簡易檢索 / 詳目顯示

研究生: 廖智千
Jhih-Cian Liao
論文名稱: 急性登階運動對學前兒童反應時間與事件關聯電位之影響
The effect of acute step exercise on reaction time and Event-related potentials in preschool children
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: 2012
畢業學年度: 100
語文別: 中文
論文頁數: 73
中文關鍵詞: 學前兒童急性運動事件關聯電位
英文關鍵詞: Preschool children, Acute exercise, Event-Related Potential
論文種類: 學術論文
相關次數: 點閱:159下載:9
分享至:
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報
  • 兒童是國家未來的棟樑。近年來,身體活動對兒童大腦認知表現的影響引起廣泛的興趣。學齡前階段是兒童大腦神經認知功能發展之關鍵階段,然而過去研究鮮少探討急性運動對學前兒童大腦神經認知功能影響,因此本研究目的在於探討急性登階運動對學前兒童大腦認知功能的影響。本研究招募20位學前兒童,其中10位為實驗組,另10位控制組。實驗操弄為實驗組兒童進行10分鐘登階運動,控制組兒童則原地休息10分鐘。並收集兩組兒童實驗操弄前後執行Flanker作業時之反應時間與事件關聯電位。統計方法以T考驗檢測兩組兒童在反應時間、事件關聯電位N100與P300之潛伏時間與振幅之差異。結果發現,急性登階運動介入之後,實驗組兒童在需執行控制功能需求下之P300潛伏時間上短於控制組兒童。表示急性運動對於學前兒童在大腦神經認知功能方面有所影響。

    關鍵詞:學前兒童、急性運動、事件關聯電位

    Children will be the backbone of our country in the future. The interest in the effect of physical activity on children’s brain and cognition has grown in recent years. Preschool period is critical for children’s neuro-cognitive development. However, little is known about the effects of acute exercise on neuro-cognitive function during preschool age. As such, the purpose of this study was to investigate the effect of acute step exercise on preschool children’s neuro-cognition. Twenty preschool children participated and were divided into experimental group and control group (10 children each group). The experimental group completed 10 min of acute step exercise, whilst the control group took a 10 min rest. The reaction time and event-related potential during the Flanker test were recorded before and after the intervention. A series of T-test were employed on the reaction time, N100 latency, N100 amplitude, P300 latency, and P300 amplitude to examine the difference between the two groups. The result indicated that after acute exercise, the P300 latency of experimental group is shorter than that of control group. The findings support the notion that acute exercise has a positive impact on neuro-cognitive function of preschool children.

    中文摘要…………………………………..…………………….……………………………i 英文摘要……………………………………………………………..……………………….ii 謝誌………………………………………………………………………….………………iii 目次………………………………………………………………….…………...……………iv 圖次…………………………………………………………………………………..………vi 表次…………………………………………………………………................……….……vii 第壹章 緒論…...………………………………………………………………1 第一節 問題背景…………………………………….………………………………....1 第二節 研究目的…...…………………………………………………………………5 第三節 研究問題與假設……………………………………………………………….6 第四節 研究範圍與限制…...……………………………………………………….….6 第五節 名詞解釋…...………………………………………………………………..…7 第貳章 文獻探討…...…………………………………..……………………8 第一節 學前兒童認知與大腦神經發展之關係………………………………………8 第二節 學前兒童身體動作發展與認知發展之關係…………………………..……14 第三節 身體活動促進大腦神經認知功能之生、心理機轉….………………………18 第四節 急性運動對認知表現影響之相關研究…...………………..…..…………22 第五節 大腦認知功能與事件關聯電位之關係…...……………..…………..………24 第六節 文章總結…...…………………………………………………………………27 第参章 研究方法與步驟…...…………………………..……………………29 第一節 研究架構…..………………………………………….……………………29 第二節 研究對象…………………………..……………………………………….30 第三節 研究工具….……………………………………………………………….30 第四節 實驗設計…...………………..…..……………………………………………31 第五節 實驗流程………………………………...……………..…………..………32 第六節 資料處理與統計分析…...……………………………………………………35 第肆章 結果與討論…...…………………………..……………………37 第一節 結果…..………………………………………….…………………………37 第二節 討論……….………………………..……………………………………….57 第伍章 結論與建議…...…………………………..……………………62 第一節 結論………..………………………………………….……………………62 第二節 建議………..……………………..……………………………………….63 參考文獻 …...…………………………..……………………………………64

    中華民國內政部戶政司(2008)。歷年人口年增加及自然增加率、粗出生率、粗死亡率、毛及淨繁殖率暨嬰兒出生時母親平均年齡。台北市:內政部。

    方進隆(1997)。健康體能的理論與實際(二版)。臺北:漢文書店。

    李丹(1989)。兒童發展。台北市:五南圖書出版社。

    沈淵瑤(2002)。認識小兒科神經系統疾病。台北市:華成圖書。

    林寶貴、吳純純 (1998)。特殊兒童知覺動作發展教材教具。台北市:台北市立師範學院特教中心。

    洪聰敏(1998)。腦波:探討運動及身體活動心理學的另一扇視窗。中華體育,
    44,63-74。

    洪蘭譯 (2001)。發展的認知神經科學。台北市:信誼基金出版社。

    高麗芷(1994)。感覺統合。台北市:信誼基金出版社。

    張子芳譯(1983)。小腦海中的世界。台北市:允晨出版社。

    郭靜晃、陳正乾譯(1998)。幼兒教育-適合三~八歲幼兒的教學方法。

    游淑芬等 (2004)。嬰幼兒發展與保育。台北:群英。

    陳淑琦 (1998)。幼兒身體動作發展與保育。台北:國立空中大學。

    陳玟瑾 (2007)。學前男童身體活動能力與反應時間即事件關聯電位之關係。未出版碩士論文,台北市立體育學院,台北市。

    黃慧真譯(1994)。認知過程的原理。台北市:心理出版社。

    趙思盈 (2008)。運動介入對學前兒童反應時間與事件關聯電位之影響。未出版
    碩士論文,台北市立體育學院,台北市。

    潘孝桂 (2000)。短跑選手與非運動員之聽覺反應時間與事件關聯電位比較。未出版碩士論文,台灣師範大學體育研究所,台北市。

    蔡欣玲等 (1997)。當代人類發展學。台北:滙華。

    韓濟生(1996)。神經科學綱要。台中市:昭人出版社。

    龐麗娟、李輝 (1995)。嬰兒心理學。台北市。五南圖書出版社。

    羅美惠譯(1999)。優質大腦。台北市:先覺出版社。

    Amso, D., & Casey, B. J. (2006). Beyond what develops when. Current Directions in Psychological Science, 15(1), 24–29.

    Bharath, B., Gangadhar, N., & Janakiramaiah, N. (2000). P300 in family studies of schizophrenia: review and critique. International Journal of Psychophysiology, 38, 43–54.

    Black, J., Greenough, W., Anderson, B., & Isaacs, K. (1987). Environment and aging brain. Canadian Journal Psychology, 41, 111-130.

    Black, J., Isaacs, K., & Anderson, B. (1990). Learning causes synaptogenesis, whereas motor activity causes angiogenesis in cerebellar cortex of adult rats. Process National Academy Science, 87, 5568-5572.

    Blumenthal, J., Jeffries, N. O., Castellanos, F. X., Liu, H., & Zijdenbos, A., et al. (1999). Brain development during childhood and adolescence: A longitudinal MRI study. Nature Neuroscience, 2(10), 861–863.

    Bornstein, M. H., & Arterberry, M. E. (1999). Perceptual development. In M. H. Bornstein & M. E. Lamb (Eds.), Development psychology: An advanced textbook(4th ed., pp. 231-274). Mahwah, NJ: Erlbaum.

    Bramon, E. McDonald, C. Croft, R. J. Landau, S. Filbey, F. Gruzelier, J. H., et al. (2005). Is the P300 wave an endophenotype for schizophrenia? A meta-analysis and a family study. NeuroImage 27: 960–968.

    Bredekamp, S., & Copple, C. (1997). Developmentally appropriate practice in early childhood programs. Washington, DC: NAEYC.

    Buckworth, J., & Dishman, R.K. (2002). Exercise psychology. Champaign, IL: Human Kinetics.

    Buddle, H., Voelcker-Rehage, C., Pietrabyk-Kendziorra, S., Ribeiro, P., & Tidow, G. (2008). Acute coordinative exercise improves attentional performance in adolescents. Neuroscience letters, 441, 219–223.

    Cacioppo, J. T., & Tassinary, L. G. (1990). Principles of psychophysiology: Physical, social, and inferential elements. Cambridge, New York: Cambridge University Press.

    Castren, E., Berninger, B., Leingartner, A., & Lindholm, D. (1998). Regulation of brain-derived neurotrophic factor mRNA levels in hippocampus by neuronal activity. Progress in brain research, 117, 57-64.

    Casey, B.J., Amso, D., & Davidson, M.C. (2005). Learning about learning and development with neuroimaging. In M. Johnson & Y. Munakata (Eds), Attention and performance XXI: Processes of change in brain and cognitive
    development. Cambridge, MA: MIT Press.

    Chaouloff, F. (1989). Physical exercise and brain monoamines: a review. Acta physiologica Scandinavica, 137, 1-13.

    Chmura , J. , Nazar , K. , & Kaciuba-Uscilko, H. ( 1994 ). Choice reaction time during graded exercise in relation to blood lactate and plasma catecholamine thresholds. International Journal of Sports Medicine, 15, 172 – 176 .

    Churchill, J. D., Galvez, R., Colcombe, S., Swain, R. A., Kramer, A. F., & Greenough, W. T. (2002). Exercise, experience and the aging brain. Neurobiology of Aging, 23, 941-955.

    Coull, J. T. (1998). Neural correlates of attention and arousal: Insights from electrophysiology, functional neuroimaging and psychopharmacology. Progress in Neurobiology. 55 (4): 343–361.

    Croce, R., & Horvat, M. (1995). Exercise-induced activation and cognitive processing in individuals with mental retardation. Medicine and SportScience, 40(1), 144-151.

    Davis, C. L., Tomporowski, P. D., Boyle, C. A., Waller, J. L., Miller, P. H., Naglieri, J. A., et al. (2007). Effects of aerobic exercise on overweight children's cognitive functioning: A randomized controlled trial. Research Quarterly for Exercise and Sport, 78(5), 510-519.
    Diamond, A. (2000). Close interrelation of motor development and cognitive development and of the cerebellum and prefrontal cortex. Child Development, 71, 44-56.

    Ellemberg, D., & St-Louis-Descheˆnes, M. (2009). The effect of acute physical exercise on cognitive function during development. Psychology of Sport and Exercise,11, 122-126.

    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, 119.

    Eriksen, B. A., & Eriksen, C. E. (1974). Effects of noise letters in the identification of target letters in a non-search task. Perception and Psychophysics,16, 143–149.

    Fordyce, D., & Farrar, R. (1991). Enhancement of spatial learning in F344 rats by physical activity and related learning-associated alterations in hippocampal and cortical cholinergic functioning. Behavioural Brain Research, 46, 123-133.

    Frank, M., & Peter, S. (1994). Anatomical evidence for cerebellar and basal ganglia involvement in higher cognitive function. Science, 266, 458-461.

    Gallahue, D. L. (1987). Developmental physical education for today’s elementary school children. New York: Macmillan.

    Garvey, C. (1977). Play. Cambridge, MA: Harvard University Press. Elementary School Guidance and Counseling, 28(2), 133 -145.

    Giedd, J. N. (2004). Structural magnetic resonance imaging of the adolescent brain. Annals of the New York Academy of Science, 102, 77–85.

    Gogtay, N., Giedd, J. N., Lusk, L., Hayashi, K. M., Greenstein, D., Vaituzis, A. C. et al. (2004). Dynamic mapping of human cortical development during childhood through early adulthood. Proceedings of the National Academy of Science USA, 101, 8174–8179.

    Coch, D., Sanders, L., & Neville, H. (2005). An event-related potential study of selective auditory attention in children and adults. Journal of cognitive neuroscience, 17, 605–622.
    Gogtay, N., Giedd, J. N., Lusk, L., Hayashi, K. M., Greenstein, D., & Vaituzis, A. C. (2004). Dynamic mapping of human cortical development during childhood through early adulthood. Proceedings of the National Academy of Science, 101, 8174–8179.

    Gold, P. E., Zornetzer, S. F. (1983). The mnemon and its juices: neuromodulation of memory processes. Behavioral and neural biology, 38, 151–189.

    Gomez-Pinilla, F., So, V., & Kesslak, P. (1998) Spatial learning and physical activity contribute to the induction of fibroblast growth factor: neural substrates for increased cognition associated with exercise. Neuroscience, 85, 53-61.

    Gomez-Pinilla, F., Ying, Z., Opazo, P., Roy, R., & Edgerton, V. (2001) Differential regulation by exercise of BDNF and NT-3 in rat spinal cord and skeletal muscle. European Journal of Neuroscience, 13, 1078-1084.

    Gruzelier, A. Richardson, D. Liddiard, S. Cheema, B. Puri, C. McEvedy & Rippon, G. (1999). Opposite patterns of P300 asymmetry in schizophrenia are syndrome related. International Journal of Psychophysiology, 34 (3), 275–282.

    Gruzelier, J. H. (2003). Theory, methods and new directions in the psychophysiology of the schizophrenic process and schizotypy. International Journal of Psychophysiology, 48 (2), 221–245.

    Hansen, J., Hillyard, S., (1980). Endogenous brain potentials associated with selective auditory attention. Electroencephalography and Clinical Neurophysiology, 49, 277–290.

    Hatfield, B. D., & Landers, D. A. (1983). Psychophysiology-a new direction for sport psychology. Journal of Sport Psychology, 5, 243-259.

    Hatfield, B. D., & Landers, D. A. (1987). Psychophysiology in exercise and sport research: an overview. Exercise Sports Science Review, 15, 351-386.

    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, 176–185.

    Hillman, C. H., Buck, S. M., Themanson, J. T., 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, 114–129.

    Hillman, C. H., Castelli, D. M., & Buck, S. M. (2005). Aerobic fitness and neurocognitive function in healthy preadolescent children. Medicine & Science in Sports & Exercise, 37, 1967–1974.

    Hillman, C. H., Motl, R. W., Pontifex, M. B., Posthuma, D., Stubbe, J. H., Boomsma, D. I., & de Geus, E. J. C. (2006). Physical activity and cognitive function in a cross-section of younger and older community-dwelling individuals. Health Psychology, 25, 678–687.

    Hillman, C. H., Pontifex, M. B., Raine, L. B., Castelli, D. M., Hall, E. E., & Kramer, A. F. (2009). The effect of acute treadmill walking on cognitive control and academic achievement in preadolescent children. Neuroscience, 159, 1044–1054.

    Hillman, C. H, Snook, E. M, Jerome, G. J. (2003). Acute cardiovascular exercise and executive control function. International Journal of Psychophysiology, 48, 307-314.

    Hinkle, J. S., Tuckman, B. W., & Sampson, J. P. (1993). The psychology, physiology, and the creativity of middle school aerobic exercises. Elementary School Guidance and Counseling, 28, 133-145.

    Ide, K., Secher, N. H. (2000). Cerebral blood flow and metabolism during exercise. Progress in Neurobiology, 61, 397–414.

    Jeon, Y. W. & Polich, J. (2003). Meta-analysis of P300 and schizophrenia: patients, paradigms, and practical implications, Psychophysiology, 40, 684–701.

    Kamijo , K. , Nishihira , Y. , Hatta , A. , Kaneda , T. , Kida , T. , Higashiura , T. , Kuroiwa , K. ( 2004 ). Changes in arousal level by differential exercise intensity . Clinical Neurophysiology, 115, 2693–2698 .

    Kamijo, K., Nishihira, Y., Higashiura, T., & Kuroiwa, K. ( 2007 ). The interactive effect of exercise intensity and task difficulty on human cognitive processing . International Journal of Psychophysiology, 65, 114–121.

    Keita Kamijo, Yoichi Hayashi, Tomoaki Sakai, Tatsuhisa Yahiro, Kiyoji Tanaka, & Yoshiaki Nishihira. (2009). Acute effects of aerobic exercise on cognitive function in older adults. Journal of Gerontology Psychological Sciences, 64, 356–363.

    Kutas, M., McCarthy, G., & Donchin, E. (1977). Augmenting mental chronometry: the P300 as a measure of stimulus evaluation time. Science, 197, 792-795.

    Landers, D. M. & Arent, S. M. (2001). Physical activity and mental health. In R. N. Singer, H. A. Hausenblas, & C. M. Janelle (Eds.), Handbook of Sport Psychology (2nd Ed., pp. 740-765). New York: JohnWiley & Sons.

    Liao, J. C., Hung, C. L., Huang, J. C., & Hung, T. M. (2009). Physical Fitness and Neurocognitive Function in Healthy Preschool Children. The 12th International Society of Sport Psychology, Morocco, Marrakesh.

    MacRae, P. G. (1989). Physical activity and central nervous system integrity. In Spirduso W.W., Eckert H.M., eds. Physical activity and aging. Champaign. IL, Human Kinetics, 69–77.

    McGimsey, J. F., & Favell, J. E. (1988). The effects of increased physical exercise on disruptive behavior in retarded persons. Journal of Autism and Developmental Disorders, 18, 167-179.

    Molloy, G. N. (1989). Chemicals, exercise and hyperactivity: A short report International Journal of Disability, Development and Education, 36(1), 57-61.

    Moltein, R., Vaynman, S., & Gomez-Pinilla, F. (2004). Exercise reverse the harmful effects of consumption of a high-fat diet on synaptic and behavioral plasticity associated to the action of brain-derived neurotrophic factor. Neuroscience, 123, 429-440.

    Moraine, J. J., Lamotte M., Berré J., Niset G., Leduc A., Naeije R. (1993). Relationship of middle cerebral artery blood flow velocity to intensity during dynamic exercise in normal subjects. European Journal of Applied Physiology and Occupational Physiology, 67, 35–38.

    Morgan, W. P. (1984). Affective beneficence of vigorous physical activity. Medicine and Science in Sports and Exercise, 17(1), 94-100.

    Netz, Y., & Jacob, T. (1994). Exercise and the psychological state of institutionalized elderly: a review. Perceptual and Motor Skills, 79, 1107-1118.

    Nibuya, M., Nestler, E., & Duman, R. (1996). Chronic antidepressant administration increases the expression of cAMP response element binding protein in rat hippocampus. The Journal of Neuroscience, 16(7), 2365-2372.

    Poehlman, E. T., Gardner, A. W., & Goran, M. I. (1992). Influence of endurance training on energy intake, norepinephrine kinetics, and metabolic rate in older individuals. Metabolism, 41, 941–948.

    Poest, E., Williams, J. R., Witt, D. D., & Atwood, M. E. (1990). Challenge me to move: Large muscle development in young children. Young Children, 45, 4-10.

    Pontifex, M. B., Hillman, C. H. (2007). Neuroelectric and behavioral indices of interference control during acute cycling. Clinical Neurophysiology, 118, 570–580.

    Pontifex M. B., Hillman C. H., & Polich, J. (2009). Age, physical fitness, and attention: P3a and P3b. Psychophysiology, 46, 379–387.

    Poo, M. (2001). Neurotrophins as a synatic modulator. National Review Neuroscience, 2, 24-32.

    Powers, S., Thibadeau, S., & Rose, K. (1992). Antecedent exercise and its effects on self-stimulation. Behavioral Residential Treatment 7, 15-22.

    Radak, Z., Kaneko, T., Tahara, S., Nakamoto, H., Pucsok, J., Sasvari, M., Nyakas, C., & Goto, S. (2001). Regular exercise improves cognitive function and decreases oxidative damage in rat brain. Neurochemistry International, 38, 17-23.

    Radosevich P. M., Nash J. A., Lacy D. B., O’Donovan C., Williams P.E., Abumrad N. N. (1989). Effects of low- and high-intensity exercise on plasma and cerebrospinal fluid levels of ir-betaendorphin, ACTH, cortisol, norepinephrine and glucose in the conscious dog. Brain research, 498, 89–98.

    Raine, A., Venables, P., Dalais, C., Mellingen, K., Reynolds, C., & Mednick, S. (2001). Early educational and health enrichment at age 3-5 years is associated with increased autonomic and central nervous system arousal and orienting at age 11 years: evidence from the Mauritius child health project. Psychophysiology, 38, 254-266.
    Rikli, R. E., Edwards, D. J. (1991). Effects of a three-year exercise program on motor function and cognitive processing speed in older women. Res Q Exer Sport 62: 61–67.

    Rosenthal-Malek, A., & Mitchel, S. (1997). Brief report: The effects of exercise on the self-stimulatory behaviors and positive responding of adolescents with autism Journal of Autism and Developmental Disorders, 27(2), 193-202.

    Rubin, K. H., Fein, G., & Vendenberg, B.(1983). Play. In P. H. Mussen (Ed.), Handbook of child psychology: socialization, personality and social development (4th ed.), vol.4, pp.695-774. New York: Weiley.

    Sanders, L. D., Stevens, C., Coch, D., Neville, H. J. (2006). Selective auditory attention in 3- to 5-year-old children: an event-related potential study. Neuropsychologia, 44 (11), 2126–2138.

    Socci, D., Crandall, B., & Arendash, G. (1995). Chronic antioxidant improves the cognitive performance of aged rats. Brain Research, 693, 88-94.

    Somani, S., Ravi, R. & Rybak, L. (1995). Effect of exercise training on antioxidant system in brain regions of rat. Pharmacology, biochemistry and behavior, 50, 635-639.

    Sowell, E. R., Peterson, B. S., Thompson, P. M., Welcome, S. E., Henkenius, A. L., & Toga, A. W. (2003). Mapping cortical change across the human life span. Nature Neuroscience, 6(3), 309–315.

    Spirduso W. W. (1980). Physical fitness and psychomotor speed: A review. Journal of gerontology, 35, 850–865.

    Tomporowski, P. D. (2003). Effects of acute bouts of exercise on cognition. Acta Psychologica, 112, 297–324.

    Van Praag, H., Kempermann, G., & Gage, F. H. (1999). Running increases cell proliferation and neurogenesis in the adult mouse dentate gyrus. Nature Neuroscience, 2, 266 – 270.

    Wang, T., Xie, K., & Lu, B. (1995). Neurotrophins promote maturation of developing neuromuscular synapses. The Journal of Neuroscience, 15(7), 4796-4805.

    Yerkes, R. M., & Dodson, J. D. (1908). The relation of strength of stimulus to rapidity of habit-formation. Journal of Comparative Neurology and Psychology, 18, 459-82.

    Zani, A. & Rossi, B. (1991). Cognitive psychophysiology as interface between cognitive and sport psychology. International Journal of Sports Psychology, 22, 376-398.

    下載圖示
    QR CODE