Skip to main content

Lidský mozek (Ukázka, strana 99)

Page 1

98 /  lidský mozek

(SMA, BA 6 na vnitřní ploše hemisféry), premotorické kůry a samozřejmě kůry sluchové. Důraz na typ rytmu aktivoval spojení mezi sluchovou a premotorickou kůrou u hudebníků víc než u kontrolních osob. Aktivita putamen přitom odpovídala složitosti rytmu v časové jednotce. Je tedy pravděpodobné, že rytmus je zpracováván sítí putamen–doplňková motorická–premotorická kůra.

Literatura Ahveninen J, Jääskläinen IO, Raij T, et al. Task modulated »what« and »where« pathways in human auditory cortex. Proc Natl Acad Sci 2006; 103: 1460–14613. Barrett DJ, Hall DA. Response for »what« and »where« in human non-primary auditory cortex. Neuroimage 2006; 32: 968–977. Bermudez P, Lerch JP, Zatorre RJ. Neuroanatomical correlates of musicianship as revelad by cortical thickness and voxel-based morphometry. Cerebral Cortex 2009; 19: 1583–1596. De Santis L, Clarke S, Murray MM. Automatic and intrinsic auditory »what« and »where« processing in human revealed by electrical neuroimaging. Cerebral Cortex 2007; 17: 9–17. Elhilali M, Ma L, Micheyl C, et al. Temporal coherence in the perceptual organizations and cortical reprezentation of auditory scenes. Neuron 2009; 61: 317–329. Fitch WT. The biology and evolution of music: a comparative perspective. Cognition 2006; 100: 173–215. Fullerton BC, Pandya DN. Architectonic analysis of the auditory-related areas of the superior temporal region in human brain. J Comp Neurol 2007; 504: 470–498. Gaser Ch, Schlaug G. Brain structures differ between musicians and nonmusicians. J Neuroscience 2003; 23: 9240–9245. Gould SJ, Lewontin RC. The spandrels of San Marco and panglossian paradigma of the adaptationist program. Proc Royal Soc London B 1979; 205: 581–598. Grahn JA, Rowe JB. Feeling the beat: promotor and striatal interactions in musicians and nonmusicians during beat perception J Neuroscience 2009; 29: 7540–7548. Griffiths TD, Büchel Ch, Frackowiak RSJ, et al. Analysis of temporal structure in sound by the human brain. Nature Neuroscience 1998; 1: 422–427. Guéguin M, Le Bouqin-Jeannés R, Faucon G, et al. Evidence of functional connectivity between auditory cortical areas revealed by amplitude modulation sound processing. Cerebral Cortex 2007; 17: 304–313. Hagen EH, Brynant GA. Music and dance as a coalition signaling system. Hum Nat 2003; 14: 21–51. Hall DA, Plack ChJ. Pitch processing sites in human auditory brain. Cerebral Cortex 2009; 19: 576–585. Halpern AB, Zatorre RJ. When that tune runs through your head: a PET investigation of auditory imagery od familiar melodies. Cerebral Cortex 1999; 9: 697–704. Herholz SC, Lappe C, Knief A, et al.: Neural basis of music imagery and the effect of musical perspective. Eur J Neurosci 2008; 28: 2352–2360. Hockett CF. The origin of speech. Scientific American 1960; 203: 88–96. Johnsrude IS, Penhune VB, Zattore RJ. Functional specificity in the right human auditory cortex for perceiving pitch direction. Brain 2000; 123: 155–163. Juslin PN, Västjäll D. Emotional response to music: the need to consider underlying mechanisms. Behavioral Brain Sciences 2008; 31: 559–621. Kandler K, Clause A, Noh J. Tonotopic reorganization of developing brainstem circuits. Nature Neuroscience 2009; 12: 711–716.

Ukázka elektronické knihy, UID: KOS168418


Sluchové poznávání  / 99

Koukolík F. Lidství. Neuronální koreláty. Praha: Galén 2010. Koukolík F. Sociální mozek. Praha: Karolinum 2006: 187–195. Langers DR, Backes WH, Van Dijk P. Representation and tonotopy in primary versus secondary auditory cortex. Neuroimage 2007; 34: 264–273. Lehman C, Herdener M, Schneider P, et al. Dissociated lateralization of transient and sustained blood oxygen level-dependent signal components in human auditory cortex. Neuroimage 2007; 34: 1637–1642. Lewis JW, Wightman FL, Brefczynski J, et al. Human brain regions in recognizing environmental sounds. Cerebral Cortex 2004; 14: 1008–1021. Liégeois-Chauvel C, Trébuchon-Da Fonseca A, Regis J, et al. AEP in the definition of eloquent cortical areas. In: Rosenow F, Lüders, HO, eds. Handbook of clinical neurophysiology: Presurgical assessment of the epilepsies with clinical neurophysiology and functional imaging, vol. 3. Amsterdam: Elsevier 2004: 305–316. Loui P, Alsop D, Schlaug G. Tone deafness: a new disconnection syndrome? J Neuroscience 2009; 29: 10215–10220. Marques C, Moreno S, Castro SL, et al. Musicians detect pitch violation in foreign language better than nonmusicians: behavioral and electrophysiological evidence. J Cogn Neuroscience 2007; 19: 1453–1463. Miller GF. The mating mind. New York: Doubleday 2000. Musik FE, Baran JA, Shinn JB, et al. Central deafness: an audiological case study. Int J Audiology 2007; 46: 433–441. Nan Y, Knösche TR, Zysset S, et al. Cross-cultural music phrase processing: an fMR study. Human Brain Mapping 2007; 29: 312–328. Nan Y, Knösche TR, Friederici D. Non-musicians’s perception of phrase boundaries in music: a crosscultural ERP study. Biological Psychiatry 2009; 82: 70–81. Patston LL, Kirk IJ, Rolfe MH, et al. The unusual symmetry of musicians: musicians have equilateral interhemispheric transfer for visual information. Neuropsychologia 2007; 45: 2059–2065. Peretz I, Belleville S, Fontaine S. Dissociation between music nad language functions after cerebral resection: A new case of amusia without aphasia. Can J Exp Psychol 1997; 51: 354–368. Peretz I, Blood AJ, Penhune V, et al. Cortical deafness to dissonance. Brain 2001; 124: 928–940. Peretz I, Brattico E, Järvenpää M, Tervaniemi M. The amusic brain: in tune, out of key, and unaware. Brain 2009; 132: 1277–1286. Peretz I, Kolinsky R, Tramo M, et al. Functional dissociations following bilateral lesions of auditory cortex. Brain 1994; 117: 1283–1301. Piccirilli M, Sciarma T, Luzi S. Modularity of music: evidence from a case of pure amusia. J Neurol Neurosurg Psychiatry 2000; 69: 541–545. Pinker S. How the mind works. London: Allen Lane 1997. Pollmann S, Lepsien J, Hughdal K, et al. Auditory target detection in dichotic listening involves the orbitofrontal nad hippocampal paralimbic belts. Cerebral Cortex 2004; 14: 903–913. Riley JA, Cogan GB. A two mechanism model of pure word deafness. University of Maryland Working Papers in Linguistics 2007; 16: 201–221. Ruytjens L, Georgiadis JR, Holstege G, et al. Functional sex differences in human primary auditory cortex. Eur J Nucl Mol Imaging 2007; 34: 2073–2081. Schuppert M, Muenthe TF, Wieringa BM, et al. Receptive amusia: evidence for cross-hemispheric neuronal networks underlying music processing strategies. Brain 2000; 123: 546–559. Spierer L, Bellman-Thiran Y, Maeder P, et al. Hemispheric competence for auditory spatial reprezentation. Brain 2009; 132: 1953–1966. Tzounopoulos T, Kraus N. Learning to encode tuning: mechanisms of plasticity in the auditory brainstem. Neuron 2009; 62: 463–469. Warrier C, Wong P, Zattore R, et al. Relating structure to function: Heschl’s gyrus and acoustic processing. J Neuroscience 2007; 29: 61–69. Weeks R, Horwitz B, Aziz-Sultan A, et al. A positron emission tomographic study of auditory localization in the congenitally blind. J Neurosci 2000; 20: 2654–2672.

Ukázka elektronické knihy, UID: KOS168418


Wilson SJ, Lusher D, Wan CY, et al. The neurocognitive components of pitch processing: insigts from absolute pitch. Cerebral Cortex 2009; 19: 724–732. Zattore RJ, Penhune VB. Spatial localization after excision of human auditory cortex. J. Neuroscience 2001; 21: 6321–6328. Zentner M, Grandjean D, Schere KR. Emotions evoked by the sound of music: characterization, classification, and measurement. Emotion 2008; 8: 494–521.

Ukázka elektronické knihy, UID: KOS168418


Turn static files into dynamic content formats.

Create a flipbook
Lidský mozek (Ukázka, strana 99) by Kosmas-CZ - Issuu