簡易檢索 / 詳目顯示

研究生: 黃婉綺
Huang, Wan-Chi
論文名稱: 成年人睡眠型態與身體活動和靜態行為之關聯性研究
Association of Sleep Pattern with Physical Activity and Sedentary Behavior in Adults
指導教授: 廖邕
Liao, Yung
口試委員: 楊建銘
Yang, Chien-Ming
李子奇
Lee, Charles Tzu-Chi
薛名淳
Hsueh, Ming-Chun
廖邕
Liao, Yung
口試日期: 2022/01/19
學位類別: 碩士
Master
系所名稱: 健康促進與衛生教育學系
Department of Health Promotion and Health Education
論文出版年: 2022
畢業學年度: 110
語文別: 英文
論文頁數: 109
中文關鍵詞: 加速規久坐睡眠變動性社交時差
英文關鍵詞: accelerometer, prolonged sitting, sleep variability, social jet lag
研究方法: 觀察研究
DOI URL: http://doi.org/10.6345/NTNU202200689
論文種類: 學術論文
相關次數: 點閱:114下載:11
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
  • 研究目的:目前已有文獻探討成年人的睡眠與其靜態行為及身體活動時間之關係,然過去研究多數針對一至二項睡眠指標進行探討,且較少研究有討論睡眠與靜態行為時間的關係,再者工作成年人和高齡者的族群特徵可能會影響到睡眠和身體活動、靜態行為的關係,但是僅有有限的證據是對這兩個族群進行討論;因此,本研究旨在探討工作成年人和高齡者中,不同面向的睡眠指標(長度、時間點及規律性)與靜態行為及身體活動時間是否有關聯性,並進一步討論當晚睡眠和隔日醒來後靜態行為及身體活動時間的關係。參與者和研究方法:在高齡者族群,本研究於2020年8月至2021年8月招募正常認知功能且具獨立行走能力者參加,共136名高齡者(平均年齡: 80.01 ± 7.23歲)納入本研究;此外,本研究亦於2019年8月至2020年12月針對工作成年人進行招募,最後納入192名員工 (平均年齡: 38.56 ± 8.89歲)的資料進行分析。研究工具使用三軸加速規(GT3X+ ActiGraph)進行靜態行為、輕度身體活動和中高強度身體活動時間的測量,期間受試者需記錄每日睡眠時間(起床及就寢時間),依照其記錄作為各項睡眠指標的計算基準,本研究之睡眠型態指標如下包含睡眠長度、睡眠中間點、睡眠長度變動性和睡眠時間點變動性,再者,在工作成年人中會進一步測量社交時差。本研究運用線性迴歸針對平均睡眠型態和睡眠規律性與結果變項(靜態行為及身體活動時間)之關係進行分析,廣義估計方程式(generalized estimating equations, GEE)則應用於分析每日睡眠型態和各項清醒行為時間之關聯性。結果:高齡者族群樣本中研究結果顯示如下:(1)平均睡眠狀況:睡眠長度與靜態行為時間呈負向關係(B= -25.69;p = 0.001),與輕度身體活動則是呈現正向關係(B= 23.17;p = 0.001);(2)睡眠規律性:睡眠長度及睡眠時間點變動性皆未發現顯著關聯性:(3)每日睡眠型態:當晚的睡眠中間點較晚,與清醒後當天較少的中高強度身體活動時間有關(p = 0.024)。在工作成年人中,研究結果指出:(1)平均睡眠狀況:較遲的平均睡眠中間點與靜態行為時間具有正向關聯性(B= 0.20;p = 0.048);(2)睡眠規律性:睡眠長度變動性越大與較多的輕度身體活動時間有關(B= 0.32;p = 0.038),較大的社交時差與較多的靜態行為時間(B= 0.24;p = 0.005)和較少的輕度身體活動時間(B= -0.19; p = 0.016)有關;(3)每日睡眠型態:當晚較長的睡眠長度(p = 0.026)和較遲的睡眠中間點(p = 0.029),皆與清醒後較少的中高強度身體活動時間有關聯性。結論:本研究發現高齡者與工作成年人的睡眠型態與靜態行為和身體活動時間的關係,且兩個族群的結果顯示不盡相同,據此,本研究結果可提供設計促進成年人動態生活型態介入作為參考,並建議依據不同年齡族群特性制定合適的方案,在高齡者族群中,建議以適當地增加平均睡眠長度和維持每晚較早的睡眠時間點進行介入,而針對有工作的成年人,則是建議減少社交時差和提早睡眠時間點的策略。

    Purpose: Some previous research has investigated associations of sleep pattern with sedentary behavior (SB) time and physical activity (PA) time in adults. However, most studies only investigated the relationship with one or two sleep indicators and only a few of them discussed associations with SB time. Besides, limited studies investigate the relationship in adults with regular work schedule and older adults while the characteristics of the two groups might influence sleep-PA and sleep-SB relationship. Therefore, the research aimed to examine whether sleep pattern (duration, timing, and regularity) is associated with SB/PA time, as well as investigate the daily relationship between nighttime sleep and SB/PA on the following day in older adults and working adults.
    Methods: A total of 136 older adults without cognitive impairment (age: 80.01 ± 7.23 years) and able to walk independently were recruited from August 2020 to August 2021, and data of 192 working adults (age: 38.56  8.89 years) was collected from August 2019 to December 2020. Triaxial accelerometers (Actigraph wGT3x-BT) were used to assess time spent on SB, light-intensity physical activity (LPA), and moderate-to-vigorous intensity physical activity (MVPA). Daily bedtime and wake up time were recorded by each participant. According to sleep records, indicators of sleep were calculated, including sleep duration, mid-sleep time, and sleep variability. Besides, social jet lag was measured in working adults for examining the relationship. Linear regression was applied to examine the associations of average sleep pattern and sleep regularity with SB/LPA/MVPA time, and GEE models were conducted for the daily relationship between nighttime sleep and SB/LPA/MVPA time on the following day.
    Results: In older adults, the results were listed as follows; (1) average sleep pattern: a negative association was found between average sleep duration and SB time (B= -25.69, p = 0.001), while longer sleep duration in average was related to more LPA time (B = 23.17, p = 0.001) after adjusting for covariates; (2) sleep regularity: no evidence revealed associations between indicators of sleep variability and SB/LPA/MVPA time; (3) nighttime sleep and following SB/LPA/MVPA time: later mid-sleep time at previous night was shown an association with spending less time on MVPA on the following day (p = 0.024). Additionally, some findings in working adults was demonstrated; (1) average sleep pattern: later mid-sleep time in average was related to more SB time (B = 0.20, p = 0.048); (2) sleep regularity: greater social jet lag was associated with more SB time (B = 0.24, p = 0.005) and less LPA time (B = -0.19, p = 0.016), as well as an positive association was found between variability in sleep duration and LPA time (B = 0.32, p = 0.038); (3) nighttime sleep and following SB/LPA/MVPA time: longer nighttime sleep duration (p = 0.026) and delayed mid-sleep time (p = 0.029) at night was linked to decreased MVPA time on the following day.
    Conclusion: The present study observed relationships between sleep pattern and SB/PA time in older adults and working adults, as some associations might be inconsistent in different adult groups. Accordingly, these results provided some evidence for developing sleep-related strategies for promoting active life as well as decreasing sedentary behavior in adults. Specialized interventions based on the characteristics of adult group. In older adults, increasing average sleep duration in appropriate range and maintaining earlier night-to-night sleep timing were suggested. In working adults, interventions for decreasing social jet lag and advancing sleep timing were recommended.

    Chapter 1. Introduction 1 I. Physical activity (PA) and Sedentary behavior (SB) 1 II. Sleep behavior 3 III. Relationship of sleep pattern with time spent on SB/LPA/MVPA in adults 5 IV. Research gap 15 V. Research purpose 17 VI. Research Questions 18 VII. Operational Definition 20 VIII. Hypotheses 22 Chapter 2. Study 1: Association of Sleep Pattern and Sleep Regularity with Objective-Measured Physical Activity and Sedentary Behavior in older adults 24 I. Study design and Sample 24 II. Measures 30 1. Sleep duration and mid-sleep time 30 2. Sleep variability 30 3. Physical activity and sedentary behavior 31 III. Covariates 33 IV. Statistical analyses 34 V. Results 36 1. Descriptive characteristic of participants 36 2. Associations of sleep indicators with SB/LPA/MVPA time in average 39 3. Nighttime sleep duration with SB/LPA/MVPA time on following day 42 4. Nighttime sleep timing with SB/LPA/MVPA time on ollowing day 46 VI. Discussion 50 1. Relationship of average sleep pattern with SB/LPA/MVPA time in older adults 50 2. Relationship of sleep variability with SB/LPA/MVPA time in older adults 53 3. Nighttime sleep predicts SB/LPA/MVPA time on following day in older adults 55 4. Strength and limitations 57 Chapter 3. Study 2: Association of Sleep Pattern and Sleep Regularity with Objective-Measured Physical Activity and Sedentary Behavior in working adults 58 I. Study design and Sample 58 II. Measures 62 1. Sleep pattern 62 2. Sleep regularity 62 3. Physical activity and sedentary behavior 63 III. Covariates 65 IV. Statistical analyses 66 V. Results 68 1. Descriptive characteristic of participants 68 2. Associations of sleep indicators with SB/LPA/MVPA time in average 71 3. Nighttime sleep duration with SB/LPA/MVPA time on following day 74 4. Nighttime sleep timing with SB/LPA/MVPA time on following day 78 VI. Discussion 82 1. Relationship of average sleep pattern with SB/LPA/MVPA time in working adults 82 2. Relationship of sleep regulation with SB/LPA/MVPA time in working adults 85 3. Nighttime sleep predicts SB/LPA/MVPA time on following day in working adults 86 4. Strength and limitations 90 Chapter 4. Conclusion 91 1. Similar findings between the two study groups 91 2. Dissimilar findings between the two study groups 92 3. Conclusion 95 Reference 96

    Aguilar-Farías, N., Brown, W. J., & Peeters, G. M. (2014). ActiGraph GT3X+ cut-points for identifying sedentary behaviour in older adults in free-living environments. Journal of Science and Medicine in Sport, 17(3), 293-299. https://doi.org/10.1016/j.jsams.2013.07.002
    Ainsworth, B. E., Haskell, W. L., Herrmann, S. D., Meckes, N., Bassett, D. R. J., Tudor-Locke, C., . . . Leon, A. S. (2011). 2011 Compendium of physical activities: A second update of codes and MET values. Medicine & Science in Sports & Exercise, 43(8). https://doi.org/10.1249/MSS.0b013e31821ece12
    Alves, M. S., Andrade, R. Z., Silva, G. C., Mota, M. C., Resende, S. G., Teixeira, K. R., . . . Crispim, C. A. (2017). Social jetlag among night workers is negatively associated with the frequency of moderate or vigorous physical activity and with energy expenditure related to physical activity. Journal of Biological Rhythms, 32(1), 83-93. https://doi.org/10.1177/0748730416682110
    Bauman, A., Ainsworth, B. E., Sallis, J. F., Hagströmer, M., Craig, C. L., Bull, F. C., . . . Sjöström, M. (2011). The descriptive epidemiology of sitting: A 20-country comparison using the International Physical Activity Questionnaire (IPAQ). American Journal of Preventive Medicine, 41(2), 228-235. https://doi.org/10.1016/j.amepre.2011.05.003
    Benedict, C., Hallschmid, M., Lassen, A., Mahnke, C., Schultes, B., Schiöth, H. B., . . . Lange, T. (2011). Acute sleep deprivation reduces energy expenditure in healthy men. The American Journal of Clinical Nutrition, 93(6), 1229-1236. https://doi.org/10.3945/ajcn.110.006460
    Berger, R. J., & Phillips, N. H. (1995). Energy conservation and sleep. Behavioural Brain Research, 69(1-2), 65-73. https://doi.org/10.1016/0166-4328(95)00002-b
    Biswas, A., Oh, P. I., Faulkner, G. E., Bajaj, R. R., Silver, M. A., Mitchell, M. S., & Alter, D. A. (2015). Sedentary time and its association with risk for disease incidence, mortality, and hospitalization in adults: a systematic review and meta-analysis. Ann Intern Med, 162(2), 123-132. https://doi.org/10.7326/m14-1651
    Capers, P. L., Fobian, A. D., Kaiser, K. A., Borah, R., & Allison, D. B. (2015). A systematic review and meta-analysis of randomized controlled trials of the impact of sleep duration on adiposity and components of energy balance. Obesity Reviews, 16(9), 771-782. https://doi.org/10.1111/obr.12296
    Cespedes, E. M., Hu, F. B., Redline, S., Rosner, B., Alcantara, C., Cai, J., . . . Patel, S. R. (2016). Comparison of self-reported sleep duration with actigraphy: Results from the Hispanic Community Health Study/Study of Latinos Sueño Ancillary Study. American Journal of Epidemiology, 183(6), 561-573. https://doi.org/10.1093/aje/kwv251
    Chandra, V. (2012). Work–life balance: eastern and western perspectives. The International Journal of Human Resource Management, 23(5), 1040-1056. https://doi.org/10.1080/09585192.2012.651339
    Chaput, J.-P., Dutil, C., Featherstone, R., Ross, R., Giangregorio, L., Saunders, T. J., . . . Carrier, J. (2020). Sleep duration and health in adults: an overview of systematic reviews. Applied Physiology, Nutrition, and Metabolism, 45(10 (Suppl. 2)), S218-S231. https://doi.org/10.1139/apnm-2020-0034
    Chaput, J.-P., Dutil, C., Featherstone, R., Ross, R., Giangregorio, L., Saunders, T. J., . . . Carrier, J. (2020). Sleep timing, sleep consistency, and health in adults: a systematic review. Applied Physiology, Nutrition, and Metabolism, 45(10 (Suppl. 2)), S232-S247. https://doi.org/10.1139/apnm-2020-0032
    Chaput, J.-P., & Tremblay, A. (2012). Insufficient sleep as a contributor to weight gain: An update. Current Obesity Reports, 1(4), 245-256. https://doi.org/10.1007/s13679-012-0026-7
    Clemes, S. A., O'Connell, S. E., & Edwardson, C. L. (2014). Office workers' objectively measured sedentary behavior and physical activity during and outside working hours. Journal of Occupational and Environmental Medicine, 56(3), 298-303. https://doi.org/10.1097/jom.0000000000000101
    Davis, M. G., & Fox, K. R. (2007). Physical activity patterns assessed by accelerometry in older people. European Journal of Applied Physiology, 100(5), 581-589. https://doi.org/10.1007/s00421-006-0320-8
    Ding, D., Mutrie, N., Bauman, A., Pratt, M., Hallal, P. R. C., & Powell, K. E. (2020). Physical activity guidelines 2020: comprehensive and inclusive recommendations to activate populations. Lancet, 396(10265), 1780-1782. https://doi.org/10.1016/s0140-6736(20)32229-7
    Du, Y., Liu, B., Sun, Y., Snetselaar, L. G., Wallace, R. B., & Bao, W. (2019). Trends in adherence to the physical activity guidelines for Americans for aerobic activity and time spent on sedentary behavior among US adults, 2007 to 2016. JAMA Network Open, 2(7), e197597. https://doi.org/10.1001/jamanetworkopen.2019.7597
    Dumith, S. C., Hallal, P. C., Reis, R. S., & Kohl, H. W. (2011). Worldwide prevalence of physical inactivity and its association with human development index in 76 countries. Preventive Medicine, 53(1), 24-28. https://doi.org/10.1016/j.ypmed.2011.02.017
    Duncan, M. J., Kline, C. E., Rebar, A. L., Vandelanotte, C., & Short, C. E. (2016). Greater bed- and wake-time variability is associated with less healthy lifestyle behaviors: a cross-sectional study. Journal of Public Health, 24(1), 31-40. https://doi.org/10.1007/s10389-015-0693-4
    Eriksson, M., Nääs, S., Berginström, N., Nordström, P., Hansson, P., & Nordström, A. (2020). Sedentary behavior as a potential risk factor for depression among 70-year-olds. Journal of Affective Disorders, 263, 605-608. https://doi.org/10.1016/j.jad.2019.11.035
    Füzéki, E., Engeroff, T., & Banzer, W. (2017). Health benefits of light-intensity physical activity: A systematic review of accelerometer data of the National Health and Nutrition Examination Survey (NHANES). Sports Medicine, 47(9), 1769-1793. https://doi.org/10.1007/s40279-017-0724-0
    Falck, R. S., Davis, J. C., & Liu-Ambrose, T. (2017). What is the association between sedentary behaviour and cognitive function? A systematic review. British Journal of Sports Medicine 51(10), 800-811. https://doi.org/10.1136/bjsports-2015-095551
    Fischer, D., Klerman, E. B., & Phillips, A. J. K. (2021). Measuring sleep regularity: theoretical properties and practical usage of existing metrics. Sleep, 44(10), zsab103. https://doi.org/10.1093/sleep/zsab103
    Folstein, M. F., Folstein, S. E., & McHugh, P. R. (1975). “Mini-mental state”: A practical method for grading the cognitive state of patients for the clinician. Journal of Psychiatric Research, 12(3), 189-198. https://doi.org/10.1016/0022-3956(75)90026-6
    Group, J. S. (2004). Self-reported sleep duration as a predictor of all-cause mortality: results from the JACC Study, Japan. Sleep, 27(1), 51-54. https://doi.org/10.1093/sleep/27.1.51
    Guigoz, Y., Vellas, B., & Garry, P. J. (1996). Assessing the nutritional status of the elderly: The mini nutritional assessment as part of the geriatric evaluation. Nutrition Reviews, 54(1), 7. https://doi.org/10.1111/j.1753-4887.1996.tb03793.x
    Hafner, M., Stepanek, M., Taylor, J., Troxel, W. M., & van Stolk, C. (2017). Why sleep matters-The economic costs of insufficient sleep: A cross-country comparative analysis. RAND Health Quarterly, 6(4), 11-11. https://doi.org/10.7249/RR1791
    Hagen, E. W., Barnet, J. H., Hale, L., & Peppard, P. E. (2016). Changes in sleep duration and sleep timing associated with retirement transitions. Sleep, 39(3), 665-673. https://doi.org/10.5665/sleep.5548
    Hardin, J. W. (2005). Generalized Estimating Equations (GEE). In Encyclopedia of Statistics in Behavioral Science.
    Hart, T. L., Ainsworth, B. E., & Tudor-Locke, C. (2011). Objective and subjective measures of sedentary behavior and physical activity. Medicine & Science in Sports & Exercise, 43(3), 449-456. https://doi.org/10.1249/MSS.0b013e3181ef5a93
    Harvey, J. A., Chastin, S. F. M., & Skelton, D. A. (2013). Prevalence of sedentary behavior in older adults: A systematic review. International Journal of Environmental Research and Public Health, 10(12). https://doi.org/10.3390/ijerph10126645
    Heiland, E. G., Ekblom, Ö., Bojsen-Møller, E., Larisch, L. M., Blom, V., & Ekblom, M. M. (2021). Bi-directional, day-to-day associations between objectively-measured physical activity, sedentary behavior, and sleep among office workers. International Journal of Environmental Research and Public Health, 18(15). https://doi.org/10.3390/ijerph18157999
    Hirshkowitz, M., Whiton, K., Albert, S. M., Alessi, C., Bruni, O., DonCarlos, L., . . . Adams Hillard, P. J. (2015). National Sleep Foundation's sleep time duration recommendations: methodology and results summary. Sleep Health, 1(1), 40-43. https://doi.org/10.1016/j.sleh.2014.12.010
    Hsueh, M.-C., Rutherford, R., Huang, Y.-H., Chang Chien, H.-Y., Chang, C.-H., Park, J.-H., & Liao, Y. (2019). Are older adults without a healthy diet less physically active and more sedentary? Nutrients, 11(5), 1119. https://doi.org/10.3390/nu11051119
    Huang, W. C., Chang, C. S., Lin, C. Y., Lai, T. F., Hsueh, M. C., Liao, Y., & Park, J. H. (2021). Is sleep timing related to objectively measured physical activity and sedentary behavior in older women? Nature and Science of Sleep, 13, 1377-1381. https://doi.org/10.2147/nss.S308270
    Itani, O., Jike, M., Watanabe, N., & Kaneita, Y. (2017). Short sleep duration and health outcomes: a systematic review, meta-analysis, and meta-regression. Sleep Medicine, 32, 246-256. https://doi.org/https://doi.org/10.1016/j.sleep.2016.08.006
    Kamada, M., Shiroma, E. J., Harris, T. B., & Lee, I. M. (2016). Comparison of physical activity assessed using hip- and wrist-worn accelerometers. Gait & Posture, 44, 23-28. https://doi.org/10.1016/j.gaitpost.2015.11.005
    Kantermann, T., Sung, H., & Burgess, H. J. (2015). Comparing the morningness-eveningness questionnaire and munich chronotype questionnaire to the dim light melatonin onset. Journal of Biological Rhythms, 30(5), 449-453. https://doi.org/10.1177/0748730415597520
    Keadle, S. K., Shiroma, E. J., Freedson, P. S., & Lee, I. M. (2014). Impact of accelerometer data processing decisions on the sample size, wear time and physical activity level of a large cohort study. BMC Public Health, 14, 1210-1210. https://doi.org/10.1186/1471-2458-14-1210
    Kishida, M., & Elavsky, S. (2016). An intensive longitudinal examination of daily physical activity and sleep in midlife women. Sleep Health, 2(1), 42-48. https://doi.org/10.1016/j.sleh.2015.12.001
    Kobayashi, D., Takahashi, O., Shimbo, T., Okubo, T., Arioka, H., & Fukui, T. (2013). High sleep duration variability is an independent risk factor for weight gain. Sleep and Breathing, 17(1), 167-172. https://doi.org/10.1007/s11325-012-0665-7
    Koopman, A. D. M., Rauh, S. P., van 't Riet, E., Groeneveld, L., van der Heijden, A. A., Elders, P. J., . . . Rutters, F. (2017). The association between social jetlag, the metabolic syndrome, and type 2 diabetes mellitus in the general population: The New Hoorn Study. Journal of Biological Rhythms, 32(4), 359-368. https://doi.org/10.1177/0748730417713572
    Koster, A., Caserotti, P., Patel, K. V., Matthews, C. E., Berrigan, D., Van Domelen, D. R., . . . Harris, T. B. (2012). Association of sedentary time with mortality independent of moderate to vigorous physical activity. PLOS One, 7(6), e37696-e37696. https://doi.org/10.1371/journal.pone.0037696
    Kryger, M., Monjan, A., Bliwise, D., & Ancoli-Israel, S. (2004). Sleep, health, and aging. Bridging the gap between science and clinical practice. Geriatrics, 59(1), 24-26, 29-30.
    Lakerveld, J., Mackenbach, J. D., Horvath, E., Rutters, F., Compernolle, S., Bárdos, H., . . . Brug, J. (2016). The relation between sleep duration and sedentary behaviours in European adults. Obesity Reviews, 17 Suppl 1, 62-67. https://doi.org/10.1111/obr.12381
    Lambiase, M. J., Gabriel, K. P., Kuller, L. H., & Matthews, K. A. (2013). Temporal relationships between physical activity and sleep in older women. Medicine & Science in Sports & Exercise, 45(12), 2362-2368. https://doi.org/10.1249/MSS.0b013e31829e4cea
    Laposky, A. D., Bass, J., Kohsaka, A., & Turek, F. W. (2008). Sleep and circadian rhythms: key components in the regulation of energy metabolism. FEBS Letters, 582(1), 142-151. https://doi.org/10.1016/j.febslet.2007.06.079
    Lauderdale, D. S., Knutson, K. L., Yan, L. L., Liu, K., & Rathouz, P. J. (2008). Self-reported and measured sleep duration: how similar are they? Epidemiology, 19(6), 838-845. https://doi.org/10.1097/EDE.0b013e318187a7b0
    Lawton, M. P., & Brody, E. M. (1969). Assessment of older people: self-maintaining and instrumental activities of daily living. Gerontologist, 9(3), 179-186.
    Levandovski, R., Dantas, G., Fernandes, L. C., Caumo, W., Torres, I., Roenneberg, T., . . . Allebrandt, K. V. (2011). Depression scores associate with chronotype and social jetlag in a rural population. Chronobiology International, 28(9), 771-778. https://doi.org/10.3109/07420528.2011.602445
    Levandovski, R., Sasso, E., & Hidalgo, M. P. (2013). Chronotype: a review of the advances, limits and applicability of the main instruments used in the literature to assess human phenotype. Trends in Psychiatry and Psychotherapy 35(1), 3-11. https://doi.org/10.1590/s2237-60892013000100002
    Li, H., Jia, J., & Yang, Z. (2016). Mini-Mental State Examination in elderly Chinese: A population-based normative study. Journal of Alzheimer's Disease, 53(2), 487-496. https://doi.org/10.3233/jad-160119
    Lo, J. C., Groeger, J. A., Cheng, G. H., Dijk, D.-J., & Chee, M. W. L. (2016). Self-reported sleep duration and cognitive performance in older adults: a systematic review and meta-analysis. Sleep Medicine, 17, 87-98. https://doi.org/10.1016/j.sleep.2015.08.021
    Lucassen, E. A., de Mutsert, R., le Cessie, S., Appelman-Dijkstra, N. M., Rosendaal, F. R., van Heemst, D., . . . Biermasz, N. R. (2017). Poor sleep quality and later sleep timing are risk factors for osteopenia and sarcopenia in middle-aged men and women: The NEO study. PLOS One, 12(5), e0176685. doi:https://doi.org/10.1371/journal.pone.0176685
    Mahoney, F. I., & Barthel, D. W. (1965). Functional evaluation: The Barthel Index: A simple index of independence useful in scoring improvement in the rehabilitation of the chronically ill. Maryland State Medical Journal, 14, 61-65.
    Mander, B. A., Winer, J. R., & Walker, M. P. (2017). Sleep and human aging. Neuron, 94(1), 19-36. https://doi.org/10.1016/j.neuron.2017.02.004
    Mantua, J., Skeiky, L., Prindle, N., Trach, S., Doty, T. J., Balkin, T. J., . . . Simonelli, G. (2019). Sleep extension reduces fatigue in healthy, normally-sleeping young adults. Sleep Science (Sao Paulo, Brazil), 12(1), 21-27. https://doi.org/10.5935/1984-0063.20190056
    Marcheva, B., Ramsey, K. M., Buhr, E. D., Kobayashi, Y., Su, H., Ko, C. H., . . . Bass, J. (2010). Disruption of the clock components CLOCK and BMAL1 leads to hypoinsulinaemia and diabetes. Nature, 466(7306), 627-631. https://doi.org/10.1038/nature09253
    Master, L., Nye, R. T., Lee, S., Nahmod, N. G., Mariani, S., Hale, L., & Buxton, O. M. (2019). Bidirectional, daily temporal associations between sleep and physical activity in adolescents. Scientific Reports, 9(1), 7732. https://doi.org/10.1038/s41598-019-44059-9
    McHill, A. W., & Wright Jr, K. P. (2017). Role of sleep and circadian disruption on energy expenditure and in metabolic predisposition to human obesity and metabolic disease. Obesity Reviews, 18(S1), 15-24. https://doi.org/10.1111/obr.12503
    Mead, M. P., Baron, K., Sorby, M., & Irish, L. A. (2019). Daily associations between sleep and physical activity. International Journal of Behavioral Medicine, 26(5), 562-568. https://doi.org/10.1007/s12529-019-09810-6
    Migueles, J. H., Cadenas-Sanchez, C., Ekelund, U., Delisle Nyström, C., Mora-Gonzalez, J., Löf, M., . . . Ortega, F. B. (2017). Accelerometer data collection and processing criteria to assess physical activity and other outcomes: A systematic review and practical considerations. Sports Medicine, 47(9), 1821-1845. https://doi.org/10.1007/s40279-017-0716-0
    Mitchell, J. A., Godbole, S., Moran, K., Murray, K., James, P., Laden, F., . . . Glanz, K. (2016). No evidence of reciprocal associations between daily sleep and physical activity. Medicine and Science in Sports and Exercise, 48(10), 1950-1956. https://doi.org/10.1249/mss.0000000000001000
    Mong, J. A., Baker, F. C., Mahoney, M. M., Paul, K. N., Schwartz, M. D., Semba, K., & Silver, R. (2011). Sleep, rhythms, and the endocrine brain: influence of sex and gonadal hormones. Journal of Neuroscience, 31(45), 16107-16116. https://doi.org/10.1523/jneurosci.4175-11.2011
    Mong, J. A., & Cusmano, D. M. (2016). Sex differences in sleep: impact of biological sex and sex steroids. Philosophical Transactions of the Royal Society B, 371(1688), 20150110. https://doi.org/10.1098/rstb.2015.0110
    Moraes, W., Piovezan, R., Poyares, D., Bittencourt, L. R., Santos-Silva, R., & Tufik, S. (2014). Effects of aging on sleep structure throughout adulthood: a population-based study. Sleep Medicine, 15(4), 401-409. https://doi.org/10.1016/j.sleep.2013.11.791
    Nauha, L., Jurvelin, H., Ala-Mursula, L., Niemelä, M., Jämsä, T., Kangas, M., & Korpelainen, R. (2020). Chronotypes and objectively measured physical activity and sedentary time at midlife. Scandinavian Journal of Medicine & Science in Sports, 30(10), 1930-1938. https://doi.org/10.1111/sms.13753
    Nyunt, M. S. Z., Fones, C., Niti, M., & Ng, T.-P. (2009). Criterion-based validity and reliability of the Geriatric Depression Screening Scale (GDS-15) in a large validation sample of community-living Asian older adults. Aging & Mental Health, 13(3), 376-382. https://doi.org/10.1080/13607860902861027
    Owen, N., Healy, G. N., Matthews, C. E., & Dunstan, D. W. (2010). Too much sitting: the population health science of sedentary behavior. Exercise and Sport Sciences Reviews, 38(3), 105-113. https://doi.org/10.1097/JES.0b013e3181e373a2
    Owen, N., Sugiyama, T., Eakin, E. E., Gardiner, P. A., Tremblay, M. S., & Sallis, J. F. (2011). Adults' sedentary behavior determinants and interventions. American Journal of Preventive Medicine, 41(2), 189-196. https://doi.org/10.1016/j.amepre.2011.05.013
    Penev, P. D. (2012). Update on energy homeostasis and insufficient sleep. The Journal of Clinical Endocrinology and Metabolism, 97(6), 1792-1801. https://doi.org/10.1210/jc.2012-1067
    Pettee Gabriel, K., Sternfeld, B., Shiroma, E. J., Pérez, A., Cheung, J., & Lee, I. M. (2017). Bidirectional associations of accelerometer-determined sedentary behavior and physical activity with reported time in bed: Women's Health Study. Sleep Health, 3(1), 49-55. https://doi.org/10.1016/j.sleh.2016.10.001
    Prince, S. A., Elliott, C. G., Scott, K., Visintini, S., & Reed, J. L. (2019). Device-measured physical activity, sedentary behaviour and cardiometabolic health and fitness across occupational groups: a systematic review and meta-analysis. International Journal of Behavioral Nutrition and Physical Activity 16(1), 30-30. https://doi.org/10.1186/s12966-019-0790-9
    Prince, S. A., Roberts, K. C., Reed, J. L., Biswas, A., Colley, R. C., & Thompson, W. (2020). Daily physical activity and sedentary behaviour across occupational classifications in Canadian adults. Health Reports, 31(9), 13-26. https://doi.org/10.25318/82-003-x202000900002-eng
    Reiner, M., Niermann, C., Jekauc, D., & Woll, A. (2013). Long-term health benefits of physical activity – a systematic review of longitudinal studies. BMC Public Health, 13(1), 813. https://doi.org/10.1186/1471-2458-13-813
    Reiter, A. M., Sargent, C., & Roach, G. D. (2020). Finding DLMO: estimating dim light melatonin onset from sleep markers derived from questionnaires, diaries and actigraphy. Chronobiology International, 37(9-10), 1412-1424. https://doi.org/10.1080/07420528.2020.1809443
    Rezende, L. F. M. d., Rey-López, J. P., Matsudo, V. K. R., & Luiz, O. d. C. (2014). Sedentary behavior and health outcomes among older adults: a systematic review. BMC Public Health, 14(1), 333. https://doi.org/10.1186/1471-2458-14-333
    Rockwood, K., Song, X., MacKnight, C., Bergman, H., Hogan, D. B., McDowell, I., & Mitnitski, A. (2005). A global clinical measure of fitness and frailty in elderly people. Canadian Medical Association Journal, 173(5), 489. https://doi.org/10.1503/cmaj.050051
    Rockwood, K., & Theou, O. (2020). Using the clinical frailty scale in allocating scarce health care resources. Canadian Geriatrics Journal, 23(3), 254-259. https://doi.org/10.5770/cgj.23.463
    Roenneberg, T., Kuehnle, T., Juda, M., Kantermann, T., Allebrandt, K., Gordijn, M., & Merrow, M. (2007). Epidemiology of the human circadian clock. Sleep Medicine Reviews, 11(6), 429-438. https://doi.org/10.1016/j.smrv.2007.07.005
    Rosique-Esteban, N., Papandreou, C., Romaguera, D., Warnberg, J., Corella, D., Martínez-González, M. Á., . . . Salas-Salvadó, J. (2018). Cross-sectional associations of objectively-measured sleep characteristics with obesity and type 2 diabetes in the PREDIMED-Plus trial. Sleep, 41(12). https://doi.org/10.1093/sleep/zsy190
    Sartini, C., Wannamethee, S. G., Iliffe, S., Morris, R. W., Ash, S., Lennon, L., . . . Jefferis, B. J. (2015). Diurnal patterns of objectively measured physical activity and sedentary behaviour in older men. BMC Public Health, 15(1), 609. https://doi.org/10.1186/s12889-015-1976-y
    Savin, K. L., Patel, S. R., Clark, T. L., Bravin, J. I., Roesch, S. C., Sotres-Alvarez, D., . . . Gallo, L. C. (2020). Relationships of sleep duration, midpoint, and variability with physical activity in the HCHS/SOL Sueño Ancillary Study. Behavioral Sleep Medicine, 1-12. https://doi.org/10.1080/15402002.2020.1820335
    Serin, Y., & Acar Tek, N. (2019). Effect of circadian rhythm on metabolic processes and the regulation of energy balance. Annals of Nutrition and Metabolism, 74(4), 322-330. https://doi.org/10.1159/000500071
    Shechter, A., & St-Onge, M. P. (2014). Delayed sleep timing is associated with low levels of free-living physical activity in normal sleeping adults. Sleep Medicine, 15(12), 1586-1589. https://doi.org/10.1016/j.sleep.2014.07.010
    Slavish, D. C., Taylor, D. J., & Lichstein, K. L. (2019). Intraindividual variability in sleep and comorbid medical and mental health conditions. Sleep, 42(6). https://doi.org/10.1093/sleep/zsz052
    St-Onge, M. P. (2017). Sleep-obesity relation: underlying mechanisms and consequences for treatment. Obesity Reviews, 18 Suppl 1, 34-39. https://doi.org/10.1111/obr.12499
    Stenholm, S., Kronholm, E., Bandinelli, S., Guralnik, J. M., & Ferrucci, L. (2011). Self-reported sleep duration and time in bed as predictors of physical function decline: results from the InCHIANTI study. Sleep, 34(11), 1583-1593. https://doi.org/10.5665/sleep.1402
    Suh, S., Yang, H. C., Kim, N., Yu, J. H., Choi, S., Yun, C. H., & Shin, C. (2017). Chronotype differences in health behaviors and health-related quality of life: A population-based study among aged and older adults. Behavioral Sleep Medicine, 15(5), 361-376. https://doi.org/10.1080/15402002.2016.1141768
    Sung, J. H., Son, S. R., Baek, S. H., & Kim, B. J. (2021). Association of occupation with the daily physical activity and sedentary behaviour of middle-aged workers in Korea: a cross-sectional study based on data from the Korea National Health and Nutrition Examination Survey. BMJ Open, 11(11), e055729. https://doi.org/10.1136/bmjopen-2021-055729
    Tombaugh, T. N., & McIntyre, N. J. (1992). The Mini-Mental State Examination: A Comprehensive Review. Journal of the American Geriatrics Society, 40(9), 922-935. https://doi.org/10.1111/j.1532-5415.1992.tb01992.x
    Touvier, M., Bertrais, S., Charreire, H., Vergnaud, A.-C., Hercberg, S., & Oppert, J.-M. (2010). Changes in leisure-time physical activity and sedentary behaviour at retirement: a prospective study in middle-aged French subjects. International Journal of Behavioral Nutrition and Physical Activity, 7(1), 14. https://doi.org/10.1186/1479-5868-7-14
    Towne, S. D., Ory, M. G., Smith, M. L., Peres, S. C., Pickens, A. W., Mehta, R. K., & Benden, M. (2017). Accessing physical activity among young adults attending a university: the role of sex, race/ethnicity, technology use, and sleep. BMC Public Health, 17(1), 721. https://doi.org/10.1186/s12889-017-4757-y
    Tremblay, M. S., Aubert, S., Barnes, J. D., Saunders, T. J., Carson, V., Latimer-Cheung, A. E., . . . on behalf of, S. T. C. P. P. (2017). Sedentary Behavior Research Network (SBRN) – Terminology Consensus Project process and outcome. International Journal of Behavioral Nutrition and Physical Activity, 14(1), 75. https://doi.org/10.1186/s12966-017-0525-8
    Troiano, R. P. (2007). Large-scale applications of accelerometers: new frontiers and new questions. Medicine & Science in Sports & Exercise, 39(9), 1501. https://doi.org/10.1097/mss.0b013e318150d42e
    Troiano, R. P., Berrigan, D., Dodd, K. W., Mâsse, L. C., Tilert, T., & McDowell, M. (2008). Physical activity in the United States measured by accelerometer. Medicine & Science in Sports & Exercise, 40(1), 181-188. https://doi.org/10.1249/mss.0b013e31815a51b3
    Van Uffelen, J. G., Wong, J., Chau, J. Y., van der Ploeg, H. P., Riphagen, I., Gilson, N. D., . . . Brown, W. J. (2010). Occupational sitting and health risks: a systematic review. American Journal of Preventive Medicine, 39(4), 379-388. https://doi.org/10.1016/j.amepre.2010.05.024
    VanItallie, T. B. (2006). Sleep and energy balance: interactive homeostatic systems. Metabolism, 55, S30-S35. https://doi.org/10.1016/j.metabol.2006.07.010
    Wancata, J., Alexandrowicz, R., Marquart, B., Weiss, M., & Friedrich, F. (2006). The criterion validity of the Geriatric Depression Scale: a systematic review. Acta Psychiatrica Scandinavica, 114(6), 398-410. https://doi.org/10.1111/j.1600-0447.2006.00888.x
    Wennman, H., Kronholm, E., Partonen, T., Peltonen, M., Vasankari, T., & Borodulin, K. (2015). Evening typology and morning tiredness associates with low leisure time physical activity and high sitting. Chronobiology International, 32(8), 1090-1100. https://doi.org/10.3109/07420528.2015.1063061
    Wittmann, M., Dinich, J., Merrow, M., & Roenneberg, T. (2006). Social jetlag: misalignment of biological and social time. Chronobiology International, 23(1-2), 497-509. https://doi.org/10.1080/07420520500545979
    Wolkove, N., Elkholy, O., Baltzan, M., & Palayew, M. (2007). Sleep and aging: 1. Sleep disorders commonly found in older people. Canadian Medical Association Journal, 176(9), 1299-1304. https://doi.org/10.1503/cmaj.060792
    World Health Organization. (2010). Global recommendations on physical activity for health. Retrieved from http://apps.who.int/iris/bitstream/10665/44399/1/9789241599979_eng.pdf
    World Health Organization. (2018). Global action plan on physical activity 2018–2030: more active people for a healthier world. Geneva: World Health Organization.
    Xie, L., Kang, H., Xu, Q., Chen, M. J., Liao, Y., Thiyagarajan, M., . . . Nedergaard, M. (2013). Sleep drives metabolite clearance from the adult brain. Science, 342(6156), 373-377. https://doi.org/10.1126/science.1241224
    Yasunaga, A., Shibata, A., Ishii, K., Koohsari, M. J., & Oka, K. (2018). Cross-sectional associations of sedentary behaviour and physical activity on depression in Japanese older adults: an isotemporal substitution approach. BMJ Open, 8(9), e022282. https://doi.org/10.1136/bmjopen-2018-022282
    Yesavage, J. A., & Sheikh, J. I. (1986). 9/Geriatric Depression Scale (GDS). Clinical Gerontologist, 5(1-2), 165-173. https://doi.org/10.1300/J018v05n01_09
    Youngstedt, S. D., Perlis, M. L., O'Brien, P. M., Palmer, C. R., Smith, M. T., Orff, H. J., & Kripke, D. F. (2003). No association of sleep with total daily physical activity in normal sleepers. Physiology & Behavior, 78(3), 395-401. https://doi.org/10.1016/s0031-9384(03)00004-0
    Zuraikat, F. M., Makarem, N., Redline, S., Aggarwal, B., Jelic, S., & St-Onge, M. P. (2020). Sleep regularity and cardiometabolic heath: Is variability in sleep patterns a risk factor for excess adiposity and glycemic dysregulation? Current Diabetes Reports, 20(8), 38. https://doi.org/10.1007/s11892-020-01324-w

    下載圖示
    QR CODE