presynaptic metabotropic glutamate receptors in basolateral amygdala neurons in vitro. J Neurosci 17:983-995.
Neugebauer V, Li W. 2002. Processing of nociceptive mechanical and thermal information in central amygdala neurons with knee-joint input. J Neurophysiol 87:103-112.
Neugebauer V, Li W. 2003. Differential sensitization of amygdala neurons to afferent inputs in a model of arthritic pain. J Neurophysiol 89:716-727.
Neugebauer V, Li W, Bird GC, Bhave G, Gereau RW. 2003. Synaptic plasticity in the amygdala in a model of arthritic pain: differential roles of metabotropic glutamate receptors 1 and 5. J Neurosci 23:52-63.
Neugebauer V, Zinebi F, Russell R, Gallagher JP, Shinnick-Gallagher P. 2000. Cocaine and kindling alter the sensitivity of group II and III metabotropic glutamate receptors in the central amygdala. J Neurophysiol 84:759-770.
Paulson PE, Casey KL, Morrow TJ. 2002. Long-term changes in behavior and regional cerebral blood flow associated with painful peripheral mononeuropathy in the rat. Pain 95:31-40.
Pavlovic ZW, Bodnar RJ. 1998. Opioid supraspinal analgesic synergy between the amygdala and periaqueductal gray in rats. Brain Res 779:158-169.
Petrovic P, Ingvar M, Stone-Elander S, Petersson KM, Hansson P. 1999. A PET activation study of dynamic mechanical allodynia in patients with mononeuropathy. Pain 83:447-457.
Pitkanen 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 20:517-523.
Ploghaus A, Tracey I, Gati JS, Clare S, Menon RS, Matthews PM, and others. 1999. Dissociating pain from its anticipation in the human brain. Science 284:1979-1981.
Porreca F, Ossipov MH, Gebhart GF. 2002. Chronic pain and medullary descending facilitation. Trends Neurosci 25:319-325.
Price DD. 2000. Psychological and neural mechanisms of the affective dimension of pain. Science 288:1769-1772.
Price JL. 2003. Comparative aspects of amygdala connectivity. In: Shinnick-Gallagher P, Pitkanen A, Shekhar A, Cahill L, editors. The amygdala in brain function. Basic and clinical approaches. New York: New York Academy of Sciences. p 50-58.
Qin C, Greenwood-Van Meerveld B, Foreman RD. 2003. Spinal neuronal responses to urinary bladder stimulation in rats with corticosterone or aldosterone onto the amygdala. J Neurophysiol 90:2180-2189.
Qin C, Greenwood-Van Meerveld B, Myers DA, Foreman RD. 2003. Corticosterone acts directly at the amygdala to alter spinal neuronal activity in response to colorectal distension. J Neurophysiol 89:1343-1352.
Qin C, Meerveld BG-V, Foreman RD. 2003. Visceromotor and spinal neuronal responses to colorectal distension in rats with aldosterone onto the amygdala. J Neurophysiol 90:2-11.
Rhudy JL, Meagher MW. 2000. Fear and anxiety: divergent effects on human pain thresholds. Pain 84:65-75.
Rhudy JL, Meagher MW. 2003. Negative affect: effects on an evaluative measure of human pain. Pain 104:617-626.
Schaible H-G, Ebersberger A, von Banchet GS. 2002. Mechanisms of pain in arthritis. Ann N Y Acad Sci 966:343-354.
Schneider F, Habel U, Holthusen H, Kessler C, Posse S, Muller-Gartner HW, and others. 2001. Subjective ratings of pain correlate with subcortical-limbic blood flow: an fMRI study. Neuropsychobiology 43:175-185.
Schoepp DD, Jane DE, Monn JA. 1999. Pharmacological agents acting at subtypes of metabotropic glutamate receptors. Neuropharmacology 38:1431-1476.
Shi C, Davis M. 1999. Pain pathways involved in fear conditioning measured with fear-potentiated startle: lesion studies. J Neurosci 19:420-430.
Stam R, Ekkelenkamp K, Frankhuijzen AC, Bruijnzeel AW, Akkermans LM, Wiegant VM. 2002. Long-lasting changes in central nervous system responsivity to colonic distention after stress in rats. Gastroenterology 123:1216-1225.
Stefanacci L, Amaral DG. 2000. Topographic organization of cortical inputs to the lateral nucleus of the macaque monkey amygdala: a retrograde tracing study. J Comp Neurol 421:52-79.
Stucky CL, Gold MS, Zhang X. 2001. Mechanisms of pain. Proc Natl Acad Sci U S A 98:11845-11846.
Tershner SA, Helmstetter FJ. 2000. Antinociception produced by mu opioid receptor activation in the amygdala is partly dependent on activation of mu opioid and neurotensin receptors in the ventral periaqueductal gray. Brain Res 865:17-26.
Traub RJ, Silva E, Gebhart GF, Solodkin A. 1996. Noxious colorectal distension induced-c-Fos protein in limbic brain structures in the rat. Neurosci Lett 215:165-168.
Varney MA, Gereau RW. 2002. Metabotropic glutamate receptor involvement in models of acute and persistent pain: prospects for the development of novel analgesics. Current Drug Targets 1:215-225.
Villemure C, Slotnick BM, Bushnell MC. 2003. Effects of odors on pain perception: deciphering the roles of emotion and attention. Pain 106:101-108.
Wang C-C, Willis WD, Westlund KN. 1999. Ascending projections from the area around the spinal cord central canal: a Phaseolus vulgaris leucoagglutinin study in rats. J Comp Neurol 415:341-367.
Watkins LR, Wiertelak EP, McGorry M, Martinez J, Schwartz B, Sisk D, and others. 1998. Neurocircuitry of conditioned inhibition of analgesia: effects of amygdala, dorsal raphe, ventral medullary, and spinal cord lesions on antianalgesia in the rat. Behav Neurosci 112:360-378.
Werka T. 1997. The effects of the medial and cortical amygdala lesions on post-stress analgesia in rats. Behav Brain Res 86:59-65.
Willis WD. 2002. Long-term potentiation in spinothalamic neurons. Brain Res Rev 40:202-214.
Wilson KG, Mikail SF, D’Eon JL, Minns JE. 2001. Alternative diagnostic criteria for major depressive disorder in patients with chronic pain. Pain 91:227-234.
Wood JN, Perl ER. 1999. Pain. Curr Opin Genet Dev 9:328-332.
Woolf CJ, Salter MW. 2000. Neuronal plasticity: increasing the gain in pain. Science 288:1765-1769.
Yaksh TL, Hua XY, Kalcheva I, Nozaki-Taguchi N, Marsala M. 1999. The spinal biology in humans and animals of pain states generated by persistent small afferent input. Proc Natl Acad Sci U S A 96:7680-7686.
Zald DH. 2003. The human amygdala and the emotional evaluation of sensory stimuli. Brain Res Rev 41:88-123.

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Article first published: June 2004
Issue published: June 2004

Keywords

  1. Pain
  2. Nociception
  3. Emotion
  4. Affect
  5. Plasticity
  6. Amygdala

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PubMed: 15155061

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Affiliations

Volker Neugebauer
Department of Anatomy & Neurosciences, University of Texas Medical Branch, [email protected]
Weidong Li
Department of Anatomy & Neurosciences, University of Texas Medical Branch
Gary C. Bird
Department of Anatomy & Neurosciences, University of Texas Medical Branch
Jeong S. Han
Department of Anatomy & Neurosciences, University of Texas Medical Branch

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  103. A Central Amygdala–Ventrolateral Periaqueductal Gray Matter Pathway fo...
    Go to citation Crossref Google Scholar
  104. Quantitative Proteomic Analysis of the Central Amygdala in Neuropathic...
    Go to citation Crossref Google Scholar
  105. The Skin Microbiota and Itch: Is There a Link?
    Go to citation Crossref Google Scholar
  106. Utilization of a rodent model to examine the neurological effects of e...
    Go to citation Crossref Google Scholar
  107. Selective modulation of tonic aversive qualities of neuropathic pain b...
    Go to citation Crossref Google Scholar
  108. Pain, aging, and the brain: new pieces to a complex puzzle
    Go to citation Crossref Google Scholar
  109. Acute Effects and the Dreamy State Evoked by Deep Brain Electrical Sti...
    Go to citation Crossref Google Scholar
  110. Alcoholic Liver Disease
    Go to citation Crossref Google Scholar
  111. Electroacupuncture Alleviates Pain-Related Emotion by Upregulating the...
    Go to citation Crossref Google Scholar
  112. Acute alcohol intake alters resting state functional connectivity of n...
    Go to citation Crossref Google Scholar
  113. Reversal of peripheral nerve injury-induced neuropathic pain and cogni...
    Go to citation Crossref Google Scholar
  114. Functional connectivity of the amygdala is linked to individual differ...
    Go to citation Crossref Google Scholar
  115. Placebo Effect on Modulating Empathic Pain: Reduced Activation in Post...
    Go to citation Crossref Google Scholar
  116. GABAB Receptors and Pain
    Go to citation Crossref Google Scholar
  117. The Development of the Nociceptive System and Childhood Pain
    Go to citation Crossref Google Scholar
  118. OBSOLETE: The Development of the Nociceptive System and Childhood Pain
    Go to citation Crossref Google Scholar
  119. Amygdala physiology in pain
    Go to citation Crossref Google Scholar
  120. Serotonin—pain modulation
    Go to citation Crossref Google Scholar
  121. Uses of Virtual Reality (VR) for Chronic Pain
    Go to citation Crossref Google Scholar
  122. Spared nerve injury differentially alters parabrachial monosynaptic ex...
    Go to citation Crossref Google Scholar
  123. The central nucleus of the amygdala lesion attenuates orthodontic pain...
    Go to citation Crossref Google Scholar
  124. The interaction between stress and chronic pain through the lens of th...
    Go to citation Crossref Google Scholar
  125. Parabrachial Complex: A Hub for Pain and Aversion
    Go to citation Crossref Google Scholar
  126. Dual and Opposing Functions of the Central Amygdala in the Modulation ...
    Go to citation Crossref Google Scholar
  127. Role of orexin receptors within the dentate gyrus of the hippocampus i...
    Go to citation Crossref Google Scholar
  128. A neural circuit for comorbid depressive symptoms in chronic pain
    Go to citation Crossref Google Scholar
  129. Contribution of Corticotropin-Releasing Factor Receptor 1 (CRF1) to Se...
    Go to citation Crossref Google Scholar
  130. The Impact of Psychological Interventions on Posttraumatic Stress Diso...
    Go to citation Crossref Google Scholar
  131. Neuroimaging-based biomarkers for pain: state of the field and current...
    Go to citation Crossref Google Scholar
  132. Impulsivity Derived From the Dark Side: Neurocircuits That Contribute ...
    Go to citation Crossref Google Scholar
  133. Cortico-limbic pain mechanisms
    Go to citation Crossref Google Scholar
  134. Animal models of congenital hypoalgesia: Untapped potential for assess...
    Go to citation Crossref Google Scholar
  135. Cell-type specific parallel circuits in the bed nucleus of the stria t...
    Go to citation Crossref Google Scholar
  136. Parabrachial-to-amygdala control of aversive learning
    Go to citation Crossref Google Scholar
  137. Influence of behavioral traits in the inter-individual variability of ...
    Go to citation Crossref Google Scholar
  138. Kappa opioid signaling in the central nucleus of the amygdala promotes...
    Go to citation Crossref Google Scholar
  139. Amylin, a peptide expressed by nociceptors, modulates chronic neuropat...
    Go to citation Crossref Google Scholar
  140. Abnormal amygdala resting-state functional connectivity in primary dys...
    Go to citation Crossref Google Scholar
  141. What does brain imaging tell us about itch?
    Go to citation Crossref Google Scholar
  142. Volitional limbic neuromodulation exerts a beneficial clinical effect ...
    Go to citation Crossref Google Scholar
  143. From Episodic to Chronic: A Discussion on Headache Transformation
    Go to citation Crossref Google Scholar
  144. Neuroanatomical Signatures of Acute and Chronic Orofacial Pain
    Go to citation Crossref Google Scholar
  145. The Impacts of Associative Memory Cells on Pathology
    Go to citation Crossref Google Scholar
  146. Epigenetic Modulation of Visceral Pain
    Go to citation Crossref Google Scholar
  147. Nociceptive Physiology
    Go to citation Crossref Google Scholar
  148. Neurobiological mechanisms underlying the sleep-pain relationship in a...
    Go to citation Crossref Google Scholar
  149. Virtual reality for spinal cord injury-associated neuropathic pain: Sy...
    Go to citation Crossref Google Scholar
  150. Uses of Virtual Reality (VR) for Chronic Pain
    Go to citation Crossref Google Scholar
  151. Corticolimbic circuitry in the modulation of chronic pain and substanc...
    Go to citation Crossref Google Scholar
  152. Effects of stress on the corticolimbic system: implications for chroni...
    Go to citation Crossref Google Scholar
  153. The critical role of amygdala subnuclei in nociceptive and depressive-...
    Go to citation Crossref Google Scholar
  154. The central amygdala to periaqueductal gray pathway comprises intrinsi...
    Go to citation Crossref Google Scholar
  155. Activation of trigeminal ganglion satellite glial cells in CFA-induced...
    Go to citation Crossref Google Scholar
  156. Influence of neuropathic pain on nicotinic acetylcholine receptor plas...
    Go to citation Crossref Google Scholar
  157. Group II Metabotropic Glutamate Receptors: Role in Pain Mechanisms and...
    Go to citation Crossref Google Scholar
  158. A bio-inspired self-responding emotional behavior system for virtual c...
    Go to citation Crossref Google Scholar
  159. Methyleugenol counteracts anorexigenic signals in association with GAB...
    Go to citation Crossref Google Scholar
  160. The left central nucleus of the amygdala contributes to mechanical all...
    Go to citation Crossref Google Scholar
  161. Molecular, Cellular and Circuit Basis of Cholinergic Modulation of Pai...
    Go to citation Crossref Google Scholar
  162. Chronic non-cancer pain in children: we have a problem, but also solut...
    Go to citation Crossref Google Scholar
  163. NALCN channels enhance the intrinsic excitability of spinal projection...
    Go to citation Crossref Google Scholar
  164. Stereotaxic Exposure of the Central Nucleus of the Amygdala to Cortico...
    Go to citation Crossref Google Scholar
  165. Meal-Sensing Signaling Pathways in Functional Dyspepsia
    Go to citation Crossref Google Scholar
  166. Investigating the inhibition of NMDA glutamate receptors in the basola...
    Go to citation Crossref Google Scholar
  167. Neuromodulation with percutaneous electrical nerve field stimulation i...
    Go to citation Crossref Google Scholar
  168. Fear extinction learning ability predicts neuropathic pain behaviors a...
    Go to citation Crossref Google ScholarPub Med
  169. Neuroimaging of Pain
    Go to citation Crossref Google Scholar
  170. Cancer Pain
    Go to citation Crossref Google Scholar
  171. Chronical Pain Syndromes as a Critical Condition Consequence: Clinical...
    Go to citation Crossref Google Scholar
  172. Reward Circuitry Plasticity in Pain Perception and Modulation
    Go to citation Crossref Google Scholar
  173. Imaging corticotropin-releasing-factor and nociceptin in addiction and...
    Go to citation Crossref Google Scholar
  174. Intensity Dependence of Auditory Evoked Potentials in Primary Dysmenor...
    Go to citation Crossref Google Scholar
  175. Automatic reward system for virtual creatures, emergent processes of e...
    Go to citation Crossref Google Scholar
  176. Essential role of endogenous calcitonin gene‐related peptide in pain‐a...
    Go to citation Crossref Google Scholar
  177. Different Pain Responses to Chronic and Acute Pain in Various Ethnic/R...
    Go to citation Crossref Google Scholar
  178. Percutaneous electrical nerve field stimulation modulates central pain...
    Go to citation Crossref Google Scholar
  179. Inhibition of substance P-induced defensive behavior via neurokinin-1 ...
    Go to citation Crossref Google Scholar
  180. Cancer-induced anorexia and malaise are mediated by CGRP neurons in th...
    Go to citation Crossref Google Scholar
  181. CaMKIIα may modulate fentanyl-induced hyperalgesia via a CeLC-PAG-RVM-...
    Go to citation Crossref Google Scholar
  182. Abundant collateralization of temporal lobe projections to the accumbe...
    Go to citation Crossref Google Scholar
  183. Divergent functions of the left and right central amygdala in visceral...
    Go to citation Crossref Google Scholar
  184. Chronic stress exacerbates neuropathic pain via the integration of str...
    Go to citation Crossref Google Scholar
  185. Music therapy for people with substance use disorders
    Go to citation Crossref Google Scholar
  186. Structural Gray Matter Alterations in Chronic Migraine: Implications f...
    Go to citation Crossref Google Scholar
  187. 5-HT 2C Receptor Knockdown in the Amygdala...
    Go to citation Crossref Google Scholar
  188. Chronic Pain and Chronic Stress: Two Sides of the Same Coin?
    Go to citation Crossref Google ScholarPub Med
  189. Dorsal root ganglion stimulation attenuates the BOLD signal response t...
    Go to citation Crossref Google Scholar
  190. Activation of the Extracellular Signal-Regulated Kinase in the Amygdal...
    Go to citation Crossref Google Scholar
  191. Sex‐based differences in brain alterations across chronic pain conditi...
    Go to citation Crossref Google Scholar
  192. Cyclic GMP-dependent protein kinase-I localized in nociceptors modulat...
    Go to citation Crossref Google ScholarPub Med
  193. Sleep Disturbances in General Medical Disorders
    Go to citation Crossref Google Scholar
  194. NMDA Receptors and Signaling in Chronic Neuropathic Pain
    Go to citation Crossref Google Scholar
  195. Metabotropic Glutamate Receptors in Amygdala Functions
    Go to citation Crossref Google Scholar
  196. Somatoforme Störungen – somatoforme Belastungsstörung und verwandte St...
    Go to citation Crossref Google Scholar
  197. Physio logie von Nozizeption und Schmerz
    Go to citation Crossref Google Scholar
  198. Cannabinoids and Pain: Sites and Mechanisms of Action
    Go to citation Crossref Google Scholar
  199. Amygdala Plasticity and Pain
    Go to citation Crossref Google Scholar
  200. Stress reactivity in childhood functional abdominal pain or irritable ...
    Go to citation Crossref Google Scholar
  201. Prefrontal hemodynamic mapping by functional near-infrared spectroscop...
    Go to citation Crossref Google Scholar
  202. Stressinduzierte Hyperalgesie (SIH) als Folge von emotionaler Deprivat...
    Go to citation Crossref Google Scholar
  203. Patterns of Cerebral Blood Flow Modulation During Painful Stimulation ...
    Go to citation Crossref Google Scholar
  204. Glucocorticoid Induces Incoordination between Glutamatergic and GABAer...
    Go to citation Crossref Google Scholar
  205. Chronic migraine treatment: from OnabotulinumtoxinA onwards
    Go to citation Crossref Google Scholar
  206. White matter microstructure alterations in primary dysmenorrhea assess...
    Go to citation Crossref Google Scholar
  207. Traumatic Stress Promotes Hyperalgesia via Corticotropin-Releasing Fac...
    Go to citation Crossref Google Scholar
  208. Toward a systems-oriented approach to the role of the extended amygdal...
    Go to citation Crossref Google Scholar
  209. Inhibition of CaMKII  in the Central Nucleus of Amygdala Attenuates Fe...
    Go to citation Crossref Google Scholar
  210. Enhanced c‐Fos expression in the central amygdala correlates with incr...
    Go to citation Crossref Google Scholar
  211. Neural Correlates of Fear of Movement in Patients with Chronic Low Bac...
    Go to citation Crossref Google Scholar
  212. Differential Activation in Amygdala and Plasma Noradrenaline during Co...
    Go to citation Crossref Google Scholar
  213. TRPV1-mediated presynaptic transmission in basolateral amygdala contri...
    Go to citation Crossref Google Scholar
  214. Patient Satisfaction with Spanish Pain Centers: Observational Study wi...
    Go to citation Crossref Google Scholar
  215. Inventory of Personal Factors Influencing Conditioned Pain Modulation ...
    Go to citation Crossref Google Scholar
  216. The Emotional Brain as a Predictor and Amplifier of Chronic Pain
    Go to citation Crossref Google ScholarPub Med
  217. Stimulation of the ventral tegmental area increased nociceptive thresh...
    Go to citation Crossref Google Scholar
  218. Relation between injury of the periaqueductal gray and central pain in...
    Go to citation Crossref Google Scholar
  219. Synaptic and network consequences of monosynaptic nociceptive inputs o...
    Go to citation Crossref Google Scholar
  220. Presynaptic GABAB receptors reduce transmission at parabrachial synaps...
    Go to citation Crossref Google Scholar
  221. Different Brain Circuitries Mediating Controllable and Uncontrollable ...
    Go to citation Crossref Google Scholar
  222. Dexmedetomidine Dose-Dependently Attenuates Ropivacaine-Induced Seizur...
    Go to citation Crossref Google Scholar
  223. Preserved emotional awareness of pain in a patient with extensive bila...
    Go to citation Crossref Google Scholar
  224. Distinct contributions of reactive oxygen species in amygdala to bee v...
    Go to citation Crossref Google Scholar
  225. Altered regional cortical thickness and subcortical volume in women wi...
    Go to citation Crossref Google Scholar
  226. Rapid treatment-induced brain changes in pediatric CRPS
    Go to citation Crossref Google Scholar
  227. Dyad of pain and depression in chronic rhinosinusitis
    Go to citation Crossref Google Scholar
  228. Associations of limbic-affective brain activity and severity of ongoin...
    Go to citation Crossref Google Scholar
  229. GABAA Receptors in the Central Nucleus of the Amygdala Are Involved in...
    Go to citation Crossref Google Scholar
  230. Dynorphin a Analogs for the Treatment of Chronic Neuropathic Pain
    Go to citation Crossref Google Scholar
  231. Reactive Oxygen Species: Physiological and Physiopathological Effects ...
    Go to citation Crossref Google ScholarPub Med
  232. Somatoforme Störungen – somatoforme Belastungsstörung und verwandte St...
    Go to citation Crossref Google Scholar
  233. Corticotropin-Releasing Factor Signaling at the Intersection of Pain a...
    Go to citation Crossref Google Scholar
  234. Neural Mechanism Underlying Pain and Pain Relief
    Go to citation Crossref Google Scholar
  235. The affective dimension of pain as a risk factor for drug and alcohol ...
    Go to citation Crossref Google Scholar
  236. The lateral parabrachial nucleus is actively involved in the acquisiti...
    Go to citation Crossref Google Scholar
  237. Smaller Amygdala Volumes in Patients With Chronic Low Back Pain Compar...
    Go to citation Crossref Google Scholar
  238. Enhanced serotonin and mesolimbic dopamine transmissions in a rat mode...
    Go to citation Crossref Google Scholar
  239. The periaqueductal gray and descending pain modulation: why should we ...
    Go to citation Crossref Google Scholar
  240. Bidirectional Association Between Depression and Fibromyalgia Syndrome...
    Go to citation Crossref Google Scholar
  241. Vagal afferent-dependent cholecystokinin modulation of visceral pain r...
    Go to citation Crossref Google Scholar
  242. CGRP as a neuropeptide in migraine: lessons from mice
    Go to citation Crossref Google Scholar
  243. Corticotropin-releasing factor receptor type 1 and type 2 interaction ...
    Go to citation Crossref Google Scholar
  244. Protracted alcohol abstinence induces analgesia in rats: Possible rela...
    Go to citation Crossref Google Scholar
  245. Fear avoidance beliefs in back pain-free subjects are reflected by amy...
    Go to citation Crossref Google Scholar
  246. Trigeminal Inflammatory Compression (TIC) injury induces chronic facia...
    Go to citation Crossref Google Scholar
  247. μ-Opioid and N-methyl-D-aspartate receptors in the amygdala contribute...
    Go to citation Crossref Google Scholar
  248. Reactive oxygen species mediate visceral pain–related amygdala plastic...
    Go to citation Crossref Google Scholar
  249. Neurosteroids increase tonic GABAergic inhibition in the lateral secti...
    Go to citation Crossref Google Scholar
  250. Epigenetic mechanisms of chronic pain
    Go to citation Crossref Google Scholar
  251. Recruitment of hypothalamic orexin neurons after formalin injections i...
    Go to citation Crossref Google Scholar
  252. Neurochemical properties of the synapses between the parabrachial nucl...
    Go to citation Crossref Google Scholar
  253. The influence of μ-opioid and noradrenaline reuptake inhibition in the...
    Go to citation Crossref Google Scholar
  254. Dynamic Interactions Between Plasma IL-1 Family Cytokines and Central ...
    Go to citation Crossref Google Scholar
  255. Calcitonin Gene-Related Peptide (CGRP): A New Target for Migraine
    Go to citation Crossref Google Scholar
  256. Alleviating Neuropathic Pain Mechanical Allodynia by Increasing Cdh1 i...
    Go to citation Crossref Google ScholarPub Med
  257. The Complexity of Chronic Pain in Traumatized People: Diagnostic and T...
    Go to citation Crossref Google Scholar
  258. Amygdala Pain Mechanisms
    Go to citation Crossref Google Scholar
  259. Pain: Acute and Chronic
    Go to citation Crossref Google Scholar
  260. The Role of the Brain's Endocannabinoid System in Pain and Its Modulat...
    Go to citation Crossref Google Scholar
  261. mGluRs Head to Toe in Pain
    Go to citation Crossref Google Scholar
  262. Contemporary Theories
    Go to citation Crossref Google Scholar
  263. Neuroplasticity Underlying the Comorbidity of Pain and Depression
    Go to citation Crossref Google Scholar
  264. Short-term effect of acute and repeated urinary bladder inflammation o...
    Go to citation Crossref Google Scholar
  265. Role of Corticotropin-releasing Factor Signaling in Stress-related Alt...
    Go to citation Crossref Google Scholar
  266. Corticotrophin‐releasing factor 1 activation in the central amygdale a...
    Go to citation Crossref Google Scholar
  267. Resting-state functional reorganization of the rat limbic system follo...
    Go to citation Crossref Google Scholar
  268. Preliminary structural MRI based brain classification of chronic pelvi...
    Go to citation Crossref Google Scholar
  269. Sensitization of neurons in the central nucleus of the amygdala via th...
    Go to citation Crossref Google Scholar
  270. Accelerated Resolution Therapy for treatment of pain secondary to symp...
    Go to citation Crossref Google Scholar
  271. N-Methyl-d-Aspartate Receptor Agonism and Antagonism Within the Amygda...
    Go to citation Crossref Google Scholar
  272. Cognition and emotional decision-making in chronic low back pain: an E...
    Go to citation Crossref Google Scholar
  273. Naproxen Effects on Brain Response to Painful Pressure Stimulation in ...
    Go to citation Crossref Google Scholar
  274. Protein Kinase C is Essential for Kainate‐Induced Anxiety‐Related Beha...
    Go to citation Crossref Google Scholar
  275. Oral administration of the p38α MAPK inhibitor, UR13870, inhibits affe...
    Go to citation Crossref Google Scholar
  276. Brain Neuroplastic Changes Accompany Anxiety and Memory Deficits in a ...
    Go to citation Crossref Google Scholar
  277. The role of associative learning and fear in the development of chroni...
    Go to citation Crossref Google Scholar
  278. Role of corticotropin-releasing hormone receptor 1 in the regulation o...
    Go to citation Crossref Google Scholar
  279. Central amygdala PKC-δ+ neurons mediate the influence of multiple anor...
    Go to citation Crossref Google Scholar
  280. Neuronal calcium signaling in chronic pain
    Go to citation Crossref Google Scholar
  281. Persistent Pain Facilitates Response to Morphine Reward by Downregulat...
    Go to citation Crossref Google Scholar
  282. Functional plasticity of the N / ...
    Go to citation Crossref Google Scholar
  283. Altered structural covariance of the striatum in functional dyspepsia ...
    Go to citation Crossref Google Scholar
  284. The mGluR5 Antagonist Fenobam Induces Analgesic Conditioned Place Pref...
    Go to citation Crossref Google Scholar
  285. Monoarthritis-induced emotional and cognitive impairments in rats are ...
    Go to citation Crossref Google Scholar
  286. Illness Behavior in Patients With Chronic Low Back Pain and Activation...
    Go to citation Crossref Google Scholar
  287. Acute morphine alters GABAergic transmission in the central amygdala d...
    Go to citation Crossref Google Scholar
  288. Cannabinoid receptors in the basolateral amygdala are involved in the ...
    Go to citation Crossref Google Scholar
  289. Recent advances in understanding pain: what lies ahead for critical ca...
    Go to citation Crossref Google Scholar
  290. Alexithymia, Depression, Inflammation, and Pain in Patients With Rheum...
    Go to citation Crossref Google Scholar
  291. Nerve Injury-Induced Neuropathic Pain Causes Disinhibition of the Ante...
    Go to citation Crossref Google Scholar
  292. Emotional regulation of pain: the role of noradrenaline in the amygdal...
    Go to citation Crossref Google Scholar
  293. Decreased food pleasure and disrupted satiety signals in chronic low b...
    Go to citation Crossref Google Scholar
  294. Multivariate Classification of Structural MRI Data Detects Chronic Low...
    Go to citation Crossref Google Scholar
  295. Attentional Bias Toward Negative Information in Patients with Fibromya...
    Go to citation Crossref Google Scholar
  296. CB 1 augments m G lu ...
    Go to citation Crossref Google Scholar
  297. The human amygdala and pain: Evidence from neuroimaging
    Go to citation Crossref Google Scholar
  298. Nasal Application of Neuropeptide S Inhibits Arthritis Pain-Related Be...
    Go to citation Crossref Google ScholarPub Med
  299. Gabapentin Reverses Central Hypersensitivity and Suppresses Medial Pre...
    Go to citation Crossref Google ScholarPub Med
  300. Frameworks of Alcohol Addiction
    Go to citation Crossref Google Scholar
  301. Networks for the Modulation of Acute and Chronic Pain
    Go to citation Crossref Google Scholar
  302. Pain and Brain Changes
    Go to citation Crossref Google Scholar
  303. Neurocircuitry of alcohol addiction
    Go to citation Crossref Google Scholar
  304. Addiction as a stress surfeit disorder
    Go to citation Crossref Google Scholar
  305. Disrupted functional connectivity of the periaqueductal gray in chroni...
    Go to citation Crossref Google Scholar
  306. Emotional modulation of pain and spinal nociception in persons with ma...
    Go to citation Crossref Google Scholar
  307. Amygdalostriatal projections in the neurocircuitry for motivation: a n...
    Go to citation Crossref Google Scholar
  308. Neural mechanisms of pain and alcohol dependence
    Go to citation Crossref Google Scholar
  309. Genetic identification of a neural circuit that suppresses appetite
    Go to citation Crossref Google Scholar
  310. Test‐retest reliability of amygdala response to emotional faces
    Go to citation Crossref Google Scholar
  311. Neuropeptide S: a novel regulator of pain-related amygdala plasticity ...
    Go to citation Crossref Google Scholar
  312. Recognition of Facially Expressed Emotions in Patients with Fibromyalg...
    Go to citation Crossref Google Scholar
  313. Asymmetric pain processing in P arkinson's...
    Go to citation Crossref Google Scholar
  314. Pain and suicidality: Insights from reward and addiction neuroscience
    Go to citation Crossref Google Scholar
  315. Alterations in Endogenous Opioid Functional Measures in Chronic Back P...
    Go to citation Crossref Google Scholar
  316. Amygdala functional connectivity is reduced after the cold pressor tas...
    Go to citation Crossref Google Scholar
  317. A Preliminary Investigation of Human Frontal Cortex Under Noxious Ther...
    Go to citation Crossref Google Scholar
  318. Basolateral Amygdala Lesion Inhibits the Development of Pain Chronicit...
    Go to citation Crossref Google Scholar
  319. Emotional modulation of pain and spinal nociception in fibromyalgia
    Go to citation Crossref Google Scholar
  320. Functional magnetic resonance imaging identifies somatotopic organizat...
    Go to citation Crossref Google Scholar
  321. Morphine‐enhanced apoptosis in selective brain regions of neonatal rat...
    Go to citation Crossref Google Scholar
  322. Atypical Resting‐State Functional Connectivity of Affective Pain Regio...
    Go to citation Crossref Google Scholar
  323. The integration of NSC-derived and host neural networks after rat spin...
    Go to citation Crossref Google Scholar
  324. Somatosensory Abnormalities for Painful and Innocuous Stimuli at the B...
    Go to citation Crossref Google Scholar
  325. Impact de la douleur sur les processus cognitifs chez l’animal : appro...
    Go to citation Crossref Google Scholar
  326. Role of metabotropic glutamate receptor 1 in the basolateral amygdala-...
    Go to citation Crossref Google Scholar
  327. Non-Pain-Related CRF1 Activation in the Amygdala Facilitates Synaptic ...
    Go to citation Crossref Google ScholarPub Med
  328. 5-HT2CR Blockade in the Amygdala Conveys Analgesic Efficacy to SSRIs i...
    Go to citation Crossref Google ScholarPub Med
  329. The Neuroanatomy of Female Pelvic Pain
    Go to citation Crossref Google Scholar
  330. Nociceptive Physiology
    Go to citation Crossref Google Scholar
  331. The amygdala between sensation and affect: a role in pain
    Go to citation Crossref Google Scholar
  332. Localization of pain‐related brain activation: A meta‐analysis of neur...
    Go to citation Crossref Google Scholar
  333. Pain in People With Alzheimer Disease...
    Go to citation Crossref Google ScholarPub Med
  334. The Orally Active Glutamate Carboxypeptidase II Inhibitor E2072 Exhibi...
    Go to citation Crossref Google Scholar
  335. Enhanced sensitivity to punctate painful stimuli in female patients wi...
    Go to citation Crossref Google Scholar
  336. mGluR1,5 activation improves network asynchrony and GABAergic synapse ...
    Go to citation Crossref Google Scholar
  337. Depression and risk of transformation of episodic to chronic migraine
    Go to citation Crossref Google Scholar
  338. Alcohol dependence as a chronic pain disorder
    Go to citation Crossref Google Scholar
  339. TRPV1-Dependent and -Independent Alterations in the Limbic Cortex of N...
    Go to citation Crossref Google Scholar
  340. Negative affective states and their effects on morbidity, mortality an...
    Go to citation Crossref Google Scholar
  341. Asymmetric time‐dependent activation of right central amygdala neurone...
    Go to citation Crossref Google Scholar
  342. Baseline reward circuitry activity and trait reward responsiveness pre...
    Go to citation Crossref Google Scholar
  343. Food-procuring stereotype movements is accompanied by changes of c-Fos...
    Go to citation Crossref Google Scholar
  344. Central Amygdala Metabotropic Glutamate Receptor 5 in the Modulation o...
    Go to citation Crossref Google Scholar
  345. Bindung, Trauma, Schmerz
    Go to citation Crossref Google Scholar
  346. Antinociceptive effects induced by injection of the galanin receptor 1...
    Go to citation Crossref Google Scholar
  347. Blockade of D1/D2 dopamine receptors within the nucleus accumbens atte...
    Go to citation Crossref Google Scholar
  348. Why do you smile at me while I'm in pain? — Pain selectively modulates...
    Go to citation Crossref Google Scholar
  349. Study of emotional and cognitive impairments in mononeuropathic rats: ...
    Go to citation Crossref Google Scholar
  350. The role of the anteriolateral bed nucleus of the stria terminalis in ...
    Go to citation Crossref Google Scholar
  351. NMDAR2B tyrosine phosphorylation is involved in thermal nociception
    Go to citation Crossref Google Scholar
  352. Development of mechanical hypersensitivity in rats during heroin and e...
    Go to citation Crossref Google Scholar
  353. Role of Capsaicin-Sensitive C-Fiber Afferents in Neuropathic Pain-Indu...
    Go to citation Crossref Google ScholarPub Med
  354. The RhoA GTPase-Activating Protein DLC2 Modulates RhoA Activity and Hy...
    Go to citation Crossref Google Scholar
  355. Amygdalar Function Reflects Common Individual Differences in Emotion a...
    Go to citation Crossref Google Scholar
  356. The transition from acute to chronic pain: might intensive care unit p...
    Go to citation Crossref Google Scholar
  357. Experimental neuropathy increases limbic forebrain CRF
    Go to citation Crossref Google Scholar
  358. Differential effects of mGluR7 and mGluR8 activation on pain-related s...
    Go to citation Crossref Google Scholar
  359. Intra-accumbal NMDA but not AMPA/kainate receptor antagonist attenuate...
    Go to citation Crossref Google Scholar
  360. β1-noradrenergic system of the central amygdala is involved in state-d...
    Go to citation Crossref Google Scholar
  361. Pain-related deactivation of medial prefrontal cortical neurons involv...
    Go to citation Crossref Google Scholar
  362. A developmental, body-oriented intervention for children and adolescen...
    Go to citation Crossref Google ScholarPub Med
  363. Molecular and electrophysiological changes in the prefrontal cortex–am...
    Go to citation Crossref Google Scholar
  364. Erasing injury-related cortical synaptic potentiation as a new treatme...
    Go to citation Crossref Google Scholar
  365. Investigation of the large-scale functional brain networks modulated b...
    Go to citation Crossref Google Scholar
  366. Corticosterone does not change open elevated plus maze-induced antinoc...
    Go to citation Crossref Google Scholar
  367. Painful Diabetic Neuropathy is More than Pain Alone: Examining the Rol...
    Go to citation Crossref Google Scholar
  368. CGRP
    Go to citation Crossref Google Scholar
  369. Negative Affect Heightens Opiate Withdrawal-Induced Hyperalgesia in He...
    Go to citation Crossref Google Scholar
  370. ERK, synaptic plasticity and acid-induced-muscle pain
    Go to citation Crossref Google Scholar
  371. Dyspnoea and the brain
    Go to citation Crossref Google Scholar
  372. Central CRH administration changes formalin pain responses in male and...
    Go to citation Crossref Google Scholar
  373. Investigation of a central nucleus of the amygdala/dorsal raphe nucleu...
    Go to citation Crossref Google Scholar
  374. Spinal Cord Injuries Induce Changes in CB 1 ...
    Go to citation Crossref Google Scholar
  375. Metabotropic Glutamate Receptor Subtype 8 in the Amygdala Modulates Th...
    Go to citation Crossref Google Scholar
  376. Pain and the brain: Specificity and plasticity of the brain in clinica...
    Go to citation Crossref Google Scholar
  377. Can neuroimaging studies identify pain endophenotypes in humans?
    Go to citation Crossref Google Scholar
  378. Role of different brain areas in peripheral nerve injury-induced neuro...
    Go to citation Crossref Google Scholar
  379. Transdural motor cortex stimulation reverses neuropathic pain in rats:...
    Go to citation Crossref Google Scholar
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    Go to citation Crossref Google Scholar
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    Go to citation Crossref Google Scholar
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    Go to citation Crossref Google Scholar
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    Go to citation Crossref Google Scholar
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    Go to citation Crossref Google Scholar
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    Go to citation Crossref Google Scholar

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