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Elektroencefalografické koreláty pohybového chování a výkonnostní zátěže (Ukázka, strana 99)

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Reichle, M. E., MacLoed, A. M., Snyder, A. Z., Powers, W. J., Gusnard, D. A., & Shulman, G. L. (2001). A default mode of brain function. Proc Natl Acad Sci USA, 98(2), 676–682. Robertson, C. V., & Marino, F. E. (2015). Prefrontal and motor cortex EEG responses and their relationship to ventilatory thresholds during exhaustive incremental exercise. Eur J Appl Physiol, 115, 1939–1948. Ross, E. Z., Middleton, N., Shave, R., George, K., & Nowicky, A. (2007). Corticomotor excitability contributes to neuromuscular fatigue following marathon running in man. Exp Physiol, 92, 417–426. Sadato, N., Nakamura, S., Oohashi, T., et al. (1998). Neural networks for generation and suppression of alpha rhythm: a PET study. NeuroReport, 9, 893–897. Salek-Haddadi, A., Friston, K. J., Lemieux, L., & Fish, D. R. (2003). Studying spontaneous EEG activity with fMRI. Brain Res Brain Res Rev, 43, 110–133. Schneider, M., Graham, D., Grant. A., King. P., & Cooper, D. (2009). Regional brain activation and affective response to physical activity among healthy adolescents. Biol Psychol, 82(3), 246–252. Schneider, S., Askew, C. D., Abel, T., Mierau, A., & Struder, H. K. (2010). Brain and exercise: a first approach using electro tomography. Med Sci Sports Exerc, 42(3), 600–607. Schneider, S., Askew, C. D., Diehl, J., et al. (2009a). EEG activity and moods in health oriented runners after different exercise intensities. Physiol Behav, 96, 709–716. Schneider, S., Brümmer, V., Abel, T., Askew, C. D., & Strüder, H. K. (2009b). Changes in brain cortical activity measured by EEG are related to individual exercise preference. Physiol Behav, 98, 447–452. Schneider, S., Rouffet, D. M., Billaut, F., & Strüder, H. K. (2013). Cortical current density oscillations in the motor cortex are correlated with muscular activity during pedaling exercise. Neuroscience, 228, 309–314. Secher, N. H., & Quistroff, B. (2005). Brain glucose and lactate uptake during exhaustive exercise. J Physiol, 3, 568. Shibata, M., Shimura, M., Shibata, S., Wakamura, T., & Moritani, T. (1997). Determination of the optimal walking speed for neural relaxation in healthy elderly women using electromyogram and electroencephalogram analyses. Eur J Appl Physiol Occup Physiol, 75, 206–211. Smith, C. M., Wright, M. J., Hansell, N. K., Geffen, G. M., & Martin, N.G. (2006). Genetic Variation of individual Alpha Frequency (IAF) and Alpha Power in a Large Adolescent Twin Sample. Int J Psychophysiol, 61(2), 235–243. Solis-Ortiz, S., Guevara, M. A., & Corsi-Cabrera, M. (2004). Performance in a Test Demanding Prefrontal Functions Is Favored by Early Lureal Phase Progesteron: An Electroencephalografic Study. Psychoneuroendocrinology, 27, 1047–1057.

Ukázka elektronické knihy, UID: KOS232784


99

Steffens, D. C., Snowden, M., Ming-Yu, F., & Hendrie, H. (2006). Cognitive impairement and depression outcomes in the IMPACT study. Am J Ger Psych, 14, 401–409. Steriade, M., & Timofeev, I. (2003). Neuronal Plasticity in Thalamocortical Networks during Sleep and Waking Oscillations. Neuron, 37, 563–576. Stroganova, T. A., Orekhova, E. V., & Posikera, I. N. (1999). EEG Alpha Rhythm in Infants. Clin Neurophysiol, 110, 997–1012. Sun, F., Wang, J., Liu, G., et al. (1984). An analysis on EEg power spectrum and coheerence during quiet state in QiGong. Acta Psychologiga Sinica, 17(4), 76–81. Takahashi, T., Murata, T., Hamada, T., et al. (2005). Changes in EEG and autonomic nervous activity during meditation and their association with personality traits. Int J Psychophysiol, 55(2), 199–207. Talairach, J., & Tournoux, P. (1988). Co-planar stereotaxic atlas of the human brain. Stuttgart: Georg Thieme. Tinguely, G., Finelli, L. A., Landolt, H. P., Borbély, A. A., & Achermann, P. (2006). Functional EEG topography in sleep and walking: State- dependent and state-independent features. NeuroImage, 32, 283–292. Tops, M., Peer, J. M. van, Wester, A. E., Wijers, A. A., & Korf, J. (2006). State-dependent regulation of cortical activity by cortisol: An EEG study. Neurosci Letters, 404(2), 39–43. Torsvall, L., & Akerstedt, T. (1987). Sleepiness on the job: Continuously measured EEG changes in train drivers. Electroencephalogr Clin Neurophysiol, 66, 502–511. Toscani, M., Marzi, T., Righi, S., Viggiano, M. P., & Baldassi, S. (2010). Alpha waves: A neural signature of visual suppression. Exp Brain Reseach, 207, 213–219. Travis, F. (2001). Autonomic and EEG paterns distinguisch transcending from other experiences during transcendental meditation practice. Int J Psychophysiol, 42(1), 1–9. Tsai, J. F., Jou, S. H., Cho, W. Ch., & Lin, Ch. M. (2013). Electroencephalography when meditation advances: a case-based time-series analysis. Cogn Process, 14, 371–376. Tyvaert, L., Levan, P., Grova, C., Dubeau, F., & Gotman, J. (2008). Effects of fluctuating physiological rhythms during prolonged EEG-fMRI studies. Clin Neurophysiol, 119, 2762–2774. Uusberg, A., Uibo, H., Kreegipuu, K., & Allik, J. (2013). EEG alpha and cortical inhibition in affective attention. Int J Psychophysiol, 89, 26–36. Vaynman, S., Ying, Z., Wu, A., & Gomez-Finilla, F. (2006). Coupling energy metabolism with a mechanism to support brain-derived neurotrophic factor-mediated synaptic plasticity. Neurosci, 139, 1221–1234. Vojtěch, Z., et al. (2005a). Atlas elektroencefalografie dospělých I. Praha: Triton. Vojtěch, Z. (2005b). EEG v epileptologii dospělých. Praha: Grada.

Ukázka elektronické knihy, UID: KOS232784


100

Woo, M., Kim, S., Kim, J., Petruzzello, S. J., & Hatfield, B. D.(2009). Examining the exercise-affect dose-response relationship: does duration influence frontal EEG asymmetry? Int J Psycholophysiol, 72, 166–72. Zhang, J. Z., Zhao, J., & He, Q. N. (1988). EEG findings during special psychical state (Qi Gong state) by means of compressed spectral array and topographic mapping. Comput Biol Med, 18(6), 455–463. Zumsteg, D., Andrade, D. M., & Wennberg, R. A. (2006). Source localization of small sharp spikes: low resolution electromagnetic tomography (LORETA) reveals two distinct cortical sources. Clin Neurophysiol, 117(10), 1380–1387.

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