文献詳細
増大特集 ブロードマン領野の現在地
文献概要
ブロードマンは細胞構築に基づきサルとヒトの前頭連合野内に8,9野を割り当てたが,のちの詳しい分析からPetridesらは9/46野を加えた修正版の前頭連合野脳地図を提案した。8野外側部は条件性弁別学習に,8野内の最後部にある前頭眼野は,視覚的注意や眼球運動の制御に関係している。9野外側部,9/46野は実行機能を支えるのに重要な働きをしている。8,9野内側部は心の理論や社会性に関係している。
参考文献
Brodmann K: Vergleichende Lokalisationslehre der Groβhirnrinde in ihren Prinzipien dargestellt auf Grund des Zellenbaues. Barth, Leipzig, 1909
2)Brodmann K: Beiträge zur histologischen Lokalisation der Groβhirnrinde: Ⅲ. Mitteilung: Die Rindenfelder der niederen Affen. J Psychol Neurol 4: 177-226, 1905
3)Walker AE: A cytoarichitectual study of the prefrontal area of the macaque monkey. J Comp Neurol 73: 59-86, 1940
4)Petrides M, Pandya DN: Comparative architectonic analysis of the human and the macaque frontal cortex. Boller F, Grafman J (eds): Handbook of Neuropsychology Vol. 9. Elsevier, Amsterdam, 1994, pp17-58
5)Petrides M, Pandya DN: Association pathways of the prefrontal cortex and functional observations Stuss DT, Knight RT (eds.): Principles of Frontal Lobe Function. Oxford University Press, New York, 2002, pp1-31
6)Croxson PL, Johansen-Berg H, Behrens TE, Robson MD, Pinsk MA, et al: Quantitative investigation of connections of the prefrontal cortex in the human and macaque using probabilistic diffusion tractography. J Neurosci 25: 8854-8866, 2005
7)Fuster JM: The Prefrontal Cortex. 5th ed. Academic Press, New York, 2015
8)Petrides M: Deficits on conditional associative-learning tasks after frontal- and temporal-lobe lesions in man. Neuropsychologia 23: 601-614, 1985
9)Petrides M, Alivisatos B, Evans AC, Meyer E: Dissociation of human mid-dorsolateral from posterior dorsolateral frontal cortex in memory processing. Proc Natl Acad Sci U S A 90: 873-877, 1993
10)Goldman PS, Rosvold HE: Localization of function within the dorsolateral prefrontal cortex of the rhesus monkey. Exp Neurol 27: 291-304. 1970
11)Petrides M, Iversen SD: Cross-modal matching and the primate frontal cortex. Science 192: 1023-1024, 1976
12)Schall JD: Frontal eye fields. Squire LR (ed): Encyclopedia of Neuroscience 4. Academic Press, New York, 2009, pp367-374
13)Vernet M, Quentin R, Chanes L, Mitsumasu A, Valero-Cabré A: Frontal eye field, where art thou? Anatomy, function, and non-invasive manipulation of frontal regions involved in eye movements and associated cognitive operations. Front Integr Neurosci 8: 66, 2014
14)Amiez C, Kostopoulos P, Champod AS, Petrides M: Local morphology predicts functional organization of the dorsal premotor region in the human brain. J Neurosci 26: 2724-2731, 2006
15)Goldberg ME, Bushnell MC: Behavioral enhancement of visual responses in monkey cerebral cortex. Ⅱ. Modulation in frontal eye fields specifically related to saccades. J Neurophysiol 46: 773-787, 1981
16)Armstrong KM, Moore T: Rapid enhancement of visual cortical response discriminability by microstimulation of the frontal eye field. Proc Natl Acad Sci U S A 104: 9499-9504, 2007
17)Manning FJ: Dorsolateral prefrontal cortex lesions and discrimination of movement-produced cues by rhesus monkeys. Brain Res 23: 77-88, 1978
18)Niki H, Tsutsui K: Prefrontal neuronal activity and discrimination of self-movement. Sakata H, Mikami A, Fuster JM (eds): The Association Cortex Structure and Function. Harwood Academic Publishers, Amsterdam, 1997, pp33-42
19)Yumoto N, Lu X, Henry TR, Miyachi S, Nambu A, et al: A neural correlate of the processing of multi-second time intervals in primate prefrontal cortex. PLOS ONE 6: e19168, 2011
20)Stuss T, Gallup GG Jr, Alexander MP: The frontal lobes are necessary for ‘theory of mind’. Brain 124: 279-286, 2001
21)Anderson SW, Bechara A, Damasio H, Tranel D, Damasio AR: Impairment of social and moral behavior related to early damage in human prefrontal cortex. Nat Neurosci 2: 469-479, 1999
22)Enticott PG, Fitzgibbon BM, Kennedy HA, Arnold SL, Elliot D, et al: A double-blind, randomized trial of deep repetitive transcranial magnetic stimulation (rTMS) for autism spectrum disorder. Brain Stimul 7: 206-211, 2014
23)Iacoboni M, Lieberman MD, Knowlton BJ, Molnar-Szakacs I, Moritz M, et al: Watching social interactions produces dorsomedial prefrontal and medial parietal BOLD fMRI signal increases compared to a resting baseline. NeuroImage 21: 1167-1173, 2004
24)Denny BT, Kober H, Wager TD, Ochsner KN: A meta-analysis of functional neuroimaging studies of self- and other judgments reveals a spatial gradient for mentalizing in medial prefrontal cortex. J Cogn Neurosci 24: 1742-1752, 2012
25)Volz KG, Schubotz RI, von Cramon DY: Predicting events of varying probability: uncertainty investigated by fMRI. NeuroImage 19: 271-280, 2003
26)Mason RA, Just MA: The role of the Theory-of-Mind cortical network in the comprehension of narratives. Lang Linguist Compass 3: 157-174, 2009
27)Isoda M, Noritake A: What makes the dorsomedial frontal cortex active during reading the mental states of others? Front Neurosci 7: 232, 2013
28)Raichle ME, MacLeod AM, Snyder AZ, Powers WJ, Gusnard DA, et al: A default mode of brain function. Proc Natl Acad Sci U S A 98: 676-682, 2001
29)Gusnard DA, Akbudak E, Shulman GL, Raichle ME: Medial prefrontal cortex and self-referential mental activity: relation to a default mode of brain function. Proc Natl Acad Sci U S A 98: 4259-4264, 2001
30)Rushworth MF, Buckley MJ, Behrens TE, Walton ME, Bannerman DM: Functional organization of the medial frontal cortex. Curr Opin Neurobiol 17: 220-227, 2007
31)Kojima T, Onoe H, Hikosaka K, Tsutsui K, Tsukada H, et al: Default mode of brain activity demonstrated by positron emission tomography imaging in awake monkeys: higher rest-related than working memory-related activity in medial cortical areas. J Neurosci 29: 14463-14471, 2009
32)Yoshida K, Saito N, Iriki A, Isoda M: Representation of others' action by neurons in monkey medial frontal cortex. Curr Biol 21: 249-253, 2011
33)Miyamoto K, Osada T, Setsuie R, Takeda M, Tamura K, et al: Causal neural network of metamemory for retrospection in primates. Science 355: 188-193, 2017
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