Skip to main content
Erschienen in: The Cerebellum 4/2010

01.12.2010

Adaptation, Expertise, and Giftedness: Towards an Understanding of Cortical, Subcortical, and Cerebellar Network Contributions

verfasst von: Leonard F. Koziol, Deborah Ely Budding, Dana Chidekel

Erschienen in: The Cerebellum | Ausgabe 4/2010

Einloggen, um Zugang zu erhalten

Abstract

Current cortico-centric models of cognition lack a cohesive neuroanatomic framework that sufficiently considers overlapping levels of function, from “pathological” through “normal” to “gifted” or exceptional ability. While most cognitive theories presume an evolutionary context, few actively consider the process of adaptation, including concepts of neurodevelopment. Further, the frequent co-occurrence of “gifted” and “pathological” function is difficult to explain from a cortico-centric point of view. This comprehensive review paper proposes a framework that includes the brain’s vertical organization and considers “giftedness” from an evolutionary and neurodevelopmental vantage point. We begin by discussing the current cortico-centric model of cognition and its relationship to intelligence. We then review an integrated, dual-tiered model of cognition that better explains the process of adaptation by simultaneously allowing for both stimulus-based processing and higher-order cognitive control. We consider the role of the basal ganglia within this model, particularly in relation to reward circuitry and instrumental learning. We review the important role of white matter tracts in relation to speed of adaptation and development of behavioral mastery. We examine the cerebellum’s critical role in behavioral refinement and in cognitive and behavioral automation, particularly in relation to expertise and giftedness. We conclude this integrated model of brain function by considering the savant syndrome, which we believe is best understood within the context of a dual-tiered model of cognition that allows for automaticity in adaptation as well as higher-order executive control.
Literatur
1.
Zurück zum Zitat Kolb B, Whishaw IQ. Fundamentals of human neuropsychology. New York: Worth; 2008. Kolb B, Whishaw IQ. Fundamentals of human neuropsychology. New York: Worth; 2008.
2.
Zurück zum Zitat Doya K. What are the computations of the cerebellum, the basal ganglia and the cerebral cortex? Neural Netw. 1999;12(7–8):961–74.PubMed Doya K. What are the computations of the cerebellum, the basal ganglia and the cerebral cortex? Neural Netw. 1999;12(7–8):961–74.PubMed
3.
Zurück zum Zitat Cotterill RM. Cooperation of the basal ganglia, cerebellum, sensory cerebrum and hippocampus: possible implications for cognition, consciousness, intelligence and creativity. Prog Neurobiol. 2001;64(1):1–33.PubMed Cotterill RM. Cooperation of the basal ganglia, cerebellum, sensory cerebrum and hippocampus: possible implications for cognition, consciousness, intelligence and creativity. Prog Neurobiol. 2001;64(1):1–33.PubMed
4.
Zurück zum Zitat Vandervert LR, Schimpf PH, Liu H. How working memory and the cerebellum collaborate to produce creativity and innovation. Creat Res J. 2007;19(1):1–18. Vandervert LR, Schimpf PH, Liu H. How working memory and the cerebellum collaborate to produce creativity and innovation. Creat Res J. 2007;19(1):1–18.
5.
Zurück zum Zitat Limperopoulos C, du Plessis AJ. Injury to the developing cerebellum: mechanisms and consequences. NeoReviews. 2007;8(10):e409–17. Limperopoulos C, du Plessis AJ. Injury to the developing cerebellum: mechanisms and consequences. NeoReviews. 2007;8(10):e409–17.
6.
Zurück zum Zitat Parker J, Mitchell A, Kalpakidou A, Walshe M, Jung HY, Nosarti C, et al. Cerebellar growth and behavioural & neuropsychological outcome in preterm adolescents. Brain. 2008;131(Pt 5):1344–51.PubMed Parker J, Mitchell A, Kalpakidou A, Walshe M, Jung HY, Nosarti C, et al. Cerebellar growth and behavioural & neuropsychological outcome in preterm adolescents. Brain. 2008;131(Pt 5):1344–51.PubMed
7.
Zurück zum Zitat AlOtaibi SF, Blaser S, MacGregor DL. Neurological complications of kernicterus. Can J Neurol Sci. 2005;32(3):311–5.PubMed AlOtaibi SF, Blaser S, MacGregor DL. Neurological complications of kernicterus. Can J Neurol Sci. 2005;32(3):311–5.PubMed
8.
Zurück zum Zitat Ahlfors CE, Amin SB, Parker AE. Unbound bilirubin predicts abnormal automated auditory brainstem response in a diverse newborn population. J Perinatol. 2009;29(4):305–9.PubMed Ahlfors CE, Amin SB, Parker AE. Unbound bilirubin predicts abnormal automated auditory brainstem response in a diverse newborn population. J Perinatol. 2009;29(4):305–9.PubMed
9.
Zurück zum Zitat Amin SB, Prinzing D, Myers G. Hyperbilirubinemia and language delay in premature infants. Pediatrics. 2009;123(1):327–31.PubMed Amin SB, Prinzing D, Myers G. Hyperbilirubinemia and language delay in premature infants. Pediatrics. 2009;123(1):327–31.PubMed
10.
Zurück zum Zitat Shaw P, Greenstein D, Lerch J, Clasen L, Lenroot R, Gogtay N, et al. Intellectual ability and cortical development in children and adolescents. Nature. 2006;440(7084):676–9.PubMed Shaw P, Greenstein D, Lerch J, Clasen L, Lenroot R, Gogtay N, et al. Intellectual ability and cortical development in children and adolescents. Nature. 2006;440(7084):676–9.PubMed
11.
Zurück zum Zitat Rubia K. Neuro-anatomic evidence for the maturational delay hypothesis of ADHD. Proc Natl Acad Sci USA. 2007;104(50):19663–4.PubMed Rubia K. Neuro-anatomic evidence for the maturational delay hypothesis of ADHD. Proc Natl Acad Sci USA. 2007;104(50):19663–4.PubMed
12.
Zurück zum Zitat Supekar K, Musen M, Menon V. Development of large-scale functional brain networks in children. PLoS Biol. 2009;7(7):e1000157.PubMed Supekar K, Musen M, Menon V. Development of large-scale functional brain networks in children. PLoS Biol. 2009;7(7):e1000157.PubMed
13.
Zurück zum Zitat Northoff G, Panksepp J. The trans-species concept of self and the subcortical–cortical midline system. Trends Cogn Sci. 2008;12(7):259–64.PubMed Northoff G, Panksepp J. The trans-species concept of self and the subcortical–cortical midline system. Trends Cogn Sci. 2008;12(7):259–64.PubMed
14.
Zurück zum Zitat Alcaro A, Panksepp J, Witczak J, Hayes DJ, Northoff G. Is subcortical–cortical midline activity in depression mediated by glutamate and GABA? A cross-species translational approach. Neurosci Biobehav Rev. 2010;34:592–605. Alcaro A, Panksepp J, Witczak J, Hayes DJ, Northoff G. Is subcortical–cortical midline activity in depression mediated by glutamate and GABA? A cross-species translational approach. Neurosci Biobehav Rev. 2010;34:592–605.
15.
Zurück zum Zitat Watt DF, Panksepp J. Depression: an evolutionarily conserved mechanism to terminate separation distress? A review of aminergic, peptidergic, and neural network perspectives. Neuropsychoanalysis. 2009;11(1):7–51. Watt DF, Panksepp J. Depression: an evolutionarily conserved mechanism to terminate separation distress? A review of aminergic, peptidergic, and neural network perspectives. Neuropsychoanalysis. 2009;11(1):7–51.
16.
Zurück zum Zitat Frank MJ, Doll BB, Oas-Terpstra J, Moreno F. Prefrontal and striatal dopaminergic genes predict individual differences in exploration and exploitation. Nat Neurosci. 2009;12(8):1062–8.PubMed Frank MJ, Doll BB, Oas-Terpstra J, Moreno F. Prefrontal and striatal dopaminergic genes predict individual differences in exploration and exploitation. Nat Neurosci. 2009;12(8):1062–8.PubMed
17.
Zurück zum Zitat Doll BB, Jacobs WJ, Sanfey AG, Frank MJ. Instructional control of reinforcement learning: a behavioral and neurocomputational investigation. Brain Res. 2009;1299:74–94.PubMed Doll BB, Jacobs WJ, Sanfey AG, Frank MJ. Instructional control of reinforcement learning: a behavioral and neurocomputational investigation. Brain Res. 2009;1299:74–94.PubMed
18.
Zurück zum Zitat Schmidt GL, Seger CA. Neural correlates of metaphor processing: the roles of figurativeness, familiarity and difficulty. Brain Cogn. 2009;71(3):375–86.PubMed Schmidt GL, Seger CA. Neural correlates of metaphor processing: the roles of figurativeness, familiarity and difficulty. Brain Cogn. 2009;71(3):375–86.PubMed
19.
Zurück zum Zitat Seger CA. The involvement of corticostriatal loops in learning across tasks, species, and methodologies. In: Groenewegen H, Berendse H, editors. The basal ganglia IX: proceedings of the 9th Triennial Meeting of the International Basal Ganglia Society. New York: Springer; 2009. Seger CA. The involvement of corticostriatal loops in learning across tasks, species, and methodologies. In: Groenewegen H, Berendse H, editors. The basal ganglia IX: proceedings of the 9th Triennial Meeting of the International Basal Ganglia Society. New York: Springer; 2009.
20.
Zurück zum Zitat Houk JC. Agents of the mind. Biol Cybern. 2005;92(6):427–37.PubMed Houk JC. Agents of the mind. Biol Cybern. 2005;92(6):427–37.PubMed
21.
Zurück zum Zitat Ashby FG, O'Brien JB. Category learning and multiple memory systems. Trends Cogn Sci. 2005;9(2):83–9.PubMed Ashby FG, O'Brien JB. Category learning and multiple memory systems. Trends Cogn Sci. 2005;9(2):83–9.PubMed
22.
Zurück zum Zitat Yomogida Y, Sugiura M, Sassa Y, Wakusawa K, Sekiguchi A, Fukushima A, et al. The neural basis of agency: an fMRI study. Neuroimage. 2010;50:198–207. Yomogida Y, Sugiura M, Sassa Y, Wakusawa K, Sekiguchi A, Fukushima A, et al. The neural basis of agency: an fMRI study. Neuroimage. 2010;50:198–207.
23.
Zurück zum Zitat Chatham CH, Frank MJ, Munakata Y. Pupillometric and behavioral markers of a developmental shift in the temporal dynamics of cognitive control. Proc Natl Acad Sci USA. 2009;106(14):5529–33.PubMed Chatham CH, Frank MJ, Munakata Y. Pupillometric and behavioral markers of a developmental shift in the temporal dynamics of cognitive control. Proc Natl Acad Sci USA. 2009;106(14):5529–33.PubMed
24.
Zurück zum Zitat Aron AR, Poldrack RA. Cortical and subcortical contributions to Stop signal response inhibition: role of the subthalamic nucleus. J Neurosci. 2006;26(9):2424–33.PubMed Aron AR, Poldrack RA. Cortical and subcortical contributions to Stop signal response inhibition: role of the subthalamic nucleus. J Neurosci. 2006;26(9):2424–33.PubMed
25.
Zurück zum Zitat Baillieux H, Vandervliet EJ, Manto M, Parizel PM, De Deyn PP, Marien P. Developmental dyslexia and widespread activation across the cerebellar hemispheres. Brain Lang. 2009;108(2):122–32.PubMed Baillieux H, Vandervliet EJ, Manto M, Parizel PM, De Deyn PP, Marien P. Developmental dyslexia and widespread activation across the cerebellar hemispheres. Brain Lang. 2009;108(2):122–32.PubMed
26.
Zurück zum Zitat Baldacara L, Borgio JG, de Lacerda AL, Jackowski AP. Cerebellum and psychiatric disorders. Rev Bras Psiquiatr. 2008;30(3):281–9.PubMed Baldacara L, Borgio JG, de Lacerda AL, Jackowski AP. Cerebellum and psychiatric disorders. Rev Bras Psiquiatr. 2008;30(3):281–9.PubMed
27.
Zurück zum Zitat Bush G. Neuroimaging of attention deficit hyperactivity disorder: can new imaging findings be integrated in clinical practice? Child Adolesc Psychiatr Clin N Am. 2008;17(2):385–404. x.PubMed Bush G. Neuroimaging of attention deficit hyperactivity disorder: can new imaging findings be integrated in clinical practice? Child Adolesc Psychiatr Clin N Am. 2008;17(2):385–404. x.PubMed
28.
Zurück zum Zitat Schiffman J, Sorensen HJ, Maeda J, Mortensen EL, Victoroff J, Hayashi K, et al. Childhood motor coordination and adult schizophrenia spectrum disorders. Am J Psychiatry. 2009;166(9):1041–7.PubMed Schiffman J, Sorensen HJ, Maeda J, Mortensen EL, Victoroff J, Hayashi K, et al. Childhood motor coordination and adult schizophrenia spectrum disorders. Am J Psychiatry. 2009;166(9):1041–7.PubMed
29.
Zurück zum Zitat Whalley HC, Gountouna VE, Hall J, McIntosh A, Whyte MC, Simonotto E, et al. Correlations between fMRI activation and individual psychotic symptoms in un-medicated subjects at high genetic risk of schizophrenia. BMC Psychiatry. 2007;7:61.PubMed Whalley HC, Gountouna VE, Hall J, McIntosh A, Whyte MC, Simonotto E, et al. Correlations between fMRI activation and individual psychotic symptoms in un-medicated subjects at high genetic risk of schizophrenia. BMC Psychiatry. 2007;7:61.PubMed
30.
Zurück zum Zitat Bradshaw JL. Developmental disorders of the frontostriatal system: neuropsychological, neuropsychiatric and evolutionary perspectives. Philadelphia: Taylor & Francis; 2001. Bradshaw JL. Developmental disorders of the frontostriatal system: neuropsychological, neuropsychiatric and evolutionary perspectives. Philadelphia: Taylor & Francis; 2001.
31.
Zurück zum Zitat Heimer L, Van Hoesen GW, Trimble M, Zahm DS. Anatomy of neuropsychiatry: the new anatomy of the basal forebrain and its implications for neuropsychiatric illness. San Diego, CA: Academic; 2008. Heimer L, Van Hoesen GW, Trimble M, Zahm DS. Anatomy of neuropsychiatry: the new anatomy of the basal forebrain and its implications for neuropsychiatric illness. San Diego, CA: Academic; 2008.
32.
Zurück zum Zitat Hoppenbrouwers SS, Schutter DJ, Fitzgerald PB, Chen R, Daskalakis ZJ. The role of the cerebellum in the pathophysiology and treatment of neuropsychiatric disorders: a review. Brain Res Rev. 2008;59:185–200. Hoppenbrouwers SS, Schutter DJ, Fitzgerald PB, Chen R, Daskalakis ZJ. The role of the cerebellum in the pathophysiology and treatment of neuropsychiatric disorders: a review. Brain Res Rev. 2008;59:185–200.
33.
Zurück zum Zitat Ansari D. Neurocognitive approaches to developmental disorders of numerical and mathematical cognition: the perils of neglecting the role of development. Learn individ Differ. 2010;20:123–9. Ansari D. Neurocognitive approaches to developmental disorders of numerical and mathematical cognition: the perils of neglecting the role of development. Learn individ Differ. 2010;20:123–9.
34.
Zurück zum Zitat Nicolson R, Fawcett AJ, Dean P. Dyslexia, development and the cerebellum. Trends Neurosci. 2001;24(9):515–6.PubMed Nicolson R, Fawcett AJ, Dean P. Dyslexia, development and the cerebellum. Trends Neurosci. 2001;24(9):515–6.PubMed
35.
Zurück zum Zitat Ullman MT. Contributions of memory circuits to language: the declarative/procedural model. Cognition. 2004;92(1–2):231–70.PubMed Ullman MT. Contributions of memory circuits to language: the declarative/procedural model. Cognition. 2004;92(1–2):231–70.PubMed
36.
Zurück zum Zitat Limperopoulos C, Soul JS, Haidar H, Huppi PS, Bassan H, Warfield SK, et al. Impaired trophic interactions between the cerebellum and the cerebrum among preterm infants. Pediatrics. 2005;116(4):844–50.PubMed Limperopoulos C, Soul JS, Haidar H, Huppi PS, Bassan H, Warfield SK, et al. Impaired trophic interactions between the cerebellum and the cerebrum among preterm infants. Pediatrics. 2005;116(4):844–50.PubMed
37.
Zurück zum Zitat Rosca EC. Arithmetic procedural knowledge: a cortico-subcortical circuit. Brain Res. 2009;1302:148–56.PubMed Rosca EC. Arithmetic procedural knowledge: a cortico-subcortical circuit. Brain Res. 2009;1302:148–56.PubMed
38.
Zurück zum Zitat Tau GZ, Peterson BS. Normal development of brain circuits. Neuropsychopharmacology. 2010;35(1):147–68.PubMed Tau GZ, Peterson BS. Normal development of brain circuits. Neuropsychopharmacology. 2010;35(1):147–68.PubMed
39.
Zurück zum Zitat Koziol LF, Budding DE. Subcortical structures and cognition: implications for neuropsychological assessment. New York: Springer; 2009. Koziol LF, Budding DE. Subcortical structures and cognition: implications for neuropsychological assessment. New York: Springer; 2009.
40.
Zurück zum Zitat Miller R. A theory of the basal ganglia and their disorders. Boca Raton: CRC; 2008. Miller R. A theory of the basal ganglia and their disorders. Boca Raton: CRC; 2008.
41.
Zurück zum Zitat Merriam-Webster I. Merriam-Webster's collegiate dictionary. Springfield, MA: Merriam-Webster; 2003. Merriam-Webster I. Merriam-Webster's collegiate dictionary. Springfield, MA: Merriam-Webster; 2003.
42.
Zurück zum Zitat Winner E. Gifted children: myths and realities. New York: Basic Books; 1996. Winner E. Gifted children: myths and realities. New York: Basic Books; 1996.
43.
Zurück zum Zitat Ericsson AK, Nandagopal K, Roring RW. Toward a science of exceptional achievement: attaining superior performance through deliberate practice. Ann N Y Acad Sci. 2009;1172:199–217. Ericsson AK, Nandagopal K, Roring RW. Toward a science of exceptional achievement: attaining superior performance through deliberate practice. Ann N Y Acad Sci. 2009;1172:199–217.
44.
Zurück zum Zitat Zhu Q, Song Y, Hu S, Li X, Tian M, Zhen Z et al. Heritability of the specific cognitive ability of face perception. Curr Biol. 2010;20:137–42. Zhu Q, Song Y, Hu S, Li X, Tian M, Zhen Z et al. Heritability of the specific cognitive ability of face perception. Curr Biol. 2010;20:137–42.
45.
Zurück zum Zitat Lezak MD, Loring DW. Neuropsychological assessment. USA: Oxford University Press; 2004. Lezak MD, Loring DW. Neuropsychological assessment. USA: Oxford University Press; 2004.
46.
Zurück zum Zitat Lezak MD. Neuropsychological assessment. New York: Oxford University Press; 1995. p. 544–6. Lezak MD. Neuropsychological assessment. New York: Oxford University Press; 1995. p. 544–6.
47.
Zurück zum Zitat Wechsler D. Manual for the Wechsler intelligence scale for children. San Antonio, TX: The Psychological Corporation; 1991. Wechsler D. Manual for the Wechsler intelligence scale for children. San Antonio, TX: The Psychological Corporation; 1991.
48.
Zurück zum Zitat Winner E. Gifted children: myths and realities. New York: Basic Books; 1996. Winner E. Gifted children: myths and realities. New York: Basic Books; 1996.
49.
Zurück zum Zitat Kinsbourne M. Overfocusing: an apparent subtype of attention deficit hyperactive disorder. In: Amir N, Rapin J, Branski D, editors. Pediatric Neurology: Behavior and cognition of the child with brain dysfunction. Vol. 1. Basel, Switzerland: Karger; 1991. p. 18–35. Kinsbourne M. Overfocusing: an apparent subtype of attention deficit hyperactive disorder. In: Amir N, Rapin J, Branski D, editors. Pediatric Neurology: Behavior and cognition of the child with brain dysfunction. Vol. 1. Basel, Switzerland: Karger; 1991. p. 18–35.
50.
Zurück zum Zitat Feldman DH, Goldsmith LT. Nature's gambit: child prodigies and the development of human potential. New York: Teachers College Press. 1991. Feldman DH, Goldsmith LT. Nature's gambit: child prodigies and the development of human potential. New York: Teachers College Press. 1991.
51.
Zurück zum Zitat Vandervert LR. The appearance of the child prodigy 10,000 years ago: an evolutionary and developmental explanation. J Mind Behav J Mind Behav. 2009;30(1–2):15–32. Vandervert LR. The appearance of the child prodigy 10,000 years ago: an evolutionary and developmental explanation. J Mind Behav J Mind Behav. 2009;30(1–2):15–32.
52.
Zurück zum Zitat Creem-Regehr SH. Sensory–motor and cognitive functions of the human posterior parietal cortex involved in manual actions. Neurobiol Learn Mem. 2009;91(2):166–71.PubMed Creem-Regehr SH. Sensory–motor and cognitive functions of the human posterior parietal cortex involved in manual actions. Neurobiol Learn Mem. 2009;91(2):166–71.PubMed
53.
Zurück zum Zitat Londei A, D'Ausilio A, Basso D, Sestieri C, Gratta CD, Romani GL et al. Sensory-motor brain network connectivity for speech comprehension. Hum Brain Mapp. 2010;31(4):567–580. Londei A, D'Ausilio A, Basso D, Sestieri C, Gratta CD, Romani GL et al. Sensory-motor brain network connectivity for speech comprehension. Hum Brain Mapp. 2010;31(4):567–580.
54.
Zurück zum Zitat Renier LA, Anurova I, De Volder AG, Carlson S, VanMeter J, Rauschecker JP. Multisensory integration of sounds and vibrotactile stimuli in processing streams for "what" and "where". J Neurosci. 2009;29(35):10950–60.PubMed Renier LA, Anurova I, De Volder AG, Carlson S, VanMeter J, Rauschecker JP. Multisensory integration of sounds and vibrotactile stimuli in processing streams for "what" and "where". J Neurosci. 2009;29(35):10950–60.PubMed
55.
Zurück zum Zitat Squire LR. Memory systems of the brain: a brief history and current perspective. Neurobiol Learn Mem. 2004;82(3):171–7.PubMed Squire LR. Memory systems of the brain: a brief history and current perspective. Neurobiol Learn Mem. 2004;82(3):171–7.PubMed
56.
Zurück zum Zitat Andreasen NC, Flaum M, Swayze V, O'Leary DS, Alliger R, Cohen G, et al. Intelligence and brain structure in normal individuals. Am J Psychiatry. 1993;150(1):130–4.PubMed Andreasen NC, Flaum M, Swayze V, O'Leary DS, Alliger R, Cohen G, et al. Intelligence and brain structure in normal individuals. Am J Psychiatry. 1993;150(1):130–4.PubMed
57.
Zurück zum Zitat Kurtz BE, Weinert FE. Metamemory, memory performance, and causal attributions in gifted and average children. J Exp Child Psychol. 1989;48(1):45–61.PubMed Kurtz BE, Weinert FE. Metamemory, memory performance, and causal attributions in gifted and average children. J Exp Child Psychol. 1989;48(1):45–61.PubMed
58.
Zurück zum Zitat Wennekers T, Palm G. Syntactic sequencing in Hebbian cell assemblies. Cogn Neurodyn. 2009;3(4):429–441. Wennekers T, Palm G. Syntactic sequencing in Hebbian cell assemblies. Cogn Neurodyn. 2009;3(4):429–441.
59.
Zurück zum Zitat Wennekers T, Garagnani M, Pulvermuller F. Language models based on Hebbian cell assemblies. J Physiol Paris. 2006;100(1–3):16–30.PubMed Wennekers T, Garagnani M, Pulvermuller F. Language models based on Hebbian cell assemblies. J Physiol Paris. 2006;100(1–3):16–30.PubMed
60.
Zurück zum Zitat Ahmed B, Hanazawa A, Undeman C, Eriksson D, Valentiniene S, Roland PE. Cortical dynamics subserving visual apparent motion. Cereb Cortex. 2008;18(12):2796–810.PubMed Ahmed B, Hanazawa A, Undeman C, Eriksson D, Valentiniene S, Roland PE. Cortical dynamics subserving visual apparent motion. Cereb Cortex. 2008;18(12):2796–810.PubMed
61.
Zurück zum Zitat Roland PE, Eriksson L, Stone-Elander S, Widen L. Does mental activity change the oxidative metabolism of the brain? J Neurosci. 1987;7(8):2373–89.PubMed Roland PE, Eriksson L, Stone-Elander S, Widen L. Does mental activity change the oxidative metabolism of the brain? J Neurosci. 1987;7(8):2373–89.PubMed
62.
Zurück zum Zitat Roland PE, Friberg L. Localization of cortical areas activated by thinking. J Neurophysiol. 1985;53(5):1219–43.PubMed Roland PE, Friberg L. Localization of cortical areas activated by thinking. J Neurophysiol. 1985;53(5):1219–43.PubMed
63.
Zurück zum Zitat Luders E, Narr KL, Thompson PM, Toga AW. Neuroanatomical correlates of intelligence. Intelligence. 2009;37(2):156–63.PubMed Luders E, Narr KL, Thompson PM, Toga AW. Neuroanatomical correlates of intelligence. Intelligence. 2009;37(2):156–63.PubMed
64.
Zurück zum Zitat Thompson P, Cannon TD, Toga AW. Mapping genetic influences on human brain structure. Ann Med. 2002;34(7–8):523–36.PubMed Thompson P, Cannon TD, Toga AW. Mapping genetic influences on human brain structure. Ann Med. 2002;34(7–8):523–36.PubMed
65.
Zurück zum Zitat Turkheimer E, Haley A, Waldron M, D'Onofrio B, Gottesman II. Socioeconomic status modifies heritability of IQ in young children. Psychol Sci. 2003;14(6):623–8.PubMed Turkheimer E, Haley A, Waldron M, D'Onofrio B, Gottesman II. Socioeconomic status modifies heritability of IQ in young children. Psychol Sci. 2003;14(6):623–8.PubMed
66.
Zurück zum Zitat Ivanovic DM, Leiva BP, Perez HT, Olivares MG, Diaz NS, Urrutia MS, et al. Head size and intelligence, learning, nutritional status and brain development. Head, IQ, learning, nutrition and brain. Neuropsychologia. 2004;42(8):1118–31.PubMed Ivanovic DM, Leiva BP, Perez HT, Olivares MG, Diaz NS, Urrutia MS, et al. Head size and intelligence, learning, nutritional status and brain development. Head, IQ, learning, nutrition and brain. Neuropsychologia. 2004;42(8):1118–31.PubMed
67.
Zurück zum Zitat Hulshoff Pol HE, Schnack HG, Posthuma D, Mandl RC, Baare WF, Van OC, et al. Genetic contributions to human brain morphology and intelligence. J Neurosci. 2006;4;26(40):10235–42. Hulshoff Pol HE, Schnack HG, Posthuma D, Mandl RC, Baare WF, Van OC, et al. Genetic contributions to human brain morphology and intelligence. J Neurosci. 2006;4;26(40):10235–42.
68.
Zurück zum Zitat Gray JR, Thompson PM. Neurobiology of intelligence: science and ethics. Nat Rev Neurosci. 2004;5(6):471–82.PubMed Gray JR, Thompson PM. Neurobiology of intelligence: science and ethics. Nat Rev Neurosci. 2004;5(6):471–82.PubMed
69.
Zurück zum Zitat Frangou S, Chitins X, Williams SC. Mapping IQ and gray matter density in healthy young people. Neuroimage. 2004;23(3):800–5.PubMed Frangou S, Chitins X, Williams SC. Mapping IQ and gray matter density in healthy young people. Neuroimage. 2004;23(3):800–5.PubMed
70.
Zurück zum Zitat Chiang MC, Barysheva M, Shattuck DW, Lee AD, Madsen SK, Avedissian C, et al. Genetics of brain fiber architecture and intellectual performance. J Neurosci. 2009;29(7):2212–24.PubMed Chiang MC, Barysheva M, Shattuck DW, Lee AD, Madsen SK, Avedissian C, et al. Genetics of brain fiber architecture and intellectual performance. J Neurosci. 2009;29(7):2212–24.PubMed
71.
Zurück zum Zitat Salthouse TA, Pink JE, Tucker-Drob EM. Contextual analysis of fluid intelligence. Intelligence. 2008;36(5):464–86.PubMed Salthouse TA, Pink JE, Tucker-Drob EM. Contextual analysis of fluid intelligence. Intelligence. 2008;36(5):464–86.PubMed
72.
Zurück zum Zitat Saling LL, Phillips JG. Automatic behaviour: efficient not mindless. Brain Res Bull. 2007;73(1–3):1–20.PubMed Saling LL, Phillips JG. Automatic behaviour: efficient not mindless. Brain Res Bull. 2007;73(1–3):1–20.PubMed
73.
Zurück zum Zitat Narr KL, Woods RP, Lin J, Kim J, Phillips OR, Del'homme M, et al. Widespread cortical thinning is a robust anatomical marker for attention-deficit/hyperactivity disorder. J Am Acad Child Adolesc Psych. 2009;48(10):1014–1022. Narr KL, Woods RP, Lin J, Kim J, Phillips OR, Del'homme M, et al. Widespread cortical thinning is a robust anatomical marker for attention-deficit/hyperactivity disorder. J Am Acad Child Adolesc Psych. 2009;48(10):1014–1022.
74.
Zurück zum Zitat Colom R, Jung RE, Haier RJ. General intelligence and memory span: evidence for a common neuroanatomic framework. Cogn Neuropsychol. 2007;24(8):867–78.PubMed Colom R, Jung RE, Haier RJ. General intelligence and memory span: evidence for a common neuroanatomic framework. Cogn Neuropsychol. 2007;24(8):867–78.PubMed
75.
Zurück zum Zitat Jung RE, Haier RJ. The Parieto-Frontal Integration Theory (P-FIT) of intelligence: converging neuroimaging evidence. Behav Brain Sci. 2007;30(2):135–54.PubMed Jung RE, Haier RJ. The Parieto-Frontal Integration Theory (P-FIT) of intelligence: converging neuroimaging evidence. Behav Brain Sci. 2007;30(2):135–54.PubMed
76.
Zurück zum Zitat Jung RE, Segall JM, Bockholt HJ, Flores RA, Smith SM, Chavez RS, et al. Neuroanatomy of creativity. Hum Brain Mapp. 2010;31(3):398.PubMed Jung RE, Segall JM, Bockholt HJ, Flores RA, Smith SM, Chavez RS, et al. Neuroanatomy of creativity. Hum Brain Mapp. 2010;31(3):398.PubMed
77.
Zurück zum Zitat Jung RE, Grazioplene R, Caprihan A, Chavez RS, Haier RJ. White matter integrity, creativity, and psychopathology: disentangling constructs with diffusion tensor imaging. 2010. PLoS ONE 5(3). doi:10.1371/journal.pone.009818. Jung RE, Grazioplene R, Caprihan A, Chavez RS, Haier RJ. White matter integrity, creativity, and psychopathology: disentangling constructs with diffusion tensor imaging. 2010. PLoS ONE 5(3). doi:10.​1371/​journal.​pone.​009818.
78.
Zurück zum Zitat Diamond MC, Scheibel AB, Murphy Jr GM, Harvey T. On the brain of a scientist: Albert Einstein. Exp Neurol. 1985;88(1):198–204.PubMed Diamond MC, Scheibel AB, Murphy Jr GM, Harvey T. On the brain of a scientist: Albert Einstein. Exp Neurol. 1985;88(1):198–204.PubMed
79.
Zurück zum Zitat Galaburda AM. Albert Einstein's brain. Lancet. 1999;354(9192):1821.PubMed Galaburda AM. Albert Einstein's brain. Lancet. 1999;354(9192):1821.PubMed
80.
Zurück zum Zitat Hines T. Further on Einstein's brain. Exp Neurol. 1998;150(2):343–4.PubMed Hines T. Further on Einstein's brain. Exp Neurol. 1998;150(2):343–4.PubMed
81.
Zurück zum Zitat Falk D. New information about Albert Einstein's brain. Front Evol Neurosci. 2009;1:3.PubMed Falk D. New information about Albert Einstein's brain. Front Evol Neurosci. 2009;1:3.PubMed
82.
Zurück zum Zitat Grabner RH, Neubauer AC, Stern E. Superior performance and neural efficiency: the impact of intelligence and expertise. Brain Res Bull. 2006;69(4):422–39.PubMed Grabner RH, Neubauer AC, Stern E. Superior performance and neural efficiency: the impact of intelligence and expertise. Brain Res Bull. 2006;69(4):422–39.PubMed
83.
Zurück zum Zitat Neubauer AC, Fink A. Intelligence and neural efficiency. Neurosci Biobehav Rev. 2009;33(7):1004–23.PubMed Neubauer AC, Fink A. Intelligence and neural efficiency. Neurosci Biobehav Rev. 2009;33(7):1004–23.PubMed
84.
Zurück zum Zitat Macneilage PF, Rogers LJ, Vallortigara G. Origins of the left & right brain. Sci Am. 2009;301(1):60–7.PubMed Macneilage PF, Rogers LJ, Vallortigara G. Origins of the left & right brain. Sci Am. 2009;301(1):60–7.PubMed
85.
Zurück zum Zitat Podell K, Lovell M, Goldberg E. Lateralization of frontal lobe functions. In: Salloway SP, Malloy PF, Duffy JD, editors. The frontal lobes and neuropsychiatric illness. Washington, DC: American Psychiatric; 2001. p. 83–100. Podell K, Lovell M, Goldberg E. Lateralization of frontal lobe functions. In: Salloway SP, Malloy PF, Duffy JD, editors. The frontal lobes and neuropsychiatric illness. Washington, DC: American Psychiatric; 2001. p. 83–100.
86.
Zurück zum Zitat Toates F. A model of the hierarchy of behaviour, cognition, and consciousness. Conscious Cogn. 2006;15(1):75–118.PubMed Toates F. A model of the hierarchy of behaviour, cognition, and consciousness. Conscious Cogn. 2006;15(1):75–118.PubMed
87.
Zurück zum Zitat Toates F. "In two minds"—consideration of evolutionary precursors permits a more integrative theory. Trends Cogn Sci. 2004;8(2):57.PubMed Toates F. "In two minds"—consideration of evolutionary precursors permits a more integrative theory. Trends Cogn Sci. 2004;8(2):57.PubMed
88.
Zurück zum Zitat Goel V, Tierney M, Sheesley L, Bartolo A, Vartanian O, Grafman J. Hemispheric specialization in human prefrontal cortex for resolving certain and uncertain inferences. Cereb Cortex. 2007;17(10):2245–50.PubMed Goel V, Tierney M, Sheesley L, Bartolo A, Vartanian O, Grafman J. Hemispheric specialization in human prefrontal cortex for resolving certain and uncertain inferences. Cereb Cortex. 2007;17(10):2245–50.PubMed
89.
Zurück zum Zitat Hikosaka O, Isoda M. Switching from automatic to controlled behavior: cortico-basal ganglia mechanisms. Trends Cogn Sci. 2010;14(4):154–161.PubMed Hikosaka O, Isoda M. Switching from automatic to controlled behavior: cortico-basal ganglia mechanisms. Trends Cogn Sci. 2010;14(4):154–161.PubMed
90.
Zurück zum Zitat Ito M. Control of mental activities by internal models in the cerebellum. Nat Rev Neurosci. 2008;9(4):304–13.PubMed Ito M. Control of mental activities by internal models in the cerebellum. Nat Rev Neurosci. 2008;9(4):304–13.PubMed
91.
Zurück zum Zitat Vandervert LR, Schimpf PH, Liu H. How working memory and the cerebellum collaborate to produce creativity and innovation. Creat Res J. 2007;19(1):1–18. Vandervert LR, Schimpf PH, Liu H. How working memory and the cerebellum collaborate to produce creativity and innovation. Creat Res J. 2007;19(1):1–18.
92.
Zurück zum Zitat Maroof A, Anderson S. The origins and specification of cortical interneurons. Developmental Plasticity of Inhibitory Circuitry. 2009. p. 13–26. Maroof A, Anderson S. The origins and specification of cortical interneurons. Developmental Plasticity of Inhibitory Circuitry. 2009. p. 13–26.
93.
Zurück zum Zitat Parvizi J. Corticocentric myopia: old bias in new cognitive sciences. Trends Cogn Sci. 2009;13(8):354–9.PubMed Parvizi J. Corticocentric myopia: old bias in new cognitive sciences. Trends Cogn Sci. 2009;13(8):354–9.PubMed
94.
Zurück zum Zitat Laurent G. 1. Shall we even understand the fly’s brain? 23 problems in systems. Neuroscience. 2006;1:3–22. Laurent G. 1. Shall we even understand the fly’s brain? 23 problems in systems. Neuroscience. 2006;1:3–22.
95.
Zurück zum Zitat Schmahmann JD, Smith EE, Eichler FS, Filley CM. Cerebral white matter: neuroanatomy, clinical neurology, and neurobehavioral correlates. Ann NY Acad Sci. 2008;1142:266–309.PubMed Schmahmann JD, Smith EE, Eichler FS, Filley CM. Cerebral white matter: neuroanatomy, clinical neurology, and neurobehavioral correlates. Ann NY Acad Sci. 2008;1142:266–309.PubMed
96.
Zurück zum Zitat Mendoza J, Foundas AL. Clinical neuroanatomy: a neurobehavioral approach. Springer; 2007. Mendoza J, Foundas AL. Clinical neuroanatomy: a neurobehavioral approach. Springer; 2007.
97.
Zurück zum Zitat Hof PR, Trapp BD, DeVellis J, Claudio L, Coleman DR. Cellular components of nervous tissue. In: Squire LR, Bloom FE, McConnell SK, Roberts JL, Spitzer NC, Zigmond MJ, editors. Fundamental neuroscience. San Diego. 2003. p. 49–78. Hof PR, Trapp BD, DeVellis J, Claudio L, Coleman DR. Cellular components of nervous tissue. In: Squire LR, Bloom FE, McConnell SK, Roberts JL, Spitzer NC, Zigmond MJ, editors. Fundamental neuroscience. San Diego. 2003. p. 49–78.
98.
Zurück zum Zitat Shu Y, Hasenstaub A, McCormick DA. Turning on and off recurrent balanced cortical activity. Nature. 2003;423(6937):288–93.PubMed Shu Y, Hasenstaub A, McCormick DA. Turning on and off recurrent balanced cortical activity. Nature. 2003;423(6937):288–93.PubMed
99.
Zurück zum Zitat Dantzker JL, Callaway EM. Laminar sources of synaptic input to cortical inhibitory interneurons and pyramidal neurons. Nat Neurosci. 2000;3(7):701–7.PubMed Dantzker JL, Callaway EM. Laminar sources of synaptic input to cortical inhibitory interneurons and pyramidal neurons. Nat Neurosci. 2000;3(7):701–7.PubMed
100.
Zurück zum Zitat Tamas G, Buhl EH, L÷rincz A, Somogyi P. Proximally targeted GABAergic synapses and gap junctions synchronize cortical interneurons. Nature Neuroscience. 2000;3(4):366–71.PubMed Tamas G, Buhl EH, L÷rincz A, Somogyi P. Proximally targeted GABAergic synapses and gap junctions synchronize cortical interneurons. Nature Neuroscience. 2000;3(4):366–71.PubMed
101.
Zurück zum Zitat Lewis DA, Hashimoto T, Volk DW. Cortical inhibitory neurons and schizophrenia. Nat Rev Neurosci. 2005;6(4):312–24.PubMed Lewis DA, Hashimoto T, Volk DW. Cortical inhibitory neurons and schizophrenia. Nat Rev Neurosci. 2005;6(4):312–24.PubMed
102.
Zurück zum Zitat Ashby FG, Ennis JM, Spiering BJ. A neurobiological theory of automaticity in perceptual categorization. Psychol Rev. 2007;114(3):632–56.PubMed Ashby FG, Ennis JM, Spiering BJ. A neurobiological theory of automaticity in perceptual categorization. Psychol Rev. 2007;114(3):632–56.PubMed
103.
Zurück zum Zitat Ashby FG, Turner BO, Horvitz JC. Cortical and basal ganglia contributions to habit learning and automaticity. Trends Cogn Sci. 2010;14(5):208–215. Ashby FG, Turner BO, Horvitz JC. Cortical and basal ganglia contributions to habit learning and automaticity. Trends Cogn Sci. 2010;14(5):208–215.
104.
Zurück zum Zitat Wallis JD, Kennerley SW. Heterogeneous reward signals in prefrontal cortex. Curr Opin Neurobiol. 2010;20(2):191–198. Wallis JD, Kennerley SW. Heterogeneous reward signals in prefrontal cortex. Curr Opin Neurobiol. 2010;20(2):191–198.
105.
Zurück zum Zitat Burkhalter A. Many specialists for suppressing cortical excitation. Front Neurosci. 2008;2(2):155–67.PubMed Burkhalter A. Many specialists for suppressing cortical excitation. Front Neurosci. 2008;2(2):155–67.PubMed
106.
Zurück zum Zitat Okun M, Lampl I. Instantaneous correlation of excitation and inhibition during ongoing and sensory-evoked activities. Nat Neurosci. 2008;11(5):535–7.PubMed Okun M, Lampl I. Instantaneous correlation of excitation and inhibition during ongoing and sensory-evoked activities. Nat Neurosci. 2008;11(5):535–7.PubMed
107.
Zurück zum Zitat Higgins ES, George MS. The neuroscience of clinical psychiatry: the pathophysiology of behavior and mental illness. Lippincott Williams & Wilkins; 2007. Higgins ES, George MS. The neuroscience of clinical psychiatry: the pathophysiology of behavior and mental illness. Lippincott Williams & Wilkins; 2007.
108.
Zurück zum Zitat Ponzi A. Dynamical model of salience gated working memory, action selection and reinforcement based on basal ganglia and dopamine feedback. Neural Netw. 2008;21(2–3):322–30.PubMed Ponzi A. Dynamical model of salience gated working memory, action selection and reinforcement based on basal ganglia and dopamine feedback. Neural Netw. 2008;21(2–3):322–30.PubMed
109.
Zurück zum Zitat Valentin VV, O'Doherty JP. Overlapping prediction errors in dorsal striatum during instrumental learning with juice and money reward in the human brain. J Neurophysiol. 2009;102(6):3384–91.PubMed Valentin VV, O'Doherty JP. Overlapping prediction errors in dorsal striatum during instrumental learning with juice and money reward in the human brain. J Neurophysiol. 2009;102(6):3384–91.PubMed
110.
Zurück zum Zitat Robinson OJ, Frank MJ, Sahakian BJ, Cools R. Dissociable responses to punishment in distinct striatal regions during reversal learning. NeuroImage. 2010;51(4):1459–1467. Robinson OJ, Frank MJ, Sahakian BJ, Cools R. Dissociable responses to punishment in distinct striatal regions during reversal learning. NeuroImage. 2010;51(4):1459–1467.
111.
Zurück zum Zitat Redgrave P, Prescott TJ, Gurney K. The basal ganglia: a vertebrate solution to the selection problem? Neuroscience. 1999;89(4):1009–23.PubMed Redgrave P, Prescott TJ, Gurney K. The basal ganglia: a vertebrate solution to the selection problem? Neuroscience. 1999;89(4):1009–23.PubMed
112.
Zurück zum Zitat Houk JC, Bastianen C, Fansler D, Fishbach A, Fraser D, Reber PJ, et al. Action selection and refinement in subcortical loops through basal ganglia and cerebellum. Philos Trans R Soc Lond B Biol Sci. 2007;362(1485):1573–83.PubMed Houk JC, Bastianen C, Fansler D, Fishbach A, Fraser D, Reber PJ, et al. Action selection and refinement in subcortical loops through basal ganglia and cerebellum. Philos Trans R Soc Lond B Biol Sci. 2007;362(1485):1573–83.PubMed
113.
Zurück zum Zitat Aarts E, Roelofs A, van TM. Anticipatory activity in anterior cingulate cortex can be independent of conflict and error likelihood. J Neurosci. 2008;28(18):4671–8.PubMed Aarts E, Roelofs A, van TM. Anticipatory activity in anterior cingulate cortex can be independent of conflict and error likelihood. J Neurosci. 2008;28(18):4671–8.PubMed
114.
Zurück zum Zitat Chaudhry AM, Parkinson JA, Hinton EC, Owen AM, Roberts AC. Preference judgements involve a network of structures within frontal, cingulate and insula cortices. Eur J Neurosci. 2009;29(5):1047–55.PubMed Chaudhry AM, Parkinson JA, Hinton EC, Owen AM, Roberts AC. Preference judgements involve a network of structures within frontal, cingulate and insula cortices. Eur J Neurosci. 2009;29(5):1047–55.PubMed
115.
Zurück zum Zitat Tana MG, Montin E, Cerutti S, Bianchi AM. Exploring cortical attentional system by using fMRI during a continuous perfomance test. Comput Intell Neurosci. 2010;2010:329213. Tana MG, Montin E, Cerutti S, Bianchi AM. Exploring cortical attentional system by using fMRI during a continuous perfomance test. Comput Intell Neurosci. 2010;2010:329213.
116.
Zurück zum Zitat Kelly AM, Di MA, Uddin LQ, Shehzad Z, Gee DG, Reiss PT, et al. Development of anterior cingulate functional connectivity from late childhood to early adulthood. Cereb Cortex. 2009;19(3):640–57.PubMed Kelly AM, Di MA, Uddin LQ, Shehzad Z, Gee DG, Reiss PT, et al. Development of anterior cingulate functional connectivity from late childhood to early adulthood. Cereb Cortex. 2009;19(3):640–57.PubMed
117.
Zurück zum Zitat Lichter DG, Cummings JL. Frontal–subcortical circuits in psychiatric and neurological disorders. New York: Guilford. 2001. Lichter DG, Cummings JL. Frontal–subcortical circuits in psychiatric and neurological disorders. New York: Guilford. 2001.
118.
Zurück zum Zitat Bonelli RM, Cummings JL. Frontal–subcortical circuitry and behavior. Dialogues Clin Neurosci. 2007;9(2):141.PubMed Bonelli RM, Cummings JL. Frontal–subcortical circuitry and behavior. Dialogues Clin Neurosci. 2007;9(2):141.PubMed
119.
Zurück zum Zitat Utter AA, Basso MA. The basal ganglia: an overview of circuits and function. Neurosci Biobehav Rev. 2008;32(3):333–42.PubMed Utter AA, Basso MA. The basal ganglia: an overview of circuits and function. Neurosci Biobehav Rev. 2008;32(3):333–42.PubMed
120.
Zurück zum Zitat Lichter DG, Cummings JL. Introduction and overview. In: Lichter DG, Cummings JL, editors. Frontal–subcortical circuits in psychiatric and neurological disorders. New York: Guilford; 2001. p. 1–43. Lichter DG, Cummings JL. Introduction and overview. In: Lichter DG, Cummings JL, editors. Frontal–subcortical circuits in psychiatric and neurological disorders. New York: Guilford; 2001. p. 1–43.
121.
Zurück zum Zitat Middleton FA, Strick PL. Basal ganglia and cerebellar loops: motor and cognitive circuits. Brain Res Brain Res Rev. 2000;31(2–3):236–50.PubMed Middleton FA, Strick PL. Basal ganglia and cerebellar loops: motor and cognitive circuits. Brain Res Brain Res Rev. 2000;31(2–3):236–50.PubMed
122.
Zurück zum Zitat Alexander GE, DeLong MR, Strick PL. Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annu Rev Neurosci. 1986;9:357–81.PubMed Alexander GE, DeLong MR, Strick PL. Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annu Rev Neurosci. 1986;9:357–81.PubMed
123.
Zurück zum Zitat Utter AA, Basso MA. The basal ganglia: an overview of circuits and function. Neurosci Biobehav Rev. 2008;32(3):333–42.PubMed Utter AA, Basso MA. The basal ganglia: an overview of circuits and function. Neurosci Biobehav Rev. 2008;32(3):333–42.PubMed
124.
Zurück zum Zitat Anderson JR, Fincham JM, Qin Y, Stocco A. A central circuit of the mind. Trends Cogn Sci. 2008;12(4):136–43.PubMed Anderson JR, Fincham JM, Qin Y, Stocco A. A central circuit of the mind. Trends Cogn Sci. 2008;12(4):136–43.PubMed
125.
Zurück zum Zitat Banich MT. Cognitive neuroscience and neuropsychology. 2nd ed. Boston: Houghton Mifflin; 2004. Banich MT. Cognitive neuroscience and neuropsychology. 2nd ed. Boston: Houghton Mifflin; 2004.
126.
Zurück zum Zitat Middleton FA. Fundamental and clinical evidence for basal ganglia influences on cognition. In: Bedard M, Agid Y, Chouinard S, Fahn S, Korczyn A, editors. Mental and behavioral dysfunction in movement disorders. Totowa, New York: Humana Press; 2003. p. 13–34. Middleton FA. Fundamental and clinical evidence for basal ganglia influences on cognition. In: Bedard M, Agid Y, Chouinard S, Fahn S, Korczyn A, editors. Mental and behavioral dysfunction in movement disorders. Totowa, New York: Humana Press; 2003. p. 13–34.
127.
Zurück zum Zitat Middleton FA, Strick PL. A revised neuroanatomy of frontal–subcortical circuits. In: Lichter D, Cummings J, editors. Frontal–subcortical circuits in psychiatric and neurological disorders. New York: Guilford Press; 2001. p. 44–58. Middleton FA, Strick PL. A revised neuroanatomy of frontal–subcortical circuits. In: Lichter D, Cummings J, editors. Frontal–subcortical circuits in psychiatric and neurological disorders. New York: Guilford Press; 2001. p. 44–58.
128.
Zurück zum Zitat Ashby FG, Ennis JM, Spiering BJ. A neurobiological theory of automaticity in perceptual categorization. Psychol Rev. 2007;114(3):632–56.PubMed Ashby FG, Ennis JM, Spiering BJ. A neurobiological theory of automaticity in perceptual categorization. Psychol Rev. 2007;114(3):632–56.PubMed
129.
Zurück zum Zitat Seger CA. How do the basal ganglia contribute to categorization? Their roles in generalization, response selection, and learning via feedback. Neurosci Biobehav Rev. 2008;32(2):265–78.PubMed Seger CA. How do the basal ganglia contribute to categorization? Their roles in generalization, response selection, and learning via feedback. Neurosci Biobehav Rev. 2008;32(2):265–78.PubMed
130.
Zurück zum Zitat McNab F, Klingberg T. Prefrontal cortex and basal ganglia control access to working memory. Nat Neurosci. 2008;11(1):103–7.PubMed McNab F, Klingberg T. Prefrontal cortex and basal ganglia control access to working memory. Nat Neurosci. 2008;11(1):103–7.PubMed
131.
Zurück zum Zitat Beste C, Willemssen R, Saft C, Falkenstein M. Error processing in normal aging and in basal ganglia disorders. Neuroscience. 2009;159(1):143–9.PubMed Beste C, Willemssen R, Saft C, Falkenstein M. Error processing in normal aging and in basal ganglia disorders. Neuroscience. 2009;159(1):143–9.PubMed
132.
Zurück zum Zitat Teichmann M, Gaura V, Demonet JF, Supiot F, Delliaux M, Verny C, et al. Language processing within the striatum: evidence from a PET correlation study in Huntington's disease. Brain. 2008;131(Pt 4):1046–56.PubMed Teichmann M, Gaura V, Demonet JF, Supiot F, Delliaux M, Verny C, et al. Language processing within the striatum: evidence from a PET correlation study in Huntington's disease. Brain. 2008;131(Pt 4):1046–56.PubMed
133.
Zurück zum Zitat Thompson JC, Poliakoff E, Sollom AC, Howard E, Craufurd D, Snowden JS. Automaticity and attention in Huntington's disease: when two hands are not better than one. Neuropsychologia. 2010;48(1):171–8.PubMed Thompson JC, Poliakoff E, Sollom AC, Howard E, Craufurd D, Snowden JS. Automaticity and attention in Huntington's disease: when two hands are not better than one. Neuropsychologia. 2010;48(1):171–8.PubMed
134.
Zurück zum Zitat Frank MJ, Scheres A, Sherman SJ. Understanding decision-making deficits in neurological conditions: insights from models of natural action selection. Philos Trans R Soc Lond B Biol Sci. 2007;362(1485):1641–54.PubMed Frank MJ, Scheres A, Sherman SJ. Understanding decision-making deficits in neurological conditions: insights from models of natural action selection. Philos Trans R Soc Lond B Biol Sci. 2007;362(1485):1641–54.PubMed
135.
Zurück zum Zitat Mataix-Cols D, van den Heuvel OA. Common and distinct neural correlates of obsessive–compulsive and related disorders. Psychiatr Clin North Am. 2006;29(2):391–410. viii.PubMed Mataix-Cols D, van den Heuvel OA. Common and distinct neural correlates of obsessive–compulsive and related disorders. Psychiatr Clin North Am. 2006;29(2):391–410. viii.PubMed
136.
Zurück zum Zitat Mataix-Cols D, Wooderson S, Lawrence N, Brammer MJ, Speckens A, Phillips ML. Distinct neural correlates of washing, checking, and hoarding symptom dimensions in obsessive–compulsive disorder. Arch Gen Psychiatry. 2004;61(6):564–76.PubMed Mataix-Cols D, Wooderson S, Lawrence N, Brammer MJ, Speckens A, Phillips ML. Distinct neural correlates of washing, checking, and hoarding symptom dimensions in obsessive–compulsive disorder. Arch Gen Psychiatry. 2004;61(6):564–76.PubMed
137.
Zurück zum Zitat van den Heuvel OA, Remijnse PL, Mataix-Cols D, Vrenken H, Groenewegen HJ, Uylings HB, et al. The major symptom dimensions of obsessive–compulsive disorder are mediated by partially distinct neural systems. Brain. 2009;132(Pt 4):853–68.PubMed van den Heuvel OA, Remijnse PL, Mataix-Cols D, Vrenken H, Groenewegen HJ, Uylings HB, et al. The major symptom dimensions of obsessive–compulsive disorder are mediated by partially distinct neural systems. Brain. 2009;132(Pt 4):853–68.PubMed
138.
Zurück zum Zitat Heijtz RD, Kolb B, Forssberg H. Motor inhibitory role of dopamine D1 receptors: implications for ADHD. Physiol Behav. 2007;92(1–2):155–60.PubMed Heijtz RD, Kolb B, Forssberg H. Motor inhibitory role of dopamine D1 receptors: implications for ADHD. Physiol Behav. 2007;92(1–2):155–60.PubMed
139.
Zurück zum Zitat Voeller KK. Attention-deficit hyperactivity disorder (ADHD). J Child Neurol. 2004;19(10):798–814.PubMed Voeller KK. Attention-deficit hyperactivity disorder (ADHD). J Child Neurol. 2004;19(10):798–814.PubMed
140.
Zurück zum Zitat Graybiel AM. The basal ganglia and chunking of action repertoires. Neurobiol Learn Mem. 1998;70(1–2):119–36.PubMed Graybiel AM. The basal ganglia and chunking of action repertoires. Neurobiol Learn Mem. 1998;70(1–2):119–36.PubMed
141.
Zurück zum Zitat Seger CA. The basal ganglia in human learning. Neuroscientist. 2006;12(4):285.PubMed Seger CA. The basal ganglia in human learning. Neuroscientist. 2006;12(4):285.PubMed
142.
Zurück zum Zitat Ashby FG, Ennis JM. The role of the basal ganglia in category learning. The psychology of learning and motivation: advances in research and theory. 2006. p. 1. Ashby FG, Ennis JM. The role of the basal ganglia in category learning. The psychology of learning and motivation: advances in research and theory. 2006. p. 1.
143.
Zurück zum Zitat Packard MG, Knowlton BJ. Learning and memory functions of the basal ganglia. Annu Rev Neurosci. 2002;25:563–93.PubMed Packard MG, Knowlton BJ. Learning and memory functions of the basal ganglia. Annu Rev Neurosci. 2002;25:563–93.PubMed
144.
Zurück zum Zitat Phillips AG, Vacca G, Ahn S. A top-down perspective on dopamine, motivation and memory. Pharmacol Biochem Behav. 2008;90(2):236–49.PubMed Phillips AG, Vacca G, Ahn S. A top-down perspective on dopamine, motivation and memory. Pharmacol Biochem Behav. 2008;90(2):236–49.PubMed
145.
Zurück zum Zitat Ashby FG, Turner BO, Horvitz JC. Cortical and basal ganglia contributions to habit learning and automaticity. Trends Cogn Sci. 2010;14(5):208–215. Ashby FG, Turner BO, Horvitz JC. Cortical and basal ganglia contributions to habit learning and automaticity. Trends Cogn Sci. 2010;14(5):208–215.
146.
Zurück zum Zitat Dillon DG, Holmes AJ, Jahn AL, Bogdan R, Wald LL, Pizzagalli DA. Dissociation of neural regions associated with anticipatory versus consummatory phases of incentive processing. Psychophysiology. 2008;45(1):36.PubMed Dillon DG, Holmes AJ, Jahn AL, Bogdan R, Wald LL, Pizzagalli DA. Dissociation of neural regions associated with anticipatory versus consummatory phases of incentive processing. Psychophysiology. 2008;45(1):36.PubMed
147.
Zurück zum Zitat Heekeren HR, Wartenburger I, Marschner A, Mell T, Villringer A, Reischies FM. Role of ventral striatum in reward-based decision making. NeuroReport. 2007;18(10):951–5.PubMed Heekeren HR, Wartenburger I, Marschner A, Mell T, Villringer A, Reischies FM. Role of ventral striatum in reward-based decision making. NeuroReport. 2007;18(10):951–5.PubMed
148.
Zurück zum Zitat Heimer L, Alheid GF, de Olmos JS, Groenewegen HJ, Haber SN, Harlan RE, et al. The accumbens: beyond the core–shell dichotomy. J Neuropsychiatry Clin Neurosci. 1997;9(3):354–81.PubMed Heimer L, Alheid GF, de Olmos JS, Groenewegen HJ, Haber SN, Harlan RE, et al. The accumbens: beyond the core–shell dichotomy. J Neuropsychiatry Clin Neurosci. 1997;9(3):354–81.PubMed
149.
Zurück zum Zitat Heimer L, Van Hoesen GW, Trimble M, Zahm DS. Anatomy of neuropsychiatry: the new anatomy of the basal forebrain and its implications for neuropsychiatric illness. San Diego, CA: Academic; 2008. Heimer L, Van Hoesen GW, Trimble M, Zahm DS. Anatomy of neuropsychiatry: the new anatomy of the basal forebrain and its implications for neuropsychiatric illness. San Diego, CA: Academic; 2008.
150.
Zurück zum Zitat Robbins TW, Everett BJ. Motivation and reward. In: Squire LR, Bloom FE, Roberts JL, Spitzer NC, Zigmond NC, McConnell MK, editors. Fundamental neuroscience. 2nd ed. San Diego: Academic; 2003. p. 1109–26. Robbins TW, Everett BJ. Motivation and reward. In: Squire LR, Bloom FE, Roberts JL, Spitzer NC, Zigmond NC, McConnell MK, editors. Fundamental neuroscience. 2nd ed. San Diego: Academic; 2003. p. 1109–26.
151.
Zurück zum Zitat Sillitoe RV, Vogel MW. Desire, disease, and the origins of the dopaminergic system. Schizophr Bull. 2008;34(2):212–9.PubMed Sillitoe RV, Vogel MW. Desire, disease, and the origins of the dopaminergic system. Schizophr Bull. 2008;34(2):212–9.PubMed
152.
Zurück zum Zitat Doll BB, Frank MJ. The basal ganglia in reward and decision making: computational models and empirical studies. In: Dreher J, Tremblay L, editors. Handbook of reward and decision making. New York: Academic Press; 2009. p. 399. Doll BB, Frank MJ. The basal ganglia in reward and decision making: computational models and empirical studies. In: Dreher J, Tremblay L, editors. Handbook of reward and decision making. New York: Academic Press; 2009. p. 399.
153.
Zurück zum Zitat Yin HH, Ostlund SB, Balleine BW. Reward-guided learning beyond dopamine in the nucleus accumbens: the integrative functions of cortico-basal ganglia networks. Eur J Neurosci. 2008;28(8):1437.PubMed Yin HH, Ostlund SB, Balleine BW. Reward-guided learning beyond dopamine in the nucleus accumbens: the integrative functions of cortico-basal ganglia networks. Eur J Neurosci. 2008;28(8):1437.PubMed
154.
Zurück zum Zitat Stocco A, Lebiere C, Anderson JR. Conditional routing of information to the cortex: a model of the basal ganglia's role in cognitive coordination. Psychol Rev. 2010;117(2):541.PubMed Stocco A, Lebiere C, Anderson JR. Conditional routing of information to the cortex: a model of the basal ganglia's role in cognitive coordination. Psychol Rev. 2010;117(2):541.PubMed
155.
Zurück zum Zitat Sil'kis IG. The role of dopamine-dependent negative feedback in the hippocampus–basal ganglia–thalamus–hippocampus loop in the extinction of responses. Neurosci Behav Physiol. 2008;38(4):399–405.PubMed Sil'kis IG. The role of dopamine-dependent negative feedback in the hippocampus–basal ganglia–thalamus–hippocampus loop in the extinction of responses. Neurosci Behav Physiol. 2008;38(4):399–405.PubMed
156.
Zurück zum Zitat Frank MJ. Dynamic dopamine modulation in the basal ganglia: a neurocomputational account of cognitive deficits in medicated and nonmedicated parkinsonism. J Cogn Neurosci. 2005;17(1):51–72.PubMed Frank MJ. Dynamic dopamine modulation in the basal ganglia: a neurocomputational account of cognitive deficits in medicated and nonmedicated parkinsonism. J Cogn Neurosci. 2005;17(1):51–72.PubMed
157.
Zurück zum Zitat Cohen MX, Frank MJ. Neurocomputational models of basal ganglia function in learning, memory and choice. Behav Brain Res. 2009;199(1):141–56.PubMed Cohen MX, Frank MJ. Neurocomputational models of basal ganglia function in learning, memory and choice. Behav Brain Res. 2009;199(1):141–56.PubMed
158.
Zurück zum Zitat Frank MJ, Seeberger LC, O'Reilly RC. By carrot or by stick: cognitive reinforcement learning in parkinsonism. Science. 2004;306(5703):1940–3.PubMed Frank MJ, Seeberger LC, O'Reilly RC. By carrot or by stick: cognitive reinforcement learning in parkinsonism. Science. 2004;306(5703):1940–3.PubMed
159.
Zurück zum Zitat Cools R, Barker RA, Sahakian BJ, Robbins TW. L-Dopa medication remediates cognitive inflexibility, but increases impulsivity in patients with Parkinson's disease. Neuropsychologia. 2003;41(11):1431–41.PubMed Cools R, Barker RA, Sahakian BJ, Robbins TW. L-Dopa medication remediates cognitive inflexibility, but increases impulsivity in patients with Parkinson's disease. Neuropsychologia. 2003;41(11):1431–41.PubMed
160.
Zurück zum Zitat Cools R, Barker RA, Sahakian BJ, Robbins TW. Enhanced or impaired cognitive function in Parkinson's disease as a function of dopaminergic medication and task demands. Cereb Cortex. 2001;11(12):1136.PubMed Cools R, Barker RA, Sahakian BJ, Robbins TW. Enhanced or impaired cognitive function in Parkinson's disease as a function of dopaminergic medication and task demands. Cereb Cortex. 2001;11(12):1136.PubMed
161.
Zurück zum Zitat Frank MJ, Santamaria A, O'Reilly RC, Willcutt E. Testing computational models of dopamine and noradrenaline dysfunction in attention deficit/hyperactivity disorder. Neuropsychopharmacology. 2007;32(7):1583–99.PubMed Frank MJ, Santamaria A, O'Reilly RC, Willcutt E. Testing computational models of dopamine and noradrenaline dysfunction in attention deficit/hyperactivity disorder. Neuropsychopharmacology. 2007;32(7):1583–99.PubMed
162.
Zurück zum Zitat Scheres A, Milham MP, Knutson B, Castellanos FX. Ventral striatal hyporesponsiveness during reward anticipation in attention-deficit/hyperactivity disorder. Biol Psychiatry. 2007;61(5):720–4.PubMed Scheres A, Milham MP, Knutson B, Castellanos FX. Ventral striatal hyporesponsiveness during reward anticipation in attention-deficit/hyperactivity disorder. Biol Psychiatry. 2007;61(5):720–4.PubMed
163.
Zurück zum Zitat Delgado MR, Li J, Schiller D, Phelps EA. The role of the striatum in aversive learning and aversive prediction errors. Philos Trans R Soc B: Biol Sci. 2008;363(1511):3787. Delgado MR, Li J, Schiller D, Phelps EA. The role of the striatum in aversive learning and aversive prediction errors. Philos Trans R Soc B: Biol Sci. 2008;363(1511):3787.
164.
Zurück zum Zitat Pizzagalli DA, Evins AE, Schetter EC, Frank MJ, Pajtas PE, Santesso DL, et al. Single dose of a dopamine agonist impairs reinforcement learning in humans: behavioral evidence from a laboratory-based measure of reward responsiveness. Psychopharmacology (Berl). 2008;196(2):221–32. Pizzagalli DA, Evins AE, Schetter EC, Frank MJ, Pajtas PE, Santesso DL, et al. Single dose of a dopamine agonist impairs reinforcement learning in humans: behavioral evidence from a laboratory-based measure of reward responsiveness. Psychopharmacology (Berl). 2008;196(2):221–32.
165.
Zurück zum Zitat Levy F. Pharmacological and therapeutic directions in ADHD: specificity in the PFC. Behav Brain Funct. 2008;4:12.PubMed Levy F. Pharmacological and therapeutic directions in ADHD: specificity in the PFC. Behav Brain Funct. 2008;4:12.PubMed
166.
Zurück zum Zitat Seger CA, Miller EK. Category learning in the brain. Annu Rev Neurosci. 2010;33(1). Seger CA, Miller EK. Category learning in the brain. Annu Rev Neurosci. 2010;33(1).
167.
Zurück zum Zitat Eysenck HJ. Speed of information processing, reaction time, and the theory of intelligence. In: Vernon P, editor. Speed of information processing and intelligence. Norwood, NJ: Ablex; 1987. p. 21–67. Eysenck HJ. Speed of information processing, reaction time, and the theory of intelligence. In: Vernon P, editor. Speed of information processing and intelligence. Norwood, NJ: Ablex; 1987. p. 21–67.
168.
Zurück zum Zitat Sheppard LD. Intelligence and speed of information-processing: a review of 50 years of research. Pers Individ Differ. 2008;44(3):533–49. Sheppard LD. Intelligence and speed of information-processing: a review of 50 years of research. Pers Individ Differ. 2008;44(3):533–49.
169.
Zurück zum Zitat Vernon PA. Speed of information-processing and intelligence. NJ: Ablex Norwood; 1987. Vernon PA. Speed of information-processing and intelligence. NJ: Ablex Norwood; 1987.
170.
Zurück zum Zitat Mandl RC, Schnack HG, Zwiers MP, van der Schaaf A, Kahn RS. Hulshoff Pol HE. Functional diffusion tensor imaging: measuring task-related fractional anisotropy changes in the human brain along white matter tracts. PLoS ONE. 2008;3(11):e3631.PubMed Mandl RC, Schnack HG, Zwiers MP, van der Schaaf A, Kahn RS. Hulshoff Pol HE. Functional diffusion tensor imaging: measuring task-related fractional anisotropy changes in the human brain along white matter tracts. PLoS ONE. 2008;3(11):e3631.PubMed
171.
Zurück zum Zitat Filley CM. White matter and behavioral neurology. Ann NY Acad Sci. 2005;1064:162–83.PubMed Filley CM. White matter and behavioral neurology. Ann NY Acad Sci. 2005;1064:162–83.PubMed
172.
Zurück zum Zitat van den Heuvel MP, Mandl RC, Kahn RS, Hulshoff Pol HE. Functionally linked resting-state networks reflect the underlying structural connectivity architecture of the human brain. Hum Brain Mapp. 2009;30(10):3127–41.PubMed van den Heuvel MP, Mandl RC, Kahn RS, Hulshoff Pol HE. Functionally linked resting-state networks reflect the underlying structural connectivity architecture of the human brain. Hum Brain Mapp. 2009;30(10):3127–41.PubMed
173.
Zurück zum Zitat Bava S, Thayer R, Jacobus J, Ward M, Jernigan TL, Tapert SF. Longitudinal characterization of white matter maturation during adolescence. Brain Res. 2010;1327:38–46. Bava S, Thayer R, Jacobus J, Ward M, Jernigan TL, Tapert SF. Longitudinal characterization of white matter maturation during adolescence. Brain Res. 2010;1327:38–46.
174.
Zurück zum Zitat Bohland JW, Wu C, Barbas H, Bokil H, Bota M, Breiter HC, et al. A proposal for a coordinated effort for the determination of brainwide neuroanatomical connectivity in model organisms at a mesoscopic scale. PLoS Comput Biol. 2009;5(3):e1000334.PubMed Bohland JW, Wu C, Barbas H, Bokil H, Bota M, Breiter HC, et al. A proposal for a coordinated effort for the determination of brainwide neuroanatomical connectivity in model organisms at a mesoscopic scale. PLoS Comput Biol. 2009;5(3):e1000334.PubMed
175.
Zurück zum Zitat Wahl M, Li YO, Ng J, LaHue SC, Cooper SR, Sherr EH, et al. Microstructural correlations of white matter tracts in the human brain. NeuroImage. 51(2):531–541. Wahl M, Li YO, Ng J, LaHue SC, Cooper SR, Sherr EH, et al. Microstructural correlations of white matter tracts in the human brain. NeuroImage. 51(2):531–541.
176.
Zurück zum Zitat Ullen F, Forsman L, Blom O, Karabanov A, Madison G. Intelligence and variability in a simple timing task share neural substrates in the prefrontal white matter. J Neurosci. 2008;28(16):4238–43.PubMed Ullen F, Forsman L, Blom O, Karabanov A, Madison G. Intelligence and variability in a simple timing task share neural substrates in the prefrontal white matter. J Neurosci. 2008;28(16):4238–43.PubMed
177.
Zurück zum Zitat Strick PL, Dum RP, Fiez JA. Cerebellum and nonmotor function. Annu Rev Neurosci. 2009;32:413–34.PubMed Strick PL, Dum RP, Fiez JA. Cerebellum and nonmotor function. Annu Rev Neurosci. 2009;32:413–34.PubMed
178.
Zurück zum Zitat Stoodley CJ, Schmahmann JD. Functional topography in the human cerebellum: a meta-analysis of neuroimaging studies. Neuroimage. 2009;44(2):489–501.PubMed Stoodley CJ, Schmahmann JD. Functional topography in the human cerebellum: a meta-analysis of neuroimaging studies. Neuroimage. 2009;44(2):489–501.PubMed
179.
Zurück zum Zitat Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed
180.
Zurück zum Zitat Ramnani N, Behrens TE, Johansen-Berg H, Richter MC, Pinsk MA, Andersson JL, et al. The evolution of prefrontal inputs to the cortico-pontine system: diffusion imaging evidence from Macaque monkeys and humans. Cereb Cortex. 2006;16(6):811–8.PubMed Ramnani N, Behrens TE, Johansen-Berg H, Richter MC, Pinsk MA, Andersson JL, et al. The evolution of prefrontal inputs to the cortico-pontine system: diffusion imaging evidence from Macaque monkeys and humans. Cereb Cortex. 2006;16(6):811–8.PubMed
181.
Zurück zum Zitat Krienen FM, Buckner RL. Segregated fronto-cerebellar circuits revealed by intrinsic functional connectivity. Cereb Cortex. 2009;19(10):2485–97.PubMed Krienen FM, Buckner RL. Segregated fronto-cerebellar circuits revealed by intrinsic functional connectivity. Cereb Cortex. 2009;19(10):2485–97.PubMed
182.
Zurück zum Zitat Middleton FA, Strick PL. Anatomical evidence for cerebellar and basal ganglia involvement in higher cognitive function. Science. 1994;266(5184):458–61.PubMed Middleton FA, Strick PL. Anatomical evidence for cerebellar and basal ganglia involvement in higher cognitive function. Science. 1994;266(5184):458–61.PubMed
183.
Zurück zum Zitat Herculano-Houzel S. Coordinated scaling of cortical and cerebellar numbers of neurons. Front Neuroanat. 2010;4(12):1–8. Herculano-Houzel S. Coordinated scaling of cortical and cerebellar numbers of neurons. Front Neuroanat. 2010;4(12):1–8.
184.
Zurück zum Zitat Blumenfeld H. Neuroanatomy through clinical cases. Sinauer Associates; 2002. Blumenfeld H. Neuroanatomy through clinical cases. Sinauer Associates; 2002.
185.
Zurück zum Zitat Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed
186.
Zurück zum Zitat Azizi A. ... and the olive said to the cerebellum: organization and functional significance of the olivo-cerebellar system. The Neuroscientist. 2007;13(6):616. Azizi A. ... and the olive said to the cerebellum: organization and functional significance of the olivo-cerebellar system. The Neuroscientist. 2007;13(6):616.
187.
Zurück zum Zitat Houk JC, Mugnaini E. Cerebellum. In: Squire L, Bloom FE, McConnell SK, Roberts JL, Spitzer NC, Zigmond MJ, editors. Fundamental neuroscience. San Diego: Academic; 2003. p. 841–72. Houk JC, Mugnaini E. Cerebellum. In: Squire L, Bloom FE, McConnell SK, Roberts JL, Spitzer NC, Zigmond MJ, editors. Fundamental neuroscience. San Diego: Academic; 2003. p. 841–72.
188.
Zurück zum Zitat Glickstein M. What does the cerebellum really do? Curr Biol. 2007;17(19):R824–7.PubMed Glickstein M. What does the cerebellum really do? Curr Biol. 2007;17(19):R824–7.PubMed
189.
Zurück zum Zitat Granziera C, Schmahmann J, Hadjikhani N, Meyer H, Meuli R, Wedeen V, et al. Diffusion spectrum imaging shows the structural basis of functional cerebellar circuits in the human cerebellum in vivo. PLoS ONE. 2009;4(4):e5101.PubMed Granziera C, Schmahmann J, Hadjikhani N, Meyer H, Meuli R, Wedeen V, et al. Diffusion spectrum imaging shows the structural basis of functional cerebellar circuits in the human cerebellum in vivo. PLoS ONE. 2009;4(4):e5101.PubMed
191.
Zurück zum Zitat Hu D, Shen H, Zhou Z. Functional asymmetry in the cerebellum: a brief review. Cerebellum. 2008;7(3):304–313. Hu D, Shen H, Zhou Z. Functional asymmetry in the cerebellum: a brief review. Cerebellum. 2008;7(3):304–313.
192.
Zurück zum Zitat Habas C. Functional imaging of the deep cerebellar nuclei: a review. Cerebellum. 2010;9(1):22–28. Habas C. Functional imaging of the deep cerebellar nuclei: a review. Cerebellum. 2010;9(1):22–28.
193.
Zurück zum Zitat Stoodley CJ, Schmahmann JD. Evidence for topographic organization in the cerebellum of motor control versus cognitive and affective processing. Cortex. 2010;46(7):831–844. Stoodley CJ, Schmahmann JD. Evidence for topographic organization in the cerebellum of motor control versus cognitive and affective processing. Cortex. 2010;46(7):831–844.
194.
Zurück zum Zitat Leggio MG, Tedesco AM, Chiricozzi FR, Clausi S, Orsini A, Molinari M. Cognitive sequencing impairment in patients with focal or atrophic cerebellar damage. Brain. 2008;131:1332–1343. Leggio MG, Tedesco AM, Chiricozzi FR, Clausi S, Orsini A, Molinari M. Cognitive sequencing impairment in patients with focal or atrophic cerebellar damage. Brain. 2008;131:1332–1343.
195.
Zurück zum Zitat Murdoch BE. The cerebellum and language: historical perspective and review. Cortex. 2009;46(7):858–868. Murdoch BE. The cerebellum and language: historical perspective and review. Cortex. 2009;46(7):858–868.
196.
Zurück zum Zitat Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed
197.
Zurück zum Zitat Middleton FA, Strick PL. Cerebellar output channels. Int Rev Neurobiol. 1997;41:61–82.PubMed Middleton FA, Strick PL. Cerebellar output channels. Int Rev Neurobiol. 1997;41:61–82.PubMed
198.
Zurück zum Zitat Middleton FA, Strick PL. Dentate output channels: motor and cognitive components. Prog Brain Res. 1997;114:553–66.PubMed Middleton FA, Strick PL. Dentate output channels: motor and cognitive components. Prog Brain Res. 1997;114:553–66.PubMed
199.
Zurück zum Zitat Ackermann H, Mathiak K, Ivry RB. Temporal organization of “internal speech” as a basis for cerebellar modulation of cognitive functions. Behav Cogn Neurosci Rev. 2004;3(1):14–22.PubMed Ackermann H, Mathiak K, Ivry RB. Temporal organization of “internal speech” as a basis for cerebellar modulation of cognitive functions. Behav Cogn Neurosci Rev. 2004;3(1):14–22.PubMed
200.
Zurück zum Zitat Baillieux H, Smet HJ, Paquier PF, De Deyn PP, Marien P. Cerebellar neurocognition: insights into the bottom of the brain. Clin Neurol Neurosurg. 2008;110(8):763–773. Baillieux H, Smet HJ, Paquier PF, De Deyn PP, Marien P. Cerebellar neurocognition: insights into the bottom of the brain. Clin Neurol Neurosurg. 2008;110(8):763–773.
201.
Zurück zum Zitat Justus TC, Ivry RB. The cognitive neuropsychology of the cerebellum. Int Rev Psychiatry. 2001;13(4):276–82. Justus TC, Ivry RB. The cognitive neuropsychology of the cerebellum. Int Rev Psychiatry. 2001;13(4):276–82.
202.
Zurück zum Zitat Hautzel H, Mottaghy FM, Specht K, Muller HW, Krause BJ. Evidence of a modality-dependent role of the cerebellum in working memory? An fMRI study comparing verbal and abstract n-back tasks. Neuroimage. 2009;47(4):2073–2082. Hautzel H, Mottaghy FM, Specht K, Muller HW, Krause BJ. Evidence of a modality-dependent role of the cerebellum in working memory? An fMRI study comparing verbal and abstract n-back tasks. Neuroimage. 2009;47(4):2073–2082.
203.
Zurück zum Zitat Ravizza SM, McCormick CA, Schlerf JE, Justus T, Ivry RB, Fiez JA. Cerebellar damage produces selective deficits in verbal working memory. Brain. 2006;129(2):306–20.PubMed Ravizza SM, McCormick CA, Schlerf JE, Justus T, Ivry RB, Fiez JA. Cerebellar damage produces selective deficits in verbal working memory. Brain. 2006;129(2):306–20.PubMed
204.
Zurück zum Zitat Mackie S, Shaw P, Lenroot R, Pierson R, Greenstein DK, Nugent TF, et al. Cerebellar development and clinical outcome in attention deficit hyperactivity disorder. Am J Psychiatry. 2007;164(4):647–55.PubMed Mackie S, Shaw P, Lenroot R, Pierson R, Greenstein DK, Nugent TF, et al. Cerebellar development and clinical outcome in attention deficit hyperactivity disorder. Am J Psychiatry. 2007;164(4):647–55.PubMed
205.
Zurück zum Zitat Allen G, Buxton RB, Wong EC, Courchesne E. Attentional activation of the cerebellum independent of motor involvement. Science. 1997;275(5308):1940–3.PubMed Allen G, Buxton RB, Wong EC, Courchesne E. Attentional activation of the cerebellum independent of motor involvement. Science. 1997;275(5308):1940–3.PubMed
206.
Zurück zum Zitat Ghajar J, Ivry RB. The predictive brain state: asynchrony in disorders of attention? Neuroscientist. 2009;15(3):232–42.PubMed Ghajar J, Ivry RB. The predictive brain state: asynchrony in disorders of attention? Neuroscientist. 2009;15(3):232–42.PubMed
207.
Zurück zum Zitat Ben-Yehudah G, Guediche S, Fiez JA. Cerebellar contributions to verbal working memory: beyond cognitive theory. Cerebellum. 2007;6(3):193–201.PubMed Ben-Yehudah G, Guediche S, Fiez JA. Cerebellar contributions to verbal working memory: beyond cognitive theory. Cerebellum. 2007;6(3):193–201.PubMed
208.
Zurück zum Zitat Andreasen NC, Pierson R. The role of the cerebellum in schizophrenia. Biol Psychiatry. 2008;64(2):81–88. Andreasen NC, Pierson R. The role of the cerebellum in schizophrenia. Biol Psychiatry. 2008;64(2):81–88.
209.
Zurück zum Zitat Daum I, Ackermann H, Schugens MM, Reimold C, Dichgans J, Birbaumer N. The cerebellum and cognitive functions in humans. Behav Neurosci. 1993;107(3):411–9.PubMed Daum I, Ackermann H, Schugens MM, Reimold C, Dichgans J, Birbaumer N. The cerebellum and cognitive functions in humans. Behav Neurosci. 1993;107(3):411–9.PubMed
210.
Zurück zum Zitat Facundo M, Villamil AR, Ameriso S, Roca M, Torralva T. ‘Real life’ executive deficits in patients with focal vascular lesions affecting the cerebellum. J Neurol Sci. 2009;283(1):95–8. Facundo M, Villamil AR, Ameriso S, Roca M, Torralva T. ‘Real life’ executive deficits in patients with focal vascular lesions affecting the cerebellum. J Neurol Sci. 2009;283(1):95–8.
211.
Zurück zum Zitat Schmahmann JD, Sherman JC. The cerebellar cognitive affective syndrome. Brain. 1998;121(Pt 4):561–79.PubMed Schmahmann JD, Sherman JC. The cerebellar cognitive affective syndrome. Brain. 1998;121(Pt 4):561–79.PubMed
212.
Zurück zum Zitat Schmahmann JD. Disorders of the cerebellum: ataxia, dysmetria of thought, and the cerebellar cognitive affective syndrome. J Neuropsychiatry Clin Neurosci. 2004;16(3):367–78.PubMed Schmahmann JD. Disorders of the cerebellum: ataxia, dysmetria of thought, and the cerebellar cognitive affective syndrome. J Neuropsychiatry Clin Neurosci. 2004;16(3):367–78.PubMed
213.
Zurück zum Zitat Kalashnikova LA, Zueva YV, Pugacheva OV, Korsakova NK. Cognitive impairments in cerebellar infarcts. Neurosci Behav Physiol. 2005;35(8):773–9.PubMed Kalashnikova LA, Zueva YV, Pugacheva OV, Korsakova NK. Cognitive impairments in cerebellar infarcts. Neurosci Behav Physiol. 2005;35(8):773–9.PubMed
214.
Zurück zum Zitat Kalashnikova LA. The role of the cerebellum in the organization of higher mental functions. Zh Nevrol Psikhiatr Im S S Korsakova. 2001;101(4):55–60.PubMed Kalashnikova LA. The role of the cerebellum in the organization of higher mental functions. Zh Nevrol Psikhiatr Im S S Korsakova. 2001;101(4):55–60.PubMed
215.
Zurück zum Zitat Ito M. Movement and thought: identical control mechanisms by the cerebellum. Trends Neurosci. 1993;16(11):448–50.PubMed Ito M. Movement and thought: identical control mechanisms by the cerebellum. Trends Neurosci. 1993;16(11):448–50.PubMed
216.
Zurück zum Zitat Schmahmann JD. From movement to thought: anatomic substrates of the cerebellar contribution to cognitive processing. Hum Brain Mapp. 1996;4(3):174–98.PubMed Schmahmann JD. From movement to thought: anatomic substrates of the cerebellar contribution to cognitive processing. Hum Brain Mapp. 1996;4(3):174–98.PubMed
217.
Zurück zum Zitat van Schouwenburg M, Aarts E, Cools R. Dopaminergic modulation of cognitive control: distinct roles for the prefrontal cortex and the basal ganglia. Curr Pharm Des. 2010;16(18):2026–32.PubMed van Schouwenburg M, Aarts E, Cools R. Dopaminergic modulation of cognitive control: distinct roles for the prefrontal cortex and the basal ganglia. Curr Pharm Des. 2010;16(18):2026–32.PubMed
218.
Zurück zum Zitat Wymbs NF, Grafton ST. Neural substrates of practice structure that support future off-line learning. J Neurophysiol. 2009;102(4):2462–76.PubMed Wymbs NF, Grafton ST. Neural substrates of practice structure that support future off-line learning. J Neurophysiol. 2009;102(4):2462–76.PubMed
219.
Zurück zum Zitat Seidler RD. Neural correlates of motor learning, transfer of learning, and learning to learn. Exerc Sport Sci Rev. 2010;38(1). Seidler RD. Neural correlates of motor learning, transfer of learning, and learning to learn. Exerc Sport Sci Rev. 2010;38(1).
220.
Zurück zum Zitat Ito M. Bases and implications of learning in the cerebellum—adaptive control and internal model mechanism. Prog Brain Res. 2005;148:95–109.PubMed Ito M. Bases and implications of learning in the cerebellum—adaptive control and internal model mechanism. Prog Brain Res. 2005;148:95–109.PubMed
221.
Zurück zum Zitat Vandervert LR. The appearance of the child prodigy 10,000 years ago: an evolutionary and developmental explanation. J Mind Behav J Mind Behav. 2009;30(1–2):15–32. Vandervert LR. The appearance of the child prodigy 10,000 years ago: an evolutionary and developmental explanation. J Mind Behav J Mind Behav. 2009;30(1–2):15–32.
222.
Zurück zum Zitat Kawato M. Internal models for motor control and trajectory planning. Curr Opin Neurobiol. 1999;9(6):718–27.PubMed Kawato M. Internal models for motor control and trajectory planning. Curr Opin Neurobiol. 1999;9(6):718–27.PubMed
223.
Zurück zum Zitat Kawato M, Gomi H. A computational model of four regions of the cerebellum based on feedback-error learning. Biol Cybern. 1992;68(2):95–103.PubMed Kawato M, Gomi H. A computational model of four regions of the cerebellum based on feedback-error learning. Biol Cybern. 1992;68(2):95–103.PubMed
224.
Zurück zum Zitat Vandervert L. How working memory and cognitive modeling functions of the cerebellum contribute to discoveries in mathematics. New Ideas Psychol. 2003;21(2):159–75. Vandervert L. How working memory and cognitive modeling functions of the cerebellum contribute to discoveries in mathematics. New Ideas Psychol. 2003;21(2):159–75.
225.
Zurück zum Zitat Molinari M, Chiricozzi FR, Clausi S, Tedesco AM, De LM, Leggio MG. Cerebellum and detection of sequences, from perception to cognition. Cerebellum. 2008;7(4):611–5.PubMed Molinari M, Chiricozzi FR, Clausi S, Tedesco AM, De LM, Leggio MG. Cerebellum and detection of sequences, from perception to cognition. Cerebellum. 2008;7(4):611–5.PubMed
226.
Zurück zum Zitat Molinari M, Restuccia D, Leggio MG. State estimation, response prediction, and cerebellar sensory processing for behavioral control. Cerebellum. 2009;8(3):399–402.PubMed Molinari M, Restuccia D, Leggio MG. State estimation, response prediction, and cerebellar sensory processing for behavioral control. Cerebellum. 2009;8(3):399–402.PubMed
227.
Zurück zum Zitat Park IS, Lee KJ, Han JW, Lee NJ, Lee WT, Park KA, et al. Experience-dependent plasticity of cerebellar vermis in basketball players. Cerebellum (London, England). 2009;8(3):334–9. Park IS, Lee KJ, Han JW, Lee NJ, Lee WT, Park KA, et al. Experience-dependent plasticity of cerebellar vermis in basketball players. Cerebellum (London, England). 2009;8(3):334–9.
228.
Zurück zum Zitat Doyon J, Song AW, Karni A, Lalonde F, Adams MM, Ungerleider LG. Experience-dependent changes in cerebellar contributions to motor sequence learning. Proc Natl Acad Sci USA. 2002;99(2):1017–22.PubMed Doyon J, Song AW, Karni A, Lalonde F, Adams MM, Ungerleider LG. Experience-dependent changes in cerebellar contributions to motor sequence learning. Proc Natl Acad Sci USA. 2002;99(2):1017–22.PubMed
229.
Zurück zum Zitat Vandervert LR, Schimpf PH, Liu H. How working memory and the cerebellum collaborate to produce creativity and innovation. Creat Res J. 2007;19(1):1–18. Vandervert LR, Schimpf PH, Liu H. How working memory and the cerebellum collaborate to produce creativity and innovation. Creat Res J. 2007;19(1):1–18.
230.
Zurück zum Zitat Imamizu H, Kuroda T, Miyauchi S, Yoshioka T, Kawato M. Modular organization of internal models of tools in the human cerebellum. Proc Natl Acad Sci USA. 2003;100(9):5461–6.PubMed Imamizu H, Kuroda T, Miyauchi S, Yoshioka T, Kawato M. Modular organization of internal models of tools in the human cerebellum. Proc Natl Acad Sci USA. 2003;100(9):5461–6.PubMed
231.
Zurück zum Zitat Tamada T, Miyauchi S, Imamizu H, Yoshioka T, Kawato M. Cerebro-cerebellar functional connectivity revealed by the laterality index in tool-use learning. NeuroReport. 1999;10(2):325–31.PubMed Tamada T, Miyauchi S, Imamizu H, Yoshioka T, Kawato M. Cerebro-cerebellar functional connectivity revealed by the laterality index in tool-use learning. NeuroReport. 1999;10(2):325–31.PubMed
232.
Zurück zum Zitat Hayter AL, Langdon DW, Ramnani N. Cerebellar contributions to working memory. Neuroimage. 2007;36(3):943–54.PubMed Hayter AL, Langdon DW, Ramnani N. Cerebellar contributions to working memory. Neuroimage. 2007;36(3):943–54.PubMed
233.
Zurück zum Zitat Balsters JH, Ramnani N. Symbolic representations of action in the human cerebellum. Neuroimage. 2008;43(2):388–98.PubMed Balsters JH, Ramnani N. Symbolic representations of action in the human cerebellum. Neuroimage. 2008;43(2):388–98.PubMed
234.
Zurück zum Zitat Carmona JE, Holland AK, Harrison DW. Extending the functional cerebral systems theory of emotion to the vestibular modality: a systematic and integrative approach. Psychol Bull. 2009;135(2):286–302.PubMed Carmona JE, Holland AK, Harrison DW. Extending the functional cerebral systems theory of emotion to the vestibular modality: a systematic and integrative approach. Psychol Bull. 2009;135(2):286–302.PubMed
235.
Zurück zum Zitat Schmahmann JD, Weilburg JB, Sherman JC. The neuropsychiatry of the cerebellum—insights from the clinic. Cerebellum. 2007;6(3):254–67.PubMed Schmahmann JD, Weilburg JB, Sherman JC. The neuropsychiatry of the cerebellum—insights from the clinic. Cerebellum. 2007;6(3):254–67.PubMed
236.
Zurück zum Zitat Hoshi E, Tremblay L, Fθger J, Carras PL, Strick PL. The cerebellum communicates with the basal ganglia. Nat Neurosci. 2005;8(11):1491–3.PubMed Hoshi E, Tremblay L, Fθger J, Carras PL, Strick PL. The cerebellum communicates with the basal ganglia. Nat Neurosci. 2005;8(11):1491–3.PubMed
237.
Zurück zum Zitat Frank MJ, Samanta J, Moustafa AA, Sherman SJ. Hold your horses: impulsivity, deep brain stimulation, and medication in parkinsonism. Science. 2007;318(5854):1309–12.PubMed Frank MJ, Samanta J, Moustafa AA, Sherman SJ. Hold your horses: impulsivity, deep brain stimulation, and medication in parkinsonism. Science. 2007;318(5854):1309–12.PubMed
238.
Zurück zum Zitat Bostan AC, Dum RP, Strick PL. The basal ganglia communicate with the cerebellum. Proc Natl Acad Sci. 2010;107(18):8452–8456. Bostan AC, Dum RP, Strick PL. The basal ganglia communicate with the cerebellum. Proc Natl Acad Sci. 2010;107(18):8452–8456.
239.
Zurück zum Zitat Diamond A. Close interrelation of motor development and cognitive development and of the cerebellum and prefrontal cortex. Child Dev. 2000;71(1):44–56.PubMed Diamond A. Close interrelation of motor development and cognitive development and of the cerebellum and prefrontal cortex. Child Dev. 2000;71(1):44–56.PubMed
240.
Zurück zum Zitat Nicolson RI, Fawcett AJ. Procedural learning difficulties: reuniting the developmental disorders? Trends Neurosci. 2007;30(4):135–41.PubMed Nicolson RI, Fawcett AJ. Procedural learning difficulties: reuniting the developmental disorders? Trends Neurosci. 2007;30(4):135–41.PubMed
241.
Zurück zum Zitat Vandervert LR. Working memory, the cognitive functions of the cerebellum and the child prodigy. In: Shavinina L, editor. The international handbook on giftedness. Netherlands: Springer; 2009. p. 295–316. Vandervert LR. Working memory, the cognitive functions of the cerebellum and the child prodigy. In: Shavinina L, editor. The international handbook on giftedness. Netherlands: Springer; 2009. p. 295–316.
242.
Zurück zum Zitat Vandervert LR. From idiots savants to Albert Einstein: a brain-algorithmic explanation of savant and everyday performance. New Ideas Psychology. 1996;14(1):81–92. Vandervert LR. From idiots savants to Albert Einstein: a brain-algorithmic explanation of savant and everyday performance. New Ideas Psychology. 1996;14(1):81–92.
243.
Zurück zum Zitat Drake JE, Winner E. Precocious realists: perceptual and cognitive characteristics associated with drawing talent in non-autistic children. Philos Trans R Soc Lond B Biol Sci. 2009;364(1522):1449–58.PubMed Drake JE, Winner E. Precocious realists: perceptual and cognitive characteristics associated with drawing talent in non-autistic children. Philos Trans R Soc Lond B Biol Sci. 2009;364(1522):1449–58.PubMed
244.
Zurück zum Zitat Hoard MK, Geary DC, Byrd-Craven J, Nugent L. Mathematical cognition in intellectually precocious first graders. Dev Neuropsychol. 2008;33(3):251–76.PubMed Hoard MK, Geary DC, Byrd-Craven J, Nugent L. Mathematical cognition in intellectually precocious first graders. Dev Neuropsychol. 2008;33(3):251–76.PubMed
245.
Zurück zum Zitat Swanson HL. Cognitive processes that underlie mathematical precociousness in young children. J Exp Child Psychol. 2006;93(3):239–64.PubMed Swanson HL. Cognitive processes that underlie mathematical precociousness in young children. J Exp Child Psychol. 2006;93(3):239–64.PubMed
246.
Zurück zum Zitat Thompson LA, Oehlert J. The etiology of giftedness. Learn Individ Differ. 2009;20(4):298–307. Thompson LA, Oehlert J. The etiology of giftedness. Learn Individ Differ. 2009;20(4):298–307.
247.
Zurück zum Zitat Bartels M, Rietveld MJH, Van Baal GCM, Boomsma DI. Genetic and environmental influences on the development of intelligence. Behav Genet. 2002;32(4):237–49.PubMed Bartels M, Rietveld MJH, Van Baal GCM, Boomsma DI. Genetic and environmental influences on the development of intelligence. Behav Genet. 2002;32(4):237–49.PubMed
248.
Zurück zum Zitat Goldsmith HH, Pollak SD, Davidson RJ. Developmental neuroscience perspectives on emotion regulation. Child Dev Perspect. 2008;2(3):132–40.PubMed Goldsmith HH, Pollak SD, Davidson RJ. Developmental neuroscience perspectives on emotion regulation. Child Dev Perspect. 2008;2(3):132–40.PubMed
249.
Zurück zum Zitat Goldsmith HH, Lemery KS, Aksan N, Buss KA. Temperamental substrates of personality development. In: Molfese V, Molfese D, editors. Temperamental substrates of personality development. Mahwah, NJ: Lawrence Erlbaum; 2000. p. 1–32. Goldsmith HH, Lemery KS, Aksan N, Buss KA. Temperamental substrates of personality development. In: Molfese V, Molfese D, editors. Temperamental substrates of personality development. Mahwah, NJ: Lawrence Erlbaum; 2000. p. 1–32.
250.
Zurück zum Zitat Vandervert LR. The appearance of the child prodigy 10,000 years ago: an evolutionary and developmental explanation. J Mind Behav J Mind Behav. 2009;30(1–2):15–32. Vandervert LR. The appearance of the child prodigy 10,000 years ago: an evolutionary and developmental explanation. J Mind Behav J Mind Behav. 2009;30(1–2):15–32.
251.
Zurück zum Zitat Fair DA, Dosenbach NU, Church JA, Cohen AL, Brahmbhatt S, Miezin FM, et al. Development of distinct control networks through segregation and integration. Proc Natl Acad Sci USA. 2007;104(33):13507–12.PubMed Fair DA, Dosenbach NU, Church JA, Cohen AL, Brahmbhatt S, Miezin FM, et al. Development of distinct control networks through segregation and integration. Proc Natl Acad Sci USA. 2007;104(33):13507–12.PubMed
252.
Zurück zum Zitat Fair DA, Cohen AL, Power JD, Dosenbach NU, Church JA, Miezin FM, et al. Functional brain networks develop from a “local to distributed” organization. PLoS Comput Biol. 2009;5(5):e1000381.PubMed Fair DA, Cohen AL, Power JD, Dosenbach NU, Church JA, Miezin FM, et al. Functional brain networks develop from a “local to distributed” organization. PLoS Comput Biol. 2009;5(5):e1000381.PubMed
253.
Zurück zum Zitat Tsujimoto S, Kuwajima M, Sawaguchi T. Developmental fractionation of working memory and response inhibition during childhood. Exp Psychol. 2007;54(1):30–7.PubMed Tsujimoto S, Kuwajima M, Sawaguchi T. Developmental fractionation of working memory and response inhibition during childhood. Exp Psychol. 2007;54(1):30–7.PubMed
254.
Zurück zum Zitat Tsujimoto S, Yamamoto T, Kawaguchi H, Koizumi H, Sawaguchi T. Prefrontal cortical activation associated with working memory in adults and preschool children: an event-related optical topography study. Cereb Cortex. 2004;14(7):703–12.PubMed Tsujimoto S, Yamamoto T, Kawaguchi H, Koizumi H, Sawaguchi T. Prefrontal cortical activation associated with working memory in adults and preschool children: an event-related optical topography study. Cereb Cortex. 2004;14(7):703–12.PubMed
255.
Zurück zum Zitat Marsh R, Maia TV, Peterson BS. Functional disturbances within frontostriatal circuits across multiple childhood psychopathologies. Am J Psychiatry. 2009;166(6):664–74.PubMed Marsh R, Maia TV, Peterson BS. Functional disturbances within frontostriatal circuits across multiple childhood psychopathologies. Am J Psychiatry. 2009;166(6):664–74.PubMed
256.
Zurück zum Zitat Marsh R, Gerber AJ, Peterson BS. Neuroimaging studies of normal brain development and their relevance for understanding childhood neuropsychiatric disorders. J Am Acad Child Adolesc Psychiatry. 2008;47(11):1233–51.PubMed Marsh R, Gerber AJ, Peterson BS. Neuroimaging studies of normal brain development and their relevance for understanding childhood neuropsychiatric disorders. J Am Acad Child Adolesc Psychiatry. 2008;47(11):1233–51.PubMed
257.
Zurück zum Zitat Webb JT, Amend ER, Webb NE, Goerss J, Beljan P, Olenchak R. Misdiagnosis and dual diagnoses of gifted children and adults: ADHD, bipolar, OCD, Asperger's, depression, and other disorders. Scottsdale, AZ: Great Potential; 2005. Webb JT, Amend ER, Webb NE, Goerss J, Beljan P, Olenchak R. Misdiagnosis and dual diagnoses of gifted children and adults: ADHD, bipolar, OCD, Asperger's, depression, and other disorders. Scottsdale, AZ: Great Potential; 2005.
258.
Zurück zum Zitat Kinsbourne M. Consciousness in action: antecedents and origins. Mind Lang. 2000;15:545–55. Kinsbourne M. Consciousness in action: antecedents and origins. Mind Lang. 2000;15:545–55.
259.
Zurück zum Zitat Kinsbourne M. Development of attention and metacognition. In: Rapin I, Segalowitz S, editors. Handbook of neuropsychology. Amsterdam: Elsevier; 1993. p. 261–78. Kinsbourne M. Development of attention and metacognition. In: Rapin I, Segalowitz S, editors. Handbook of neuropsychology. Amsterdam: Elsevier; 1993. p. 261–78.
260.
Zurück zum Zitat Krigolson OE, Pierce LJ, Holroyd CB, Tanaka JW. Learning to become an expert: reinforcement learning and the acquisition of perceptual expertise. J Cogn Neurosci. 2009;21(9):1834–41.PubMed Krigolson OE, Pierce LJ, Holroyd CB, Tanaka JW. Learning to become an expert: reinforcement learning and the acquisition of perceptual expertise. J Cogn Neurosci. 2009;21(9):1834–41.PubMed
261.
Zurück zum Zitat Cummings JL. Anatomic and behavioral aspects of frontal–subcortical circuits. Ann NY Acad Sci. 1995;769(1):1–13.PubMed Cummings JL. Anatomic and behavioral aspects of frontal–subcortical circuits. Ann NY Acad Sci. 1995;769(1):1–13.PubMed
262.
Zurück zum Zitat Cummings JL, Mega M. Neuropsychiatry and behavioral neuroscience. New York: Oxford University Press; 2003. Cummings JL, Mega M. Neuropsychiatry and behavioral neuroscience. New York: Oxford University Press; 2003.
263.
Zurück zum Zitat Segawa M. Development of the nigrostriatal dopamine neuron and the pathways in the basal ganglia. Brain Dev. 2000;22 Suppl 1:S1–4.PubMed Segawa M. Development of the nigrostriatal dopamine neuron and the pathways in the basal ganglia. Brain Dev. 2000;22 Suppl 1:S1–4.PubMed
264.
Zurück zum Zitat Schmahmann JD, Caplan D. Cognition, emotion and the cerebellum. Brain. 2006;129(Pt 2):290–2.PubMed Schmahmann JD, Caplan D. Cognition, emotion and the cerebellum. Brain. 2006;129(Pt 2):290–2.PubMed
265.
Zurück zum Zitat Kringelbach ML, Berridge KC. Pleasures of the brain. New York: Oxford University Press; 2009. Kringelbach ML, Berridge KC. Pleasures of the brain. New York: Oxford University Press; 2009.
266.
Zurück zum Zitat Holstege G, Georgiadis JR, Paans AMJ, Meiners LC, van der Graaf FHCE, Reinders AATS. Brain activation during human male ejaculation. J Neurosci. 2003;23(27):9185–93.PubMed Holstege G, Georgiadis JR, Paans AMJ, Meiners LC, van der Graaf FHCE, Reinders AATS. Brain activation during human male ejaculation. J Neurosci. 2003;23(27):9185–93.PubMed
267.
Zurück zum Zitat Houk JC, Wise SP. Distributed modular architectures linking basal ganglia, cerebellum, and cerebral cortex: their role in planning and controlling action. Cereb Cortex. 1995;5(2):95–110.PubMed Houk JC, Wise SP. Distributed modular architectures linking basal ganglia, cerebellum, and cerebral cortex: their role in planning and controlling action. Cereb Cortex. 1995;5(2):95–110.PubMed
268.
Zurück zum Zitat Mishkin M, Appenzeller T. The anatomy of memory. Sci Am. 1987;256(6):80–9.PubMed Mishkin M, Appenzeller T. The anatomy of memory. Sci Am. 1987;256(6):80–9.PubMed
269.
Zurück zum Zitat Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed Schmahmann JD, Pandya DN. The cerebrocerebellar system. Int Rev Neurobiol. 1997;41:31–60.PubMed
270.
Zurück zum Zitat Schmahmann JD. The role of the cerebellum in affect and psychosis. J Neurolinguist. 2000;13(2–3):189–214. Schmahmann JD. The role of the cerebellum in affect and psychosis. J Neurolinguist. 2000;13(2–3):189–214.
271.
Zurück zum Zitat Wang GJ, Yang J, Volkow ND, Telang F, Ma Y, Zhu W, et al. Gastric stimulation in obese subjects activates the hippocampus and other regions involved in brain reward circuitry. Proc Natl Acad Sci USA. 2006;103(42):15641–5.PubMed Wang GJ, Yang J, Volkow ND, Telang F, Ma Y, Zhu W, et al. Gastric stimulation in obese subjects activates the hippocampus and other regions involved in brain reward circuitry. Proc Natl Acad Sci USA. 2006;103(42):15641–5.PubMed
272.
Zurück zum Zitat Caston J, Chianale C, Delhaye-Bouchaud N, Mariani J. Role of the cerebellum in exploration behavior. Brain Res. 1998;808(2):232–7.PubMed Caston J, Chianale C, Delhaye-Bouchaud N, Mariani J. Role of the cerebellum in exploration behavior. Brain Res. 1998;808(2):232–7.PubMed
273.
Zurück zum Zitat Zastrow A, Kaiser S, Stippich C, Walther S, Herzog W, Tchanturia K, et al. Neural correlates of impaired cognitive–behavioral flexibility in anorexia nervosa. Am J Psychiatry. 2009;166(5):608–16.PubMed Zastrow A, Kaiser S, Stippich C, Walther S, Herzog W, Tchanturia K, et al. Neural correlates of impaired cognitive–behavioral flexibility in anorexia nervosa. Am J Psychiatry. 2009;166(5):608–16.PubMed
274.
Zurück zum Zitat Schmahmann JD, Weilburg JB, Sherman JC. The neuropsychiatry of the cerebellum—insights from the clinic. Cerebellum. 2007;6(3):254–67.PubMed Schmahmann JD, Weilburg JB, Sherman JC. The neuropsychiatry of the cerebellum—insights from the clinic. Cerebellum. 2007;6(3):254–67.PubMed
275.
Zurück zum Zitat Schmahmann JD. Disorders of the cerebellum: ataxia, dysmetria of thought, and the cerebellar cognitive affective syndrome. J Neuropsychiatry Clin Neurosci. 2004;16(3):367–78.PubMed Schmahmann JD. Disorders of the cerebellum: ataxia, dysmetria of thought, and the cerebellar cognitive affective syndrome. J Neuropsychiatry Clin Neurosci. 2004;16(3):367–78.PubMed
276.
Zurück zum Zitat Anderson CM, Maas LC, Frederick B, Bendor JT, Spencer TJ, Livni E, et al. Cerebellar vermis involvement in cocaine-related behaviors. Neuropsychopharmacology. 2006;31(6):1318–26.PubMed Anderson CM, Maas LC, Frederick B, Bendor JT, Spencer TJ, Livni E, et al. Cerebellar vermis involvement in cocaine-related behaviors. Neuropsychopharmacology. 2006;31(6):1318–26.PubMed
277.
Zurück zum Zitat Georgiadis JR, Kortekaas R. The sweetest taboo: functional neurobiology of human sexuality in relation to pleasure. In: Kringelbach L, Berridge K, editors. Pleasures of the Brain. New York: Oxford University Press. 2010. Georgiadis JR, Kortekaas R. The sweetest taboo: functional neurobiology of human sexuality in relation to pleasure. In: Kringelbach L, Berridge K, editors. Pleasures of the Brain. New York: Oxford University Press. 2010.
278.
Zurück zum Zitat Lobb CJ, Wilson CJ, Paladini CA. A dynamic role for GABA receptors on the firing pattern of midbrain dopaminergic neurons. J Neurophysiol. 2010. Lobb CJ, Wilson CJ, Paladini CA. A dynamic role for GABA receptors on the firing pattern of midbrain dopaminergic neurons. J Neurophysiol. 2010.
279.
Zurück zum Zitat Bari A, Theobald DE, Caprioli D, Mar AC, Aidoo-Micah A, Dalley JW, et al. Serotonin modulates sensitivity to reward and negative feedback in a probabilistic reversal learning task in rats. Neuropsychopharmacology. 2010. Bari A, Theobald DE, Caprioli D, Mar AC, Aidoo-Micah A, Dalley JW, et al. Serotonin modulates sensitivity to reward and negative feedback in a probabilistic reversal learning task in rats. Neuropsychopharmacology. 2010.
280.
Zurück zum Zitat Pribram KH. The work in working memory: implications for development. Development of the prefrontal cortex: evolution, neurobiology, and behavior. 1997. p. 359–78. Pribram KH. The work in working memory: implications for development. Development of the prefrontal cortex: evolution, neurobiology, and behavior. 1997. p. 359–78.
281.
Zurück zum Zitat Pennington BF. Dimensions of executive functions in normal and abnormal development. Development of the prefrontal cortex: evolution, neurobiology, and behavior. 1997. p. 265–81. Pennington BF. Dimensions of executive functions in normal and abnormal development. Development of the prefrontal cortex: evolution, neurobiology, and behavior. 1997. p. 265–81.
282.
Zurück zum Zitat Ericsson KA, Krampe RT, Tesch-Romer C. The role of deliberate practice in the acquisition of expert performance. Psychol Rev. 1993;100(3):363–406. Ericsson KA, Krampe RT, Tesch-Romer C. The role of deliberate practice in the acquisition of expert performance. Psychol Rev. 1993;100(3):363–406.
283.
Zurück zum Zitat Kiesel A, Kunde W, Pohl C, Berner MP, Hoffmann J. Playing chess unconsciously. J Exp Psychol Learn Mem Cogn. 2009;35(1):292–8.PubMed Kiesel A, Kunde W, Pohl C, Berner MP, Hoffmann J. Playing chess unconsciously. J Exp Psychol Learn Mem Cogn. 2009;35(1):292–8.PubMed
284.
Zurück zum Zitat Campitelli G, Gobet F. The role of practice in chess: a longitudinal study. Learn Individ Differ. 2008;18(4):446–58. Campitelli G, Gobet F. The role of practice in chess: a longitudinal study. Learn Individ Differ. 2008;18(4):446–58.
285.
Zurück zum Zitat Johnston MV. Plasticity in the developing brain: implications for rehabilitation. Dev Disabil Res Rev. 2009;15(2):94–101.PubMed Johnston MV. Plasticity in the developing brain: implications for rehabilitation. Dev Disabil Res Rev. 2009;15(2):94–101.PubMed
286.
Zurück zum Zitat Riva D, Giorgi C. The cerebellum contributes to higher functions during development: evidence from a series of children surgically treated for posterior fossa tumours. Brain. 2000;123(Pt 5):1051–61.PubMed Riva D, Giorgi C. The cerebellum contributes to higher functions during development: evidence from a series of children surgically treated for posterior fossa tumours. Brain. 2000;123(Pt 5):1051–61.PubMed
287.
Zurück zum Zitat Haruno M, Wolpert DM, Kawato M. Multiple paired forward-inverse models for human motor learning and control. In: Kearns M, Solla S, Cohn D, editors. Advances in neural information processing systems. Cambridge, MA: MIT Press; 1999. p. 31–7. Haruno M, Wolpert DM, Kawato M. Multiple paired forward-inverse models for human motor learning and control. In: Kearns M, Solla S, Cohn D, editors. Advances in neural information processing systems. Cambridge, MA: MIT Press; 1999. p. 31–7.
288.
Zurück zum Zitat Wolpert DM, Doya K, Kawato M. A unifying computational framework for motor control and social interaction. Philos Trans R Soc B: Biol Sci. 2003;358(1431):593. Wolpert DM, Doya K, Kawato M. A unifying computational framework for motor control and social interaction. Philos Trans R Soc B: Biol Sci. 2003;358(1431):593.
289.
Zurück zum Zitat Hodgkinson GP, Langan-Fox J, Sadler-Smith E. Intuition: a fundamental bridging construct in the behavioural sciences. Br J Psychol. 2008;99(1):1–27.PubMed Hodgkinson GP, Langan-Fox J, Sadler-Smith E. Intuition: a fundamental bridging construct in the behavioural sciences. Br J Psychol. 2008;99(1):1–27.PubMed
290.
Zurück zum Zitat Shavinina LV, Seeratan KL. Extracognitive phenomena in the intellectual functioning of gifted, creative and talented individuals. In: Shavinina L, Ferrari M, editors. Beyond knowledge: extracognitive aspects of developing high ability. Mahwah, New Jersey: Lawrence Erlbaum Associates; 2004. p. 73–102. Shavinina LV, Seeratan KL. Extracognitive phenomena in the intellectual functioning of gifted, creative and talented individuals. In: Shavinina L, Ferrari M, editors. Beyond knowledge: extracognitive aspects of developing high ability. Mahwah, New Jersey: Lawrence Erlbaum Associates; 2004. p. 73–102.
291.
Zurück zum Zitat Vandervert L. The neurophysiological basis of innovation. In: Shavinina L, editor. The international handbook on innovation. Elsevier Science; 2003. p. 17–30. Vandervert L. The neurophysiological basis of innovation. In: Shavinina L, editor. The international handbook on innovation. Elsevier Science; 2003. p. 17–30.
292.
Zurück zum Zitat Ashby FG, O'Brien JB. The effects of positive versus negative feedback on information-integration category learning. Percept Psychophys. 2007;69(6):865–78.PubMed Ashby FG, O'Brien JB. The effects of positive versus negative feedback on information-integration category learning. Percept Psychophys. 2007;69(6):865–78.PubMed
293.
Zurück zum Zitat Ashby FG, Maddox WT. Complex decision rules in categorization: contrasting novice and experienced performance. J Exp Psychol Hum Percept Perform. 1992;18(1):50–71. Ashby FG, Maddox WT. Complex decision rules in categorization: contrasting novice and experienced performance. J Exp Psychol Hum Percept Perform. 1992;18(1):50–71.
294.
Zurück zum Zitat Ashby FG, Alfonso-Reese LA, Turken AU, Waldron EM. A neuropsychological theory of multiple systems in category learning. Psychol Rev. 1998;105(3):442–81.PubMed Ashby FG, Alfonso-Reese LA, Turken AU, Waldron EM. A neuropsychological theory of multiple systems in category learning. Psychol Rev. 1998;105(3):442–81.PubMed
295.
Zurück zum Zitat Ashby FG, Maddox WT. Human category learning. Annu Rev Psychol. 2005;56:149–78.PubMed Ashby FG, Maddox WT. Human category learning. Annu Rev Psychol. 2005;56:149–78.PubMed
296.
Zurück zum Zitat De la Maza M. Rapid chess improvement: a study plan for adult players. London: Everyman Chess; 2002. De la Maza M. Rapid chess improvement: a study plan for adult players. London: Everyman Chess; 2002.
297.
Zurück zum Zitat Treffert D, Christensen D. Inside the mind of a savant. Sci Am. 2009;293:108–113. Treffert D, Christensen D. Inside the mind of a savant. Sci Am. 2009;293:108–113.
298.
Zurück zum Zitat Treffert DA. The savant syndrome: an extraordinary condition. A synopsis: past, present, future. Philos Trans R Soc B: Biol Sci. 2009;364(1522):1351. Treffert DA. The savant syndrome: an extraordinary condition. A synopsis: past, present, future. Philos Trans R Soc B: Biol Sci. 2009;364(1522):1351.
299.
Zurück zum Zitat Treffert DA. The savant syndrome in autistic disorder. In: Casanova M, editor. Recent developments in autism research. New York: Nova Science; 2005. p. 27–55. Treffert DA. The savant syndrome in autistic disorder. In: Casanova M, editor. Recent developments in autism research. New York: Nova Science; 2005. p. 27–55.
300.
Zurück zum Zitat Rubenstein JLR. Three hypotheses for developmental defects that may underlie some forms of autism spectrum disorder. Curr Opin Neurol. 2010;23(2):118.PubMed Rubenstein JLR. Three hypotheses for developmental defects that may underlie some forms of autism spectrum disorder. Curr Opin Neurol. 2010;23(2):118.PubMed
301.
Zurück zum Zitat Sivaswamy L, Kumar A, Rajan D, Behen M, Muzik O, Chugani D, et al. A diffusion tensor imaging study of the cerebellar pathways in children with autism spectrum disorder. J Child Neurol. 2010. doi:10.1177/0883073809358765. Sivaswamy L, Kumar A, Rajan D, Behen M, Muzik O, Chugani D, et al. A diffusion tensor imaging study of the cerebellar pathways in children with autism spectrum disorder. J Child Neurol. 2010. doi:10.​1177/​0883073809358765​.
302.
Zurück zum Zitat Bauman ML, Kemper TL. Neuroanatomic observations of the brain in autism: a review and future directions. Int J Dev Neurosci. 2005;23(2–3):183–7.PubMed Bauman ML, Kemper TL. Neuroanatomic observations of the brain in autism: a review and future directions. Int J Dev Neurosci. 2005;23(2–3):183–7.PubMed
303.
Zurück zum Zitat Amaral DG, Schumann CM, Nordahl CW. Neuroanatomy of autism. Trends Neurosci. 2008;31(3):137–45.PubMed Amaral DG, Schumann CM, Nordahl CW. Neuroanatomy of autism. Trends Neurosci. 2008;31(3):137–45.PubMed
304.
Zurück zum Zitat Bunge SA, Wallis JD. Neuroscience of rule-guided behavior. Oxford, New York: Oxford University Press; 2008. Bunge SA, Wallis JD. Neuroscience of rule-guided behavior. Oxford, New York: Oxford University Press; 2008.
305.
Zurück zum Zitat Grahn JA, Rowe JB. Feeling the beat: premotor and striatal interactions in musicians and nonmusicians during beat perception. J Neurosci. 2009;29(23):7540.PubMed Grahn JA, Rowe JB. Feeling the beat: premotor and striatal interactions in musicians and nonmusicians during beat perception. J Neurosci. 2009;29(23):7540.PubMed
306.
Zurück zum Zitat Bengtsson SL, Ullen F. Dissociation between melodic and rhythmic processing during piano performance from musical scores. Neuroimage. 2006;30(1):272–84.PubMed Bengtsson SL, Ullen F. Dissociation between melodic and rhythmic processing during piano performance from musical scores. Neuroimage. 2006;30(1):272–84.PubMed
307.
Zurück zum Zitat Karabanov A, Blom O, Forsman L, Ullen F. The dorsal auditory pathway is involved in performance of both visual and auditory rhythms. Neuroimage. 2009;44(2):480–8.PubMed Karabanov A, Blom O, Forsman L, Ullen F. The dorsal auditory pathway is involved in performance of both visual and auditory rhythms. Neuroimage. 2009;44(2):480–8.PubMed
308.
Zurück zum Zitat Young RL, Nettelbeck T. The abilities of a musical savant and his family. J Autism Dev Disord. 1995;25(3):231–48.PubMed Young RL, Nettelbeck T. The abilities of a musical savant and his family. J Autism Dev Disord. 1995;25(3):231–48.PubMed
309.
Zurück zum Zitat Zatorre RJ, Chen JL, Penhune VB. When the brain plays music: auditory–motor interactions in music perception and production. Nat Rev Neurosci. 2007;8(7):547–58.PubMed Zatorre RJ, Chen JL, Penhune VB. When the brain plays music: auditory–motor interactions in music perception and production. Nat Rev Neurosci. 2007;8(7):547–58.PubMed
310.
Zurück zum Zitat Ferretti V, Roullet P, Sargolini F, Rinaldi A, Perri V, Del Fabbro M et al. Ventral striatal plasticity and spatial memory. Proc Natl Acad Sci. 2010;107(17):7945–7950. Ferretti V, Roullet P, Sargolini F, Rinaldi A, Perri V, Del Fabbro M et al. Ventral striatal plasticity and spatial memory. Proc Natl Acad Sci. 2010;107(17):7945–7950.
311.
Zurück zum Zitat Zamarian L, Lopez-Rolon A, Delazer M. Neuropsychological case studies on arithmetic processing. In: Berch DB, Mazzocco, editors. Why is math so hard for some children?: the nature and origins of mathematical learning difficulties and disabilities. Baltimore, MD: Brookes Publishing; 2007. p. 245. Zamarian L, Lopez-Rolon A, Delazer M. Neuropsychological case studies on arithmetic processing. In: Berch DB, Mazzocco, editors. Why is math so hard for some children?: the nature and origins of mathematical learning difficulties and disabilities. Baltimore, MD: Brookes Publishing; 2007. p. 245.
Metadaten
Titel
Adaptation, Expertise, and Giftedness: Towards an Understanding of Cortical, Subcortical, and Cerebellar Network Contributions
verfasst von
Leonard F. Koziol
Deborah Ely Budding
Dana Chidekel
Publikationsdatum
01.12.2010
Verlag
Springer-Verlag
Erschienen in
The Cerebellum / Ausgabe 4/2010
Print ISSN: 1473-4222
Elektronische ISSN: 1473-4230
DOI
https://doi.org/10.1007/s12311-010-0192-7

Weitere Artikel der Ausgabe 4/2010

The Cerebellum 4/2010 Zur Ausgabe

Leitlinien kompakt für die Neurologie

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Sozialer Aufstieg verringert Demenzgefahr

24.05.2024 Demenz Nachrichten

Ein hohes soziales Niveau ist mit die beste Versicherung gegen eine Demenz. Noch geringer ist das Demenzrisiko für Menschen, die sozial aufsteigen: Sie gewinnen fast zwei demenzfreie Lebensjahre. Umgekehrt steigt die Demenzgefahr beim sozialen Abstieg.

Hirnblutung unter DOAK und VKA ähnlich bedrohlich

17.05.2024 Direkte orale Antikoagulanzien Nachrichten

Kommt es zu einer nichttraumatischen Hirnblutung, spielt es keine große Rolle, ob die Betroffenen zuvor direkt wirksame orale Antikoagulanzien oder Marcumar bekommen haben: Die Prognose ist ähnlich schlecht.

Was nützt die Kraniektomie bei schwerer tiefer Hirnblutung?

17.05.2024 Hirnblutung Nachrichten

Eine Studie zum Nutzen der druckentlastenden Kraniektomie nach schwerer tiefer supratentorieller Hirnblutung deutet einen Nutzen der Operation an. Für überlebende Patienten ist das dennoch nur eine bedingt gute Nachricht.

Thrombektomie auch bei großen Infarkten von Vorteil

16.05.2024 Ischämischer Schlaganfall Nachrichten

Auch ein sehr ausgedehnter ischämischer Schlaganfall scheint an sich kein Grund zu sein, von einer mechanischen Thrombektomie abzusehen. Dafür spricht die LASTE-Studie, an der Patienten und Patientinnen mit einem ASPECTS von maximal 5 beteiligt waren.

Update Neurologie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.