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Review

Brain functional domains inform therapeutic interventions in attention-deficit/hyperactivity disorder and pediatric bipolar disorder

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Pages 897-914 | Published online: 09 Jan 2014

References

  • Insel TR, Cuthbert BN. Endophenotypes: bridging genomic complexity and disorder heterogeneity. Biol. Psychiatry66(11), 988–989 (2009).
  • Galanter CA, Leibenluft E. Frontiers between attention deficit hyperactivity disorder and bipolar disorder. Child Adolesc. Psychiatr. Clin. N. Am.17, 325–346 (2008).
  • Singh MK, Chang KD, Mazaika P et al. Neural correlates of response inhibition in pediatric bipolar disorder. J. Child Adolesc. Psychopharmacol.20(1), 15–24 (2010).
  • Geller B, Warner K, Williams M, Zimerman B. Prepubertal and young adolescent bipolarity versus ADHD: assessment and validity using the WASH-U-KSADS, CBCL, and TRF. J. Affect. Disord.51(2), 93–100 (1998).
  • Biederman J, Mick E, Faraone SV, Spencer T, Wilens TE, Wozniak J. Pediatric mania: a developmental subtype of bipolar disorder? Biol. Psychiatry48, 458–466 (2000).
  • Dickstein DP, Garvey M, Pradella AG et al. Neurologic examination abnormalities in children with bipolar disorder or attention deficit/hyperactivity disorder. Biol. Psychiatry58, 517–524 (2005).
  • Biederman J, Faraone SV. Attention-deficit hyperactivity disorder. Lancet366, 237–248 (2005).
  • Barkley RA. Behavioral inhibition, sustained attention, and executive functions: Constructing a unifying theory of ADHD. Psychol. Bull.121(1), 65–94 (1997).
  • Barkley RA. Psychosocial treatments for attention-deficit/hyperactivity disorder in children. J. Clin. Psychiatry63(Suppl. 12), 36–43 (2002).
  • Barkley RA, Fischer M. The unique contribution of emotional impulsiveness to impairment in major life activities in hyperactive children as adults. J. Am. Acad. Child Adolesc. Psychiatry49(5), 503–513 (2010).
  • Sonuga-Barke EJS. The dual pathway model of AD/HD: an elaboration of neuro-developmental characteristics. Neurosci. Biobehav. Rev.27, 593–604 (2003).
  • Tripp G, Wickens JR. Research review: dopamine transfer deficit: a neurobiological theory of altered reinforcement mechanisms in ADHD. J. Child Psychol. Psychiatry49(7), 691–704 (2008).
  • Scheres A, Milham MP, Knutson B, Castellanos FX. Ventral striatal hyper- responsiveness during reward anticipation in attention deficit/hyperactivity disorder. Biol. Psychiatry61(5), 720–724 (2007).
  • Rubia K, Taylor E, Smith H, Oksannen H, Overmeyer S, Newman S. Neuropsychological analyses of impulsiveness in childhood hyperactivity. Br. J. Psychiatry179, 138–143 (2001).
  • Bush G, Frazier JA, Rauch SL et al. Anterior cingulate cortex dysfunction in attention-deficit/hyperactivity disorder revealed by fMRI and the counting stroop. Biol. Psychiatry45, 1542–1552 (1999).
  • American Psychiatric Association. Diagnostic and Statistical Manual of Mental Disorders IV-TR. American Psychiatric Association, Washington DC, USA (2000).
  • Pavuluri MN, Birmaher B, Naylor M. Pediatric bipolar disorder: ten year review. J. Am. Acad. Child Adolesc. Psychiatry44(9), 846–871 (2005).
  • Leibenluft E, Charney DS, Towbin KE, Bhangoo RK, Pine DS. Defining clinical phenotypes of juvenile mania. Am. J. Psychiatry160, 430–437 (2003).
  • Geller B, Zimerman B, Williams M et al. DSM-IV mania symptoms in a prepubertal and early adolescent bipolar disorder phenotype compared to attention-deficit hyperactive and normal controls. J. Child Adolesc. Psychopharmacol.12(1), 11–25 (2002).
  • Rich BA, Schmajuk M, Perez-Edgar KE, Pine DS, Fox NA, Leibenluft E. The impact of reward, punishment, and frustration on attention in pediatric bipolar disorder. Biol. Psychiatry58, 532–539 (2005).
  • Dickstein DP, Nelson EE, McClure EB et al. Cognitive flexibility in phenotypes of pediatric bipolar disorder. J. Am. Acad. Child Adolesc. Psychiatry46(3), 341–355 (2007).
  • Biederman J, Faraone S, Mick E et al. Attention-deficit hyperactivity disorder and juvenile mania: an overlooked comorbidity? J. Am. Acad. Child Adolesc. Psychiatry35(8), 997–1008 (1996).
  • Pavuluri MN, Schenkel LS, Aryal S et al. Neurocognitive function in unmedicated manic and medicated euthymic pediatric bipolar patients. Am. J. Psychiatry163, 286–293 (2006).
  • Pavuluri MN, West A, Hill K, Jindal K, Sweeney JA. Neurocognitive function in pediatric bipolar disorder: three-year follow-up shows cognitive development lagging behind healthy youth. J. Am. Acad. Child Adolesc. Psychiatry48(3), 299–307 (2009).
  • Lewinsohn PM, Shankman SA, Gau JM, Klein DN. The prevalence and co-morbidity of subthreshold psychiatric conditions. Psychol. Med.34(4), 613–622 (2004).
  • DelBello MP, Hanseman D, Adler CM, Fleck DE, Strakowski SM. Twelve-month outcome of adolescents with bipolar disorder following first hospitalization for a manic or mixed episode. Am. J. Psychiatry164(4), 582–590 (2007).
  • Birmaher B. Longitudinal course of pediatric bipolar disorder. Am. J. Psychiatry164(4), 537–539 (2007).
  • Miller EK, Cohen JD. An integrative theory of prefrontal cortex function. Annu. Rev. Neurosci.24, 167–202 (2001).
  • Giedd JN, Blumenthal J, Jeffries NO et al. Brain development during childhood and adolescence: a longitudinal MRI study. Nat. Neurosci.2(10), 861–863 (1999).
  • Casey BJ, Castellanos FX, Giedd JN et al. Implication of right frontostriatal circuitry in response inhibition and attention-deficit/hyperactivity disorder. J. Am. Acad. Child Adolesc. Psychiatry36, 374–383 (1997).
  • Luna B, Thulborn KR, Munoz DP et al. Maturation of widely distributed brain function subserves cognitive development. NeuroImage13, 786–793 (2001).
  • Luna B, Garver KE, Urban TN, Lazar N, Sweeney JA. Maturation of cognitive processes from late childhood to adulthood. Child Dev.75, 1357–1372 (2004).
  • Posner MI, Rothbart MK. Developing mechanisms of self-regulation. Dev. Psychopathol.12, 427–441 (2000).
  • Blakemore SJ, Choudhury S. Development of the adolescent brain: implications for executive function and social cognition. J. Child Psychol. Psychiatry47, 296–312 (2006).
  • Gorrindo T, Blair RJR, Budhani S, Dickstein DP, Pine DS, Leibenluft E. Deficits on a probabilistic response-reversal task in patients with pediatric bipolar disorder. Am. J. Psychiatry, 162, 1975–1977 (2005).
  • Rich BA, Holroyd T, Carver FW et al. A preliminary study of the neural mechanisms of frustration in pediatric bipolar disorder using magnetoencephalography. Depress. Anxiety27(3), 276–286 (2010).
  • Pizzagalli DA, Goetz E, Ostacher M, Iosifescu DV, Perlis RH. Euthymic patients with bipolar disorder show decreased reward learning in a probabilistic reward task. Biol. Psychiatry64(2), 162–168 (2008).
  • Doyle AE, Willcutt EG, Seidman LJ et al. Attention-deficit/hyperactivity disorder endophenotypes. Biol. Psychiatry57, 1324–1335 (2005).
  • Rucklidge JJ. Impact of ADHD on the neurocognitive functioning of adolescents with bipolar disorder. Biol. Psychiatry60, 921–928 (2006).
  • Barkley RA. Deficient emotional self-regulation: a core component of attention deficit/hyperactivity disorder. J. ADHD Rela. Disord.1(2), 5–37, (2009).
  • Skirrow C, McLoughlin G, Kuntsi J, Asherson P. Behavioral, neurocognitive and treatment overlap between attention-deficit/hyperactivity disorder and mood instability. Expert Rev. Neurother.9(4), 489–503 (2009).
  • Casey BJ. Emotional competence in children with externalizing and internalizing disorders. In: Emotional Development in Atypical Children. Lewis M, Sullivan M (Eds). Erlbaum, NJ, USA, 161–183 (1996).
  • Braaten EB, Rosen LA. Self-regulation of affect in attention-deficit hyperactivity disorder (ADHD) and non-ADHD boys: differences in empathic responding. J. Consult. Clin. Psychol.68, 313–321 (2000).
  • Friedman SR, Rapport LJ, Lumley M et al. Aspects of social and emotional competence in adult attention-deficit/hyperactivity disorder. Neuropsychology17(1), 50–58 (2003).
  • Brotman MA, Rich BA, Guyer AE et al. Amygdala activation during emotion processing of neutral faces in children with severe mood dysregulation versus ADHD or bipolar disorder. Am. J. Psychiatry167(1), 61–69 (2010).
  • Logan GD, Cowan WB, Davis KA. On the ability of inhibit simple and choice reaction time responses: a model and a method. J. Exp. Psychol. Hum. Percept. Perform.10, 276–291 (1984).
  • Hoeksma JB, Osterlaan J, Schipper E. Emotion regulation and the dynamics of feelings: a conceptual and methodological framework. Child Dev.75(2), 354–360 (2004).
  • Rubia K, Overmeyer S, Taylor E et al. Hypofrontality in attention deficit hyperactivity disorder during higher-order motor control: a study with functional MRI. Am. J. Psychiatry156, 891–896 (1999).
  • Garavan H, Ross TJ, Murphy K, Roche RA, Stein EA. Dissociable executive functions in the dynamic control of behavior: inhibition, error detection, and correction. Neuroimage17, 1820–1829 (2002).
  • Casey BJ, Giedd JN, Thomas KM. Structural and functional brain development and its relation to cognitive development. Biol. Psychol.54(1–3), 241–257 (2000)
  • Durston S, Thomas KM, Worden MS, Yang Y, Casey BJ. The effect of preceding context on inhibition: an event-related fMRI study. Neuroimage2, 449–453 (2002).
  • Oosterlaan J, Logan GD, Sergeant JA. Response inhibition in AD/HD, CD, comorbid AD/HD + CD, anxious, and control children: a meta-analysis of studies with the stop task. J. Child Psychol. Psychiatry39(3), 411–425 (1998).
  • Nigg JT. Is ADHD a disinhibitory disorder? Psychol. Bull.127, 571–598 (2001).
  • Adams ZW, Derefinko KJ, Milich R, Fillmore MT. Inhibitory functioning across ADHD subtypes: recent findings, clinical implications, and future directions. Dev. Disabil. Res. Rev.14(4), 268–275 (2008).
  • Fillmore MT, Milich R, Lorch EP. Inhibitory deficits in children with attention-deficit/hyperactivity disorder: intentional versus automatic mechanisms of attention. Dev. Psychopathol.21(2), 539–554 (2009).
  • Shaw P, Eckstrand K, Sharp W, Blumenthal J, Lerch JP, Greenstein D et al. Attention-deficit/hyperactivity disorder is characterized by a delay in cortical maturation. Proc. Natl Acad. Sci. USA104, 19649–19654 (2007).
  • Sonuga-Barke EJS, Sergeant JA, Nigg J, Willcutt, S. Executive dysfunction and delay aversion in attention deficit hyperactivity disorder: nosologic and diagnostic implications. Child Adolesc. Psychiatry Clin. N. Am.17, 367–384 (2008).
  • Nigg JT, Casey BJ. An integrative theory of attention-deficit/hyperactivity disorder based on the cognitive and affective neurosciences. Dev. Psychopathol.17(3), 785–806 (2005).
  • Castellanos FX, Sonuga-Barke EJ, Milham MP, Tannock R. Characterizing cognition in ADHD: beyond executive dysfunction. Trends Cogn. Sci.10, 117–123 (2006).
  • Rubia K. ‘Cool’ inferior frontostriatal dysfunction in attention-deficit/hyperactivity disorder versus ‘hot’ ventromedial orbitofrontal-limbic dysfunction in conduct disorder: a review. Biol. Psychiatry (2010) DOI: 10.1016/j.biopsych.2010.09.023 (Epub ahead of print).
  • Solanto MV. Dopamine dysfunction in AD/HD: integrating clinical and basic neuroscience research. Behav. Brain Res.130, 65–71 (2002).
  • Diamond A, Prevor MB, Callender G, Druin DP. Prefrontal cortex cognitive deficits in children treated early and continuously for PKU. Monogr. Soc. Res. Child Dev.62(4), i-v, 1–208 (1997).
  • Sagvolden T, Johansen EB, Aase H, Russell VA. A dynamic developmental theory of attention-deficit/hyperactivity disorder (ADHD) predominantly hyperactive/impulsive and combined subtypes. Behav. Brain Sci.28, 397–419 (2005).
  • Russell VA, Sagvolden T, Johansen EB. Animal models of attention-deficit hyperactivity disorder. Behav. Brain Funct.1, 9 (2005).
  • Paine TA, Neve RL, Carlezon, A. Attention deficits and hyperactivity following inhibition of cAMP-dependent protein kinase within the medial prefrontal cortex of rats. Neuropsychopharmacology34, 2143–2155 (2009).
  • Leibenluft E, Rich BA, Vinton DT et al. Neural circuitry engaged during unsuccessful motor inhibition in pediatric bipolar disorder. Am. J. Psychiatry164, 52–60 (2007).
  • Passarotti AM, Sweeney JA, Pavuluri MN. Neural correlates of response inhibition deficits in pediatric bipolar disorder and attention deficit hyperactivity disorder. Psychiatry Res.181(1), 36–43 (2010).
  • Pavuluri MN, Passarotti AM, Harral EM, Sweeney JA. Enhanced prefrontal function with pharmacotherapy on a response inhibition task in adolescent bipolar disorder. J. Clin. Psychiatry71, 1–9 (2010).
  • Eagle DM, Robbins, TW. Inhibitory control in rats performing a stop-signal reaction-time task: effects of lesions of the medial striatum and D-amphetamine. Behav. Neurosci.117(6), 1302–1317 (2003).
  • Aron AR, Poldrack, RA. The cognitive neuroscience of response inhibition: relevance for genetic research in attention-deficit/hyperactivity disorder. Biol. Psychiatry57, 1285–1292 (2005).
  • Verbruggen F, Logan GD. Response inhibition in the stop-signal paradigm. Trends Cogn. Sci.12(11), 418–424 (2008).
  • Tillman CM, Thorell LB, Brocki KC, Bohlin G. Motor response inhibition and execution in the stop signal task: development and relation to ADHD behaviors. Child Neuropsychology14(1), 42–59 (2008).
  • Johnstone SJ, Dimoska A, Smith JL et al. The development of stop-signal and Go/Nogo response inhibition in children aged 7–12 years: performance and event-related potential indices. Int. J.Psychophysiol.63(1), 25–38 (2007).
  • Plitzka SR, Glahn DC, Semrud-Clikeman M et al. Neuroimaging of inhibitory control areas in children with attention deficit hyperactivity disorder who were treatment naïve or in long-term treatment. Am. J. Psychiatry163(6), 1052–1060 (2006).
  • Durston S, Tottenham NT, Thomas KM et al. Differential patterns of striatal activation in young children with and without ADHD. Biol. Psychiatry53(10), 871–878 (2003).
  • Durston S, Mulder M, Casey BJ, Ziermans T, van Engeland H. Activation in ventral prefrontal cortex is sensitive to genetic vulnerability for attention deficit hyperactivity disorder. Biol. Psychiatry60, 1062–1070 (2006).
  • Tamm L, Menon V, Ringel J, Reiss AL. Event-related fMRI evidence of frontotemporal involvement in aberrant response inhibition and task switching in attention-deficit/hyperactivity disorder. J. Am. Acad. Child Adolesc. Psychiatry43, 1430–1440 (2004).
  • Castellanos FX, Giedd JN, Marsh WL et al. Quantitative brain magnetic resonance imaging in attention-deficit hyperactivity disorder. Arch. Gen. Psychiatry53(7), 607–616 (1996).
  • Filipek PA, Semrud-Clikeman M, Steingard RJ, Renshaw PF, Kennedy DN, Biederman, J. Volumetric MRI analysis comparing subjects having attention-deficit hyperactivity disorder with normal controls. Neurology48(3), 589–601 (1997).
  • Castellanos FX, Tannock R. Neuroscience of attention-deficit hyperactivity disorder: the search for endophenotypes. Nat. Neurosci.3, 617–628 (2002).
  • Pavuluri MN, O’Connor MM, Harral EM, Sweeney JA. An fMRI study of the interface between affective and cognitive neural circuitry in pediatric bipolar disorder. Psychiatry Res.162(3), 244–255 (2008).
  • Blumberg HP, Leung HC, Skudlarski P et al. A functional magnetic resonance imaging study of bipolar disorder: state- and trait-related dysfunction in ventral prefrontal cortices. Arch. Gen.Psychiatry60, 601–609 (2003).
  • Konishi S, Nakajima K, Uchida I, Kikyo H, Kameyama M, Miyashita Y. Common inhibitory mechanism in human inferior prefrontal cortex revealed by event-related functional MRI. Brain122, 981–991 (1999).
  • Alexander GE, DeLong MR, Strick PL. Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annu. Rev. Neurosci.9, 357–338 (1986).
  • D’Esposito M, Postle BR, Rypma B. Prefrontal cortical contributions to working memory: evidence from event-related fMRI studies. Exp. Brain Res.133(1), 3–11 (2000).
  • Pavuluri MN, Yang S, Kamineni K et al. DTI Study of white matter fiber tracts: in pediatric bipolar disorder and attention deficit hyperactivity disorder. Biol. Psychiatry65(7), 586–593 (2009).
  • Passarotti AM, Sweeney JA, Pavuluri MN. Differential engagement of cognitive and affective neural systems in pediatric bipolar disorder and attention deficit hyperactivity disorder. J. Int. Neuropsychol. Soc.16(1), 106–117 (2010).
  • Passarotti AM, Sweeney JA, Pavuluri MN. Emotion processing influences working memory circuits in pediatric bipolar disorder and attention deficit hyperactivity disorder. J. Am. Acad. Child Adolesc. Psychiatry9(10), 1064–1080 (2010).
  • Petrides M, Pandya DN. Comparative cytoarchitectonic analysis of the human and the macaque ventrolateral prefrontal cortex and corticocortical connection patterns in the monkey. Eur. J. Neurosci.16, 291–310 (2002).
  • Frangou S, Haldane M, Roddy D, Kumari V. Evidence for deficit in tasks of ventral, but not dorsal, prefrontal executive function as an endophenotypic marker for bipolar disorder. Biol. Psychiatry58(10), 838–839 (2005).
  • Bush G. Attention-deficit hyperactivity disorder and attention networks. Neuropsychopharmacology35, 278–300 (2010).
  • Haber SN, Knutson B. The reward circuit: linking primate anatomy and human imaging. Neuropsychopharmacol. Rev.1–23 (2009).
  • Robbins TW, Everitt BJ. Neurobehavioural mechanisms of reward and motivation. Curr. Opin. Neurobiol.6, 228–236 (1996).
  • Rolls ET. The orbitofrontal cortex and reward. Cerebral Cortex10, 284–294 (2000).
  • McClure SM, Laibson DI, Lowenstein G, Cohen JD. Separate neural systems value immediate and delayed monetary rewards. Science306, 503–507 (2004).
  • Balleine BW, Delgado MR, Hikosaka O. The role of the dorsal striatum in reward and decision-making. J. Neurosci.27, 8161–8165 (2007).
  • Fareri D, Martin L, Delgado M. Reward-related processing in the human brain: Developmental considerations. Dev. Psychopathol.20, 1191–1211 (2008).
  • Passarotti AM, Sweeney JA, Pavuluri MN. Neural correlates of incidental and directed facial emotion processing in adolescents and adults. Soc.Cogn. Affect. Neurosci.4, 387–398 (2009).
  • Geier C, Luna B. The maturation of incentive processing and cognitive control. Pharmacol. Biochem. Behav.93, 212–221 (2009).
  • Ernst M, Nelson, EE, Jazbec, S et al. Amygdala and nucleus accumbens in responses to receipt and omission of gains in adults and adolescents. Neuroimage25, 1279–1291 (2005).
  • Ernst M, Pine DS, Hardin M. Triadic model of the neurobiology of motivated behavior in adolescence. Psychol. Med.36, 299–312 (2006).
  • May JC, Delgado MR, Dahl RE et al. Event-related functional magnetic resonance imaging of reward-related brain circuitry in children and adolescents. Biol. Psychiatry55, 359–366 (2004).
  • Bjork JM, Smith AR, Danube CL, Hommer DW. Developmental differences in posterior mesofrontal cortex recruitment by risky rewards. J. Neurosci.27, 4839–4849 (2007).
  • Eshel N, Nelson EE, Blair RJ, Pine, DS, Ernst M. Neural substrates of choice selection in adults and adolescents: Development of the ventrolateral prefrontal and anterior cingulate cortices. Neuropsychologia45, 1270–1279 (2007).
  • Luman M, Oosterlaan J, Sergeant JA. The impact of reinforcement contingencies on AD/HD: a review and theoretical appraisal. Clin. Psychol. Rev.25(2), 183–213 (2005).
  • Luman M, Tripp G, Scheres A. Identifying the neurobiology of altered reinforcement sensitivity in ADHD: a review and research agenda. Neurosci. Biobehav. Rev.34, 744–754 (2010).
  • Sonuga-Barke EJS, Taylor E, Sembi E, Smith J. Hyperactivity and delay aversion. I. The effect of delay on choice. J. Child Psychol. Psychiatry33387–398 (1992).
  • Drechsler R, Rizzo P, Steinhausen HC. Decision-making on an explicit risk-taking task in preadolescents with attention-deficit/hyperactivity disorder, J. Neural Transm.115, 201–209 (2008).
  • Faregh N, Derevensky J. Gambling behavior among adolescents with attention deficit/hyperactivity disorder. J. Gambl. Stud. DOI: 10.1007/s10899-010-9211-3 (2010) (Epub ahead of print).
  • Dibbets P, Evers L, Hurks P, Marchetta N, Jolles J. Differences in feedback- and inhibition- related neural activity in adult ADHD. Brain Cogn.70, 73–83 (2009).
  • Pavuluri MN, O’Connor MM, Harral EM, Sweeney JA. Affective neural circuitry during facial emotion processing in pediatric bipolar disorder. Biol. Psychiatry62, 158–167 (2007).
  • Passarotti AM, Sweeney JA, Pavuluri MN. Fronto-limbic dysfunction in mania pre-treatment and persistent amygdala over-activity post-treatment in pediatric bipolar disorder. Psychopharmacology (Berl.) DOI: 10.1007/s00213-011-2243-2 (2011) (Epub ahead of print).
  • Dickstein DP, Finger EC, Skup M, Pine DS, Blair JR, Leibenluft E. Altered neural function in pediatric bipolar disorder during reversal learning. Bipolar Disord.12(7), 707–719 (2010).
  • Abler B, Greenhouse I, Ongur D, Walter H, Heckers S. Abnormal reward system activation in mania. Neuropsychopharmacology33(9), 2217–2227 (2008).
  • Strakowski SM, DelBello MP, Fleck DE, Arndt S. The impact of substance abuse on the course of bipolar disorder. Biol. Psychiatry48(6), 477–485 (2000).
  • Marsh R, Zhu H, Schultz RT et al. A developmental fMRI study of self-regulatory control. Hum. Brain Mapp.27(11), 848–863 (2009).
  • Pavuluri MN, Passarotti AM. Neural bases of emotional processing in pediatric bipolar disorder. Expert Rev. Neurother.8(9), 1381–1387 (2008).
  • Pavuluri MN, Passarotti AM, Harral EM, Sweeney JA. An fMRI study of the neural correlates of incidental versus directed emotion processing in pediatric bipolar disorder. J. Am. Acad. Child Adolesc. Psychiatry48, 308–319 (2009).
  • Tricomi EM, Delgado MR, Fiez JA. Modulation of caudate activity by action contingency. Neuron41(2), 281–292 (2004).
  • Barto AG. Adaptive critics and the basal ganglia. In: Models of Information Processing in the Basal Ganglia. Houk JC, Davis JL Beiser DG (Eds). MIT Press, MA, USA 215–232 (1995).
  • O’Doherty J, Dayan P, Schultz J, Deichmann R, Friston K, Dolan RJ. Dissociable roles of ventral and dorsal striatum in instrumental conditioning. Science304, 452–454 (2004).
  • Bechara A, Tranel D, Damasio H. Characterization of the decision-making deficit of patients with ventromedial prefrontal cortex lesions. Brain123(11), 2189–2202 (2000).
  • Knutson B, Fong GW, Bennett SM, Adams CM, Homme D. A region of mesial prefrontal cortex tracks monetarily rewarding outcomes: characterization with rapid event-related fMRI. Neuroimage18, 263–272 (2003).
  • Hampton AN, Adolphs R, Tyszka MJ, O’Doherty JP. Contributions of the amygdala to reward expectancy and choice signals in human prefrontal cortex. Neuron55(4), 545–555 (2007).
  • Knutson B, Fong GW, Adams CS, Hommer D. Dissociation of reward anticipation versus outcome with event-related fMRI. Neuroreport12, 3683–3687 (2001).
  • Hare TA, O’Doherty J, Camerer CF, Schultz W, Rangel A. Dissociating the role of the orbitofrontal cortex and the striatum in the computation of goal values and prediction errors. J. Neurosci.28(22), 5623–5630 (2008).
  • Carter R, MacInnes J, Huettel SA, Adcock R. Activation in the VTA and nucleus accumbens increases in anticipation of both gains and losses. Front. Behav. Neurosci.3, 21 (2009).
  • Levita L, Hare TA, Voss HU, Glover G, Ballon DJ, Casey BJ. The bivalent side of the nucleus accumbens. Neuroimage44(3), 1178–1187 (2009).
  • Adolphs R. Neural systems for recognizing emotion. Curr. Opin. Neurobiol.12, 169–177 (2002).
  • Paton JJ, Belova MA, Morrison SE, Salzman CD. The primate amygdala represents the positive and negative value of visual stimuli during learning. Nature439(7078), 865–870 (2006).
  • Salzman CD, Paton JJ, Belova MA, Morrison SE. Flexible neural representations of value in the primate brain. Ann. NY Acad. Sci.1121, 336–354 (2007).
  • Gottfried JA, O’Doherty J, Dolan RJ. Encoding predictive reward value in human amygdala and orbitofrontal cortex. Science301(5636), 1104–1107 (2003).
  • Cardinal RN, Parkinson JA, Lachenal, G et al. Effects of selective excitotoxic lesions of the nucleus accumbens core, anterior cingulate cortex, and central nucleus of the amygdala on autoshaping performance in rats. Behav. Neurosci.116, 553–567 (2002).
  • Passarotti AM, Ellis J, Wegbreit E, Varghese B, Stevens MC, Pavuluri MN. Working memory networks are influenced by facial emotions in pediatric bipolar disorder. Presented at: The Pediatric Bipolar Conference, Boston, MA, USA, 24–25 March (2011).
  • Foland LC, Altshuler LL, Bookheimer SY, Eisenberger N, Townsend J, Thompson PM. Evidence for deficitent modulation of amygdala response by prefrontal cortex in bipolar mania. Psychiatry Res.162, 27–37 (2008).
  • Coghill D, Seth S. Do the diagnostic criteria for ADHD need to change? Comments on the preliminary proposals of the DSM-5 ADHD and disruptive behavior disorders committee. Eur. J. Adolesc. Psychiatry20, 75–81 (2011).
  • Leibenluft E, Blair RJ, Charney DS, Pine DS. Irritability in pediatric mania and other childhood psychopathology. Ann. NY Acad. Sci.1008, 201–218 (2003b).
  • Leibenluft E. Severe mood dysregulation, irritability, and the diagnostic boundaries of bipolar disorder in youths. Am. J. Psychiatry168(2), 129–142 (2011).
  • Rich BA, Brotman MA, Dickstein DP, Mitchell DG, Blair RJ, Leibenluft E. Deficits in attention to emotional stimuli distinguish youth with severe mood dysregulation from youth with bipolar disorder. J. Abnorm. Child Psychol.38(5): 695–706 (2010).
  • Rau G, Blair KS, Berghorst L et al. Processing of differentially valued rewards and punishments in youths with bipolar disorder or severe mood dysregulation. J. Child Adolesc. Psychopharmacol.18(2), 185–196 (2008).
  • Daly BP, Creed T, Xanthopoulos M, Brown RT. Psychosocial treatments for children with attention deficit/hyperactivity disorder. Neuropsychol. Rev.17(1), 73–89 (2007).
  • Pelham WE Jr, Fabiano GA. Evidence-based psychosocial treatments for attention-deficit/hyperactivity disorder. J. Clin. Child Adolesc. Psychol.37(1), 184–214 (2008).
  • Fehlings DL, Roberts W, Humphries T, Dawe G. Attention deficit hyperactivity disorder: does cognitive behavioral therapy improve home behavior? J. Dev. Behav. Pediatr.12(4), 223–228 (1991).
  • Chronis AM, Fabiano GA, Gnagy EM, Wymbs B, Burrows-Mac-Lean L, Pelham WE. Comprehensive, sustained behavioral and pharmacological treatment for ADHD: a case study. Cogn. Behav. Practice, 8, 346 (2001).
  • Pavuluri MN, Graczyk PA, Henry DB, Carbray JA, Heidenreich J, Miklowitz DJ. Child- and family-focused cognitive-behavioral therapy for pediatric bipolar disorder: development and preliminary results. J. Am. Acad. Child Adolesc. Psychiatry43(5), 528–537 (2004).
  • West AE, Henry DB, Pavuluri MN. Maintenance model of integrated psychosocial treatment in pediatric bipolar disorder: a pilot feasibility study. J. Am. Acad. Child Adolesc. Psychiatry46(2), 205–212 (2007).
  • West AE, Pavuluri MN. Psychosocial treatments for childhood and adolescent bipolar disorder. Child Adolesc. Psychiatr. Clin. N. Am.18(2), 471–482 (2009).
  • Klingberg T, Fernell E, Olesen PJ et al. Computerized traininig of working memory in children with ADHD – a randomized controlled trial. J. Am. Acad. Child Adolesc. Psychiatry44, 177–186 (2005).
  • Holmes J, Gathercole SE, Dunning GL. Adaptive training leads t osustained enhancement of poor working memory in children. Dev. Sci.12(4), F9–15 (2009).
  • Thorell LB, Linqvist S, Bergman nutley S, Bolin G, Klingberg T. Training and transfer effects of executive function in preschool children Dev. Sci.12(1), 106–113 (2009).
  • Tannock R (1998). Attention deficit hyperactivity disorder: advances in cognitive, neurobiological, and genetic research. J. Child Psychol. Psychiatry39, 65–99 (1998).
  • Sheridan MA, Hinshaw S, D’Esposito M. Stimulant medication and prefrontal functional connectivity during working memory in ADHD: a preliminary report. J. Atten. Disord.14(1), 69–78 (2010).
  • Volkow ND, Wang G, Fowler JS et al. Therapeutic doses of oral methylphenidate significantly increase extracellular dopamine in the human brain. J. Neurosci.21(2), RC121 (2001).
  • Wilens TE. Attention-deficit/hyperactivity disorder and the substance use disorders: the nature of the relationship, subtypes at risk, and treatment issues. Psychiatr. Clin. North Am.27(2), 283–301 (2004).
  • Vaidya CJ, Austin G, Kirkorian G et al. Selective effects of methylphenidate in attention deficit hyperactivity disorder: a functional magnetic resonance imaging study. Proc. Natl Acad. Sci. USA95, 14494–14499 (1998).
  • Shafritz KM, Marchione KE, Gore JC, Shaywitz SE, Shaywitz BA. The effects of methylphenidate on neural systems of attention in attention deficit hyperactivity disorder. Am. J. Psychiatry161, 1990–1997 (2004).
  • Rubia K, Halari R, Cubillo A, Mohammad AM, Brammer M, Taylor E. Methylphenidate normalises activation and functional connectivity deficits in attention and motivation networks in medication-naïve children with ADHD during a rewarded continuous performance task. Neuropharmacology57(7–8), 640–652 (2009).
  • Wigal SB, Chae S, Patel A, Steinberg-Epstein R. Advances in the treatment of attention-deficit/hyperactivity disorder: a guide for pediatric neurologists. Semin. Pediatr. Neurol.17(4), 230–236 (2010).
  • Groom MJ, Scerif G, Liddle PF et al. Effects of motivation and medication on electrophysiological markers of response inhibition in children with attention deficit/hyperactivity disorder. Biol. Psychiatry67, 624–631 (2010).
  • Chen J, Fang Y, Kemp DE, Calabrese JR, Gao K. Switching to hypomania and mania: differential neurochemical, neuropsychological, and pharmacologic triggers and their mechanisms. Curr. Psychiatry Rep.12(6), 512–521 (2010).
  • Pavuluri MN, Passarotti AM, Parnes SA, Fitzgerald JM, Sweeney, JA. A pharmacological fMRI study probing the interface of cognitive and emotional brain systems in pediatric bipolar disorder. J. Child Adolesc. Psychopharmacol.20(5), 395–406 (2010).
  • Pavuluri MN, Passarotti AM, Fitzgerald JM, Sweeney JA. Risperidone and divalproex differentially engange the fronto–striato–temporal circuitry in pediatric mania: a pharmacological fMRI study. J. Am. Acad. Child Adolesc. Psychiatry (2011) (In press).
  • Pavuluri MN, Passarotti AM, Mohammed T, Carbray J, Sweeney JA. Enhanced working and verbal memory after lamotrigine treatment in pediatric bipolar disorder. Bipolar Disord.12(2), 213–220 (2010).
  • Pavuluri MN, Passarotti AM, Lu LH, Carbray JA, Sweeney JA. Double-blind randomized trial of risperidone versus divalproex in pediatric bipolar disorder: fMRI outcomes. Psychiatry Res. (In press).
  • Kessler RC, Berglund, P et al. Lifetime prevalence and age-of-onset distributions of DSM-IV disorders in the national Comorbidity Survey replication. Arch. Gen. Psychiatry62(6), 593–602 (2005).
  • Insel TR. Foreword. Developmental cognitive neuroscience. Dev. Cogn. Neurosci.1, 1–2 (2011).
  • Rich BA, Schmajuk M, Perez-Edgar KE, Fox NA, Pine DS, Leibenluft E. Different psychophysiological and behavioral responses elicited by frustration in pediatric bipolar disorder and severe mood dysregulation. Am. J. Psychiatry164, 309–317 (2007).
  • Calhoun V, Wu L, Kiehl K, Eichele T, Pearlson G. Aberrant processing of deviant stimuli in schizophrenia revealed by fusion of fMRI and EEG data. Acta Neuropsychiatr.22(3), 127–138 (2010).
  • Stevens MC. The developmental cognitive neuroscience of functional connectivity. Brain Cogn.70, 1–12 (2009).
  • Calhoun VD, Maciejewski PK, Pearlson GD, Kiehl KA. Temporal lobe and ‘default’ hemodynamic brain modes discriminate between schizophrenia and bipolar disorder. Hum. Brain Mapp.29(11), 1265–1275 (2008).
  • Zhu CZ, Zang YF, Cao QJ et al. Fisher discriminative analysis of resting-state brain function for attention-deficit/hyperactivity disorder. Neuroimage40, 110–120 (2008).
  • Castellanos FX, Margulies DS, Kelly C et al. Cingulate–precuneus interactions: a new locus of dysfunction in adult attention-deficit/hyperactivity disorder. Biol. Psychiatry63, 332–337 (2008).
  • Rich BA, Fromm SJ, Berghorst LH et al. Neural connectivity in children with bipolar disorder: impairment in the face emotion processing circuit. J Child Psychol. Psychiatry49(1), 88–96 (2008).
  • Stevens MC, Kiehl KA, Pearlson GD, Calhoun VD. Functional neural networks underlying response inhibition in adolescents and adults. Behav. Brain Res.181(1), 12–22 (2007).
  • Faraone SV, Perlis RH, Doyle AE et al. Molecular genetics of attention-deficit/hyperactivity disorder. Biol. Psychiatry57(11), 1313–1323 (2005).
  • Stein MA, Waldman ID, Sarampote CS, et al. Dopamine transporter genotype and methylphenidate dose–response in children with ADHD. Neuropsychopharmacology30, 1374–1382 (2005).
  • Stollstoff MA, Foss-Feig J, Cook EH, Stein MA, Gaillard WD. Neural response to working memory load varies by dopamine transporter genotype in children. Neuroimage 53, 970–977 (2010).
  • MacQueen GM, Hajek T, Alda M. The phenotypes of bipolar disorder: relevance for genetic investigations. Mol. Psychiatry10(9), 811–826 (2005).
  • Gau SS, Shang CY. Executive functions as endophenotypes in ADHD: evidence from the Cambridge Neuropsychological Test Battery (CANTAB). J. Child Psychol. Psychiatry.51(7), 838–849 (2010).
  • Fan J, Fossella J, Sommer T, Wu Y, Posner MI. Mapping the genetic variation of executive attention onto brain activity. Proc. Natl Acad. Sci. USA100, 7406–7411 (2003).
  • Gourovitch ML, Torrey EF, Gold JM, Randolph C, Weinberger DR, Goldberg TE. Neuropsychological performance of monozygotic twins discordant for bipolar disorder. Biol. Psychiatry45, 639–646 (1999).
  • Kulkarni SK. Re-engineering pharmacology teaching and research: can we adopt translational approach? Indian J. Pharmacol.42(5), 259–260 (2010).
  • Zalla T, Joyce C, Szoke A et al. Executive dysfunctions as potential markers of familial vulnerability to bipolar disorder and schizophrenia. Psychiatry Res.121(3), 207–271 (2004).
  • Ladouceur CD, Almeida JR, Birmaher B et al. Subcortical gray matter volume abnormalities in healthy bipolar offspring: potential neuroanatomical risk marker for bipolar disorder? J. Am. Acad. Child Adolesc. Psychiatry47(5), 532–539 (2008).
  • Donnelly M, Haby MM, Carter R, Andrews G, Vos T. Cost–effectiveness of dexamphetamine and metylphenidate for the treatment of childhood attention deficit hyperactivity disorder. Aust. NZ J. Psychatry38, 592–601 (2004).
  • Wozniak J, Biederman J, Mundy E, Mennin D, Faraone SV. A pilot family study of childhood-onset mania. J. Am. Acad. Child Adolesc. Psychiatry34(12), 1577–1583 (2005).

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