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研究生: 闕廷宇
Chueh, Ting-Yu
論文名稱: 不同運動類型運動員在視覺工作記憶表現之差異:事件關聯電位研究
Exercise mode and visual working memory in athletes: An ERP study
指導教授: 洪聰敏
Hung, Tsung-Min
學位類別: 碩士
Master
系所名稱: 體育學系
Department of Physical Education
論文出版年: 2016
畢業學年度: 104
語文別: 中文
論文頁數: 55
中文關鍵詞: 執行功能身體活動腦波專家
英文關鍵詞: executive function, physical activity, EEG, expert
DOI URL: https://doi.org/10.6345/NTNU202204515
論文種類: 學術論文
相關次數: 點閱:108下載:16
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  • 工作記憶已被證明是重要的認知功能之一,過去研究主要是透過閉鎖性的運動方式 促進其能力,開放性運動環境相較於閉鎖性運動環境較具變化及不可預測性,研究發現 經常從事開放性運動類型的參與者,不僅在視覺工作記憶表現優於非規律運動習慣者, 亦反映在電生理表現上。亦有研究指出開放性運動類型選動員在抑制功能表現優於閉鎖 性運動類型運動員,然而不同運動類型與視覺工作記憶表現及大腦神經歷程之關係目前 尚未有探討。本研究招募了開放性運動類型運動員(OA)、閉鎖性運動類型運動員(CA) 及對照組(C)各16名,平均年齡為20.60歲,探討不同運動類型在視覺工作記憶表現及事 件關聯電位中P3成分之差異。在體適能結果上,多數表現皆優於對照組,而在心肺適能 及柔軟度CA優於OA。在行為表現上,運動員在視覺注意力及工作記憶的反應時間都較 對照組來得短,在不同運動類型並未有差異 (OA=659.49 ms & CA=692.59ms < C=779.88 ms)。在電生理表現上,在視覺工作記憶情境中,運動員相較於對照組有較大的P3振幅, 但在不同運類型並未有差異 (OA=8.68μV&CA=:9.34 >C=5.54μV)。本研究結發現運動員 相較於對照組有較佳的行為及電生理表現,不同運動類型並未有差異,說明不同運動類 型皆有助於視覺工作記憶表現,亦反映在大腦神經歷程上。

    Working memory is a critical component of cognitive function, which has been shown enhanced by exercises, close-skill exercise in particular. Comparing to close-skill exercise, open-skill exercise is characterized by an environment that is constantly changing and more unpredictable. Previous studies have shown that open-skill exercisers performed better than control group (C) on visual working memory (VWM) task. A few studies suggested that open-skill athletes (OA) have better inhibitory ability than close-skill athletes (CA). However, whether the differences can be extended to other executive function components remain unknown. The aims of this study was to examine the relationship between exercise mode and VWM with both behavioral and neuroelectric measurements. Forty-eight participants were recruited (M=20.60y, OA=16, CA=16, C=16). The results showed that both athletic groups have better fitness, VWM and visual attention performance than the control. However, compared to the control, both athletic groups demonstrated larger P3 amplitude only in VWM condition, but not in visual attention condition. The results suggest that regardless of exercise type, exercise is associated with better VWM and neuroelectric performance.

    目 次 口試委員與系主任簽字之論文通過簽名表……………………………………………Ⅰ 論文授權書…………………………………………………………………………………Ⅱ 中文摘要……………………………………………………………………………………Ⅲ 英文摘要……………………………………………………………………………………Ⅳ 謝誌…………………………………………………………………………………………Ⅴ 目次…………………………………………………………………………………………Ⅵ 表次…………………………………………………………………………………………Ⅸ 圖次…………………………………………………………………………………………Ⅸ 第壹章 緒論…………………………………………………………………1 第一節 前言…………………………………………………………………………1 第二節 研究目的……………………………………………………………………5 第三節 研究問題與假設………………………………………………………………5 第四節 研究限制……………………………………………………………………5 第貳章 文獻探討……………………………………………………………6 第一節 健身運動與視覺工作記憶表現之相關研究………………………7 第二節 健身運動與執行功能表現之事件關聯電位相關研究…………………9 第三節 不同運動類型與執行功能表現之相關研究………………………12 第四節 運動員與執行功能表現之相關研究………………………………………15 第參章 研究方法……………………………………………………………19 第一節 實驗參與者……………………………………………………………………19 第二節 研究工具……………………………………………………………………19 第三節 研究流程……………………………………………………………………24 第四節 資料處理……………………………………………………………………24 第五節 統計分析……………………………………………………………………25 第肆章 結果…………………………………………………………………27 第一節 基本資料……………………………………………………………………27 第二節 行為表現……………………………………………………………………29 第三節 電生理表現……………………………………………………………………33 第伍章 討論…………………………………………………………………37 引用文獻……………………………………………………………………42 附件一 參與者基本資料…………………………………………………………………53 附件二 身體活動預備問卷………………………………………………………………55

    引用文獻
    Alvarez, J. A., & Emory, E. (2006). Executive function and the frontal lobes: a meta-analytic review. Neuropsychology Review, 16(1), 17-42.
    Alves, H., Voss, M. W., Boot, W. R., Deslandes, A., Cossich, V., Salles, J. I., & Kramer, A. F. (2013). Perceptual-cognitive expertise in elite volleyball players. Frontiers in psychology, 4(36), 1-9.
    American College of Sports Medicine. (2013). ACSM's health-related physical fitness assessment manual. New York: Lippincott Williams & Wilkins.
    Black, J. E., Isaacs, K. R., Anderson, B. J., Alcantara, A. A., & Greenough, W. T. (1990). Learning causes synaptogenesis, whereas motor activity causes angiogenesis, in cerebellar cortex of adult rats. Proceedings of the National Academy of Sciences, 87(14), 5568-5572.
    Chaddock, L., Erickson, K. I., Prakash, R. S., Kim, J. S., Voss, M. W., VanPatter, M., . . . Hillman, C. H. (2010). A neuroimaging investigation of the association between aerobic fitness, hippocampal volume, and memory performance in preadolescent children. Brain Research, 1358, 172-183.
    Chan, J. S., Wong, A. C., Liu, Y., Yu, J., & Yan, J. H. (2011). Fencing expertise and physical fitness enhance action inhibition. Psychology of Sport and Exercise, 12(5), 509-514.
    Chang, E. C.-H., Chu, C.-H., Karageorghis, C. I., Wang, C.-C., Tsai, J. H.-C., Wang, Y.-S., & Chang, Y.-K. (in press). Relationship between mode of sport training and general cognitive performance. Journal of Sport and Health Science.
    Chang, Y.-K., Huang, C.-J., Chen, K.-F., & Hung, T.-M. (2013). Physical activity and working memory in healthy older adults: An ERP study. Psychophysiology, 50(11), 1174-1182.
    Chang, Y.-K., Tsai, J. H.-C., Wang, C.-C., & Chang, E. C. (2015). Structural differences in basal ganglia of elite running versus martial arts athletes: a diffusion tensor imaging study. Experimental Brain Research, 233(7), 2239-2248.
    Chang, Y.-K., Tsai, Y.-J., Chen, T.-T., & Hung, T.-M. (2013). The impacts of coordinative exercise on executive function in kindergarten children: an ERP study. Experimental Brain Research, 225(2), 187-196.
    Chuang, L.-Y., Hung, H.-Y., Huang, C.-J., Chang, Y.-K., & Hung, T.-M. (2015). A 3-month intervention of Dance Dance Revolution improves interference control in elderly females: a preliminary investigation. Experimental Brain Research, 233(4), 1181-1188.
    Colcombe, S., & Kramer, A. F. (2003). Fitness effects on the cognitive function of older adults a meta-analytic study. Psychological Science, 14(2), 125-130.
    Cotman, C. W., & Berchtold, N. C. (2002). Exercise: a behavioral intervention to enhance brain health and plasticity. Trends in neurosciences, 25(6), 295-301.
    Curtis, C. E., & D'Esposito, M. (2003). Persistent activity in the prefrontal cortex during working memory. Trends in Cognitive Sciences, 7(9), 415-423.
    Dai, C.-T., Chang, Y.-K., Huang, C.-J., & Hung, T.-M. (2013). Exercise mode and executive function in older adults: An ERP study of task-switching. Brain and Cognition, 83(2), 153-162.
    Di Russo, F., Bultrini, A., Brunelli, S., Delussu, A. S., Polidori, L., Taddei, F., . . . Spinelli, D. (2010). Benefits of sports participation for executive function in disabled athletes. Journal of Neurotrauma, 27(12), 2309-2319.
    Di Russo, F., Taddei, F., Apnile, T., & Spinelli, D. (2006). Neural correlates of fast stimulus discrimination and response selection in top-level fencers. Neuroscience Letters, 408(2), 113-118.
    Diamond, A. (2013). Executive functions. Annual Review of Psychology, 64, 135-168.
    Diamond, A. (2015). Effects of physical exercise on executive functions: going beyond simply moving to moving with thought. Annals of Sports Medicine and Research, 2(1), 1011-1016.
    Drollette, E. S., Scudder, M. R., Raine, L. B., Davis Moore, R., Pontifex, M. B., Erickson, K. I., & Hillman, C. H. (2015). The sexual dimorphic association of cardiorespiratory fitness to working memory in children. Developmental Science, 19(1), 90-108.
    Erickson, K. I., Hillman, C. H., & Kramer, A. F. (2015). Physical activity, brain, and cognition. Current Opinion in Behavioral Sciences, 4, 27-32.
    Erickson, K. I., Prakash, R. S., Voss, M. W., Chaddock, L., Hu, L., Morris, K. S., . . . Kramer, A. F. (2009). Aerobic fitness is associated with hippocampal volume in elderly humans. Hippocampus, 19, 1030-1039.
    Erickson, K. I., Voss, M. W., Prakash, R. S., Basak, C., Szabo, A., Chaddock, L., . . . White, S. M. (2011). Exercise training increases size of hippocampus and improves memory. Proceedings of the National Academy of Sciences, 108(7), 3017-3022.
    Etnier, J. L., & Chang, Y.-K. (2009). The effect of physical activity on executive function: a brief commentary on definitions, measurement issues, and the current state of the literature. Journal of Sport and Exercise Psychology(31), 469-483.
    Etnier, J. L., Nowell, P. M., Landers, D. M., & Sibley, B. A. (2006). A meta-regression to examine the relationship between aerobic fitness and cognitive performance. Brain Research Reviews, 52(1), 119-130.
    Fabel, K., Wolf, S. A., Ehninger, D., Babu, H., Leal-Galicia, P., & Kempermann, G. (2009). Additive effects of physical exercise and environmental enrichment on adult hippocampal neurogenesis in mice. Frontiers in Neuroscience, 3, 1-7.
    Faber, I. R., Bustin, P. M., Oosterveld, F. G., Elferink-Gemser, M. T., & Nijhuis-Van Der Sanden, M. W. (2015). Assessing personal talent determinants in young racquet sport players: a systematic review. Journal of Sports Sciences, 34(6), 395-410.
    Gazzaley, A., & Nobre, A. C. (2012). Top-down modulation: bridging selective attention and working memory. Trends in Cognitive Sciences, 16(2), 129-135.
    Guiney, H., & Machado, L. (2013). Benefits of regular aerobic exercise for executive functioning in healthy populations. Psychonomic Bulletin and Review, 20(1), 73-86.
    Hedden, T., & Gabrieli, J. D. (2004). Insights into the ageing mind: A view from cognitive neuroscience. Nature Reviews Neuroscience, 5(2), 87-96.
    Hillman, C. H., Belopolsky, A. V., Snook, E. M., Kramer, A. F., & McAuley, E. (2004). Physical activity and executive control: implications for increased cognitive health during older adulthood. Research Quarterly for Exercise and Sport, 75(2), 176-185.
    Hillman, C. H., Buck, S. M., Themanson, J. R., Pontifex, M. B., & Castelli, D. M. (2009). Aerobic fitness and cognitive development: Event-related brain potential and task performance indices of executive control in preadolescent children. Developmental Psychology, 45(1), 114-129.
    Hillman, C. H., Erickson, K. I., & Kramer, A. F. (2008). Be smart, exercise your heart: exercise effects on brain and cognition. Nature Reviews Neuroscience, 9(1), 58-65.
    Hillman, C. H., Kramer, A. F., Belopolsky, A. V., & Smith, D. P. (2006). A cross-sectional examination of age and physical activity on performance and event-related brain potentials in a task switching paradigm. International Journal of Psychophysiology, 59(1), 30-39.
    Hollingshead, A. B., & Redlich, F. C. (1958). Social class and mental illness: Community study. New York: Wiley.
    Huang, C.-J., Lin, P.-C., Hung, C.-L., Chang, Y.-K., & Hung, T.-M. (2014). Type of physical exercise and inhibitory function in older adults: An event-related potential study. Psychology of Sport and Exercise, 15(2), 205-211.
    Hung, T.-M., Spalding, T. W., Maria, D., & Hatfield, B. D. (2004). Assessment of reactive motor performance with event-related brain potentials: attention processes in elite table tennis players. Journal of Sport and Exercise Psychology, 26(2), 317-337.
    Jacobson, J., & Matthaeus, L. (2014). Athletics and executive functioning: How athletic participation and sport type correlate with cognitive performance. Psychology of Sport and Exercise, 15(5), 521-527.
    Jasper, H. H. (1958). The ten twenty electrode system of the international federation. Electroencephalography and Clinical Neurophysiology, 10, 371-375.
    Kamijo, K., Pontifex, M. B., O'Leary, K. C., Scudder, M. R., Wu, C. T., Castelli, D. M., & Hillman, C. H. (2011). The effects of an afterschool physical activity program on working memory in preadolescent children. Developmental Science, 14(5), 1046-1058.
    Kida, N., Oda, S., & Matsumura, M. (2005). Intensive baseball practice improves the Go/Nogo reaction time, but not the simple reaction time. Cognitive Brain Research, 22(2), 257-264.
    Lees, A. (2003). Science and the major racket sports: a review. Journal of Sports Sciences, 21(9), 707-732.
    Liou, Y. M., Jwo, C. J., Yao, K. G., Chiang, L.-C., & Huang, L.-H. (2008). Selection of appropriate Chinese terms to represent intensity and types of physical activity terms for use in the Taiwan version of IPAQ. Journal of Nursing Research, 16(4), 252-263.
    Löw, A., Rockstroh, B., Cohen, R., Hauk, O., Berg, P., & Maier, W. (1999). Determining working memory from ERP topography. Brain Topography, 12(1), 39-47.
    Luck, S. J., Woodman, G. F., & Vogel, E. K. (2000). Event-related potential studies of attention. Trends in Cognitive Sciences, 4(11), 432-440.
    Mann, D. T., Williams, A. M., Ward, P., & Janelle, C. M. (2007). Perceptual-cognitive expertise in sport: A meta-analysis. Journal of Sport and Exercise Psychology, 29(4), 457-478.
    Marchetti, R., Forte, R., Borzacchini, M., Vazou, S., Tomporowski, P. D., & Pesce, C. (2015). Physical and motor fitness, sport skills and executive function in adolescents: a moderated prediction model. Psychology, 6(14), 1915-1929.
    Miller, E. K., & Cohen, J. D. (2001). An integrative theory of prefrontal cortex function. Annual Review of Neuroscience, 24(1), 167-202.
    Müller, N. G., & Knight, R. T. (2002). Age-related changes in fronto-parietal networks during spatial memory: An ERP study. Cognitive Brain Research, 13(2), 221-234.
    Nagamatsu, L. S., Flicker, L., Kramer, A. F., Voss, M. W., Erickson, K. I., Hsu, C. L., & Liu-Ambrose, T. (2014). Exercise is medicine, for the body and the brain. British Journal of Sports Medicine, 48(12), 943-944.
    Nakamoto, H., & Mori, S. (2008a). Effects of stimulus–response compatibility in mediating expert performance in baseball players. Brain Research, 1189, 179-188.
    Nakamoto, H., & Mori, S. (2008b). Sport-specific decision-maklng in a Go/Nogo reaction task: Difference among nonathletes and baseball and basketball players. Perceptual and Motor skills, 106(1), 163-170.
    Niederer, I., Kriemler, S., Gut, J., Hartmann, T., Schindler, C., Barral, J., & Puder, J. J. (2011). Relationship of aerobic fitness and motor skills with memory and attention in preschoolers (Ballabeina): A cross-sectional and longitudinal study. Bio Med Central, 11, 1-9.
    Niemann, C., Godde, B., & Voelcker-Rehage, C. (2014). Not only cardiovascular, but also coordinative exercise increases hippocampal volume in older adults. Frontiers in Aging Neuroscience, 6, 1-12.
    Oldfield, R. C. (1971). The assessment and analysis of handedness: The Edinburgh inventory. Neuropsychologia, 9(1), 97-113.
    Padilla, C., Perez, L., & Andres, P. (2014). Chronic exercise keeps working memory and inhibitory capacities fit. Frontiers in Behavioral Neuroscience, 8, 1-10.
    Pauole, K., Madole, K., Garhammer, J., Lacourse, M., & Rozenek, R. (2000). Reliability and validity of the T-test as a measure of agility, leg power, and leg speed in college-aged men and women. The Journal of Strength & Conditioning Research, 14(4), 443-450.
    Polich, J. (2007). Updating P300: an integrative theory of P3a and P3b. Clinical Neurophysiology, 118(10), 2128-2148.
    Polich, J., & Kok, A. (1995). Cognitive and biological determinants of P300: An integrative review. Biological Psychology, 41(2), 103-146.
    Pontifex, M. B., Raine, L. B., Johnson, C. R., Chaddock, L., Voss, M. W., Cohen, N. J., . . . Hillman, C. H. (2011). Cardiorespiratory fitness and the flexible modulation of cognitive control in preadolescent children. Journal of Cognitive Neuroscience, 23(6), 1332-1345.
    Repovs, G., & Baddeley, A. (2006). The multi-component model of working memory: explorations in experimental cognitive psychology. Neuroscience, 139(1), 5-21.
    Reuter-Lorenz, P. A., & Cappell, K. A. (2008). Neurocognitive aging and the compensation hypothesis. Current Directions in Psychological Science, 17(3), 177-182.
    Schmidt, R. A., & Wrisberg, C. A. (2008). Motor learning and performance: A situation-based learning approach. Champaign, IL: Human Kinetics.
    Scisco, J. L., Leynes, P. A., & Kang, J. (2008). Cardiovascular fitness and executive control during task-switching: An ERP study. International Journal of Psychophysiology, 69(1), 52-60.
    Scudder, M. R., Lambourne, K., Drollette, E. S., Herrmann, S. D., Washburn, R. A., Donnelly, J. E., & Hillman, C. H. (2014). Aerobic capacity and cognitive control in elementary school-age children. Medicine and Science in Sports and Exercise, 46(5), 1025-1035.
    Senkowski, D., Molholm, S., Gomez-Ramirez, M., & Foxe, J. J. (2006). Oscillatory beta activity predicts response speed during a multisensory audiovisual reaction time task: a high-density electrical mapping study. Cerebral Cortex, 16(11), 1556-1565.
    Smith, P. J., Blumenthal, J. A., Hoffman, B. M., Cooper, H., Strauman, T. A., Welsh-Bohmer, K., . . . Sherwood, A. (2010). Aerobic exercise and neurocognitive performance: A meta-analytic review of randomized controlled trials. Psychosomatic Medicine, 72(3), 239-252.
    Stroth, S., Hille, K., Spitzer, M., & Reinhardt, R. (2009). Aerobic endurance exercise benefits memory and affect in young adults. Neuropsychol Rehabil, 19(2), 223-243.
    Stroth, S., Kubesch, S., Dieterle, K., Ruchsow, M., Heim, R., & Kiefer, M. (2009). Physical fitness, but not acute exercise modulates event-related potential indices for executive control in healthy adolescents. Brain Research, 1269, 114-124.
    Styles, I., Raven, J. C., & Raven, M. (1998). Raven's Progressive Matrices: SPM Plus Sets AE. San Antonio: Harcourt Assessment.
    Szabo, A. N., McAuley, E., Erickson, K. I., Voss, M., Prakash, R. S., Mailey, E. L., . . . Kramer, A. F. (2011). Cardiorespiratory fitness, hippocampal volume, and frequency of forgetting in older adults. Neuropsychology, 25(5), 545-553.
    Taddei, F., Bultrini, A., Spinelli, D., & Di Russo, F. (2012). Neural correlates of attentional and executive processing in middle-age fencers. Medicine and Science in Sports and Exercise, 44(6), 1057-1066.
    Tsai, C.-L., & Wang, W.-L. (2015). Exercise-mode-related changes in task-switching performance in the elderly. Frontiers in Behavioral Neuroscience, 9, 1-11.
    van der Niet, A. G., Smith, J., Scherder, E. J., Oosterlaan, J., Hartman, E., & Visscher, C. (2014). Associations between daily physical activity and executive functioning in primary school-aged children. Journal of Science and Medicine in Sport, 18(6), 673-677.
    Verburgh, L., Königs, M., Scherder, E. J., & Oosterlaan, J. (2013). Physical exercise and executive functions in preadolescent children, adolescents and young adults: a meta-analysis. British Journal of Sports Medicine, 48(12), 973-979.
    Verburgh, L., Scherder, E. J., van Lange, P., & Oosterlaan, J. (2014). Executive functioning in highly talented soccer players. PLoS One, 9(3), e91254.
    Vestberg, T., Gustafson, R., Maurex, L., Ingvar, M., & Petrovic, P. (2012). Executive functions predict the success of top-soccer players. PLoS One, 7(4), e34731.
    Voelcker-Rehage, C., Godde, B., & Staudinger, U. M. (2011). Cardiovascular and coordination training differentially improve cognitive performance and neural processing in older adults. Frontiers in Human Neuroscience, 5, 1-12.
    Voelcker-Rehage, C., & Niemann, C. (2013). Structural and functional brain changes related to different types of physical activity across the life span. Neuroscience & Biobehavioral Reviews, 37(9), 2268-2295.
    Voelcker‐Rehage, C., Godde, B., & Staudinger, U. M. (2010). Physical and motor fitness are both related to cognition in old age. European Journal of Neuroscience, 31(1), 167-176.
    Voss, M. W., Kramer, A. F., Basak, C., Prakash, R. S., & Roberts, B. (2010). Are expert athletes ‘expert’in the cognitive laboratory? A meta‐analytic review of cognition and sport expertise. Applied Cognitive Psychology, 24(6), 812-826.
    Wang, C.-H., Chang, C.-C., Liang, Y.-M., Shih, C.-M., Chiu, W.-S., Tseng, P., . . . Juan, C.-H. (2013). Open vs. closed skill sports and the modulation of inhibitory control. PLoS One, 8(2), e55773.
    Wang, C.-H., Chang, C.-C., Liang, Y.-M., Shih, C.-M., Muggleton, N. G., & Juan, C.-H. (2013). Temporal preparation in athletes: a comparison of tennis players and swimmers with sedentary controls. Journal of Motor Behavior, 45(1), 55-63.
    Wang, C.-H., & Tsai, C.-L. (2016). Physical activity is associated with greater visuospatial cognitive functioning regardless of the level of cognitive load in elderly adults. Journal of Sport & Exercise Psychology, 38(1), 69-81.
    Wang, C.-H., Tsai, C.-L., Tu, K.-C., Muggleton, N. G., Juan, C.-H., & Liang, W.-K. (2015). Modulation of brain oscillations during fundamental visuo-spatial processing: A comparison between female collegiate badminton players and sedentary controls. Psychology of Sport and Exercise, 16, 121-129.
    Wang, C. H., Tsai, C. L., Tseng, P., Yang, A. C., Lo, M. T., Peng, C. K., . . . Liang, W. K. (2014). The association of physical activity to neural adaptability during visuo-spatial processing in healthy elderly adults: A multiscale entropy analysis. Brain and Cognition, 92, 73-83.
    Ward, L. M. (2003). Synchronous neural oscillations and cognitive processes. Trends in Cognitive Sciences, 7(12), 553-559.
    Weinstein, A. M., Voss, M. W., Prakash, R. S., Chaddock, L., Szabo, A., White, S. M., . . . Kramer, A. F. (2012). The association between aerobic fitness and executive function is mediated by prefrontal cortex volume. Brain, Behavior, and Immunity, 26(5), 811-819.
    Yarrow, K., Brown, P., & Krakauer, J. W. (2009). Inside the brain of an elite athlete: the neural processes that support high achievement in sports. Nature Reviews Neuroscience, 10(8), 585-596.

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